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Cliff

A cliff is a steep, often vertical or nearly vertical, rock face or slope formed by the processes of erosion and weathering, typically rising sharply from surrounding terrain such as coastlines, riverbanks, or mountainsides. Cliffs are prominent erosional landforms that can vary in height from a few meters to over a thousand meters, with examples including the towering basalt columns of the Giant's Causeway in Northern Ireland or the dramatic white chalk formations of the White Cliffs of Dover in England. They commonly develop along coastal areas where wave action undercuts the base, leading to overhangs and eventual collapse, but can also form inland through glacial activity, river incision, or tectonic uplift exposing resistant rock layers. The stability and evolution of cliffs depend on factors like rock type, jointing, and climate, with softer materials like clay eroding faster than harder ones such as limestone or granite, influencing their shape and retreat rates over time. Notable for their scenic beauty and ecological niches, cliffs support unique biodiversity, including seabird colonies and specialized plant life adapted to harsh conditions, while posing hazards like rockfalls that impact human settlements and infrastructure.

Definition and Etymology

Definition

A cliff is a significant geomorphological characterized by a steep, vertical or near-vertical face or that rises abruptly from the surrounding . Typically formed through processes such as and , or tectonic activity, it represents a pronounced break in the landscape where resistant layers are exposed. This structure is commonly observed in diverse settings, including coastlines, river valleys, and mountainous regions, emphasizing its role as a natural rather than a constructed or artificial feature. Morphologically, cliffs exhibit features such as overhanging faces, sheer vertical drops, and bases that often lie at , valley floors, or other low-lying areas. The rock composing a cliff is generally hard and resistant to , contributing to its steep profile and the accumulation of debris like or talus at its foot. These elements create a wall-like appearance, with the face's approaching or equaling 90 degrees from the horizontal, distinguishing it from more gradual inclines. As a purely physical , a cliff is defined by its geological and topographical attributes, excluding any biological, cultural, or interpretations. It contrasts sharply with gentler slopes, such as hillsides or escarpments with lower gradients, due to its abrupt elevation change and minimal intermediate . This fundamental distinction underscores the cliff's prominence in shaping landscapes through its verticality and exposure.

Etymology

The word "cliff" originates from clif, denoting a steep slope, bank, or riverbank, and is derived from Proto-Germanic *klifą, with cognates including klif and Klipp. This Proto-Germanic root likely traces back to an Indo-European base related to concepts of inclines or projections, though its precise deeper origins remain uncertain. Through its evolution, the term passed into as clif or cliffe around the , retaining its core meaning of a steep, rugged rock face while expanding to encompass coastal or elevated landforms. Influences from klif, meaning a similar steep slope, contributed to its usage in Scandinavian-influenced English dialects, particularly in northern regions where Viking settlements integrated the term into local descriptions. By the , "cliff" had standardized in English to refer primarily to high, vertical rock faces, as seen in literary and cartographic texts from the onward. Related terms in English geography include "," borrowed from escarpement in the early , itself from the verb escarper ("to make steep"), ultimately derived from scarpa ("" or ""). Another synonym, "," entered English in the late as a nautical term for a broad, flat-fronted cliff, stemming from blaf ("broad" or "flat"), distinct from the unrelated verb sense of bluffing. These borrowings highlight how "cliff" and its synonyms reflect a blend of Germanic roots with Romance and Low German influences in describing steep terrain.

Formation and Geology

Geological Processes

Cliffs form primarily through a combination of tectonic uplift and erosional processes that expose and sculpt resistant rock layers. Tectonic uplift, driven by , elevates landmasses, making them susceptible to surface erosion by exposing to atmospheric and hydrological forces. In active tectonic settings, such as convergent or transform plate boundaries, this uplift creates initial steep slopes, including fault scarps—abrupt escarpments formed along fault lines during earthquakes where one block of rock is displaced relative to another. processes, like landslides and rockfalls, further contribute to steepening these slopes by removing material under gravity's influence, often triggered by seismic activity or heavy rainfall. Erosion by water plays a dominant role in shaping cliffs across various environments. In riverine settings, lateral and vertical incision by flowing water carves deep valleys with near-vertical walls, as seen in the New River Gorge where prolonged stream erosion has formed prominent cliffs. Coastal cliffs arise from wave action that undercuts the base, creating notches and oversteepening the face, which leads to episodic collapses; for instance, in , wave undercutting in sedimentary rocks like results in retreats exceeding 10 meters during storms. Differential erosion exacerbates this in layered sedimentary rocks, where softer materials erode faster than overlying resistant layers, producing vertical faces. Wind and also contribute significantly in specific climates. In arid regions, wind abrasion erodes softer sediments, leaving resistant formations like the cliff-forming , which originated from ancient wind-deposited dunes. Glacial erodes through plucking and abrasion, quarrying blocks from valley walls to form steep cliffs and U-shaped troughs with hanging valleys. The nature of these processes varies with rock type. In soluble rocks like , chemical by acidic enlarges joints and caves, leading to collapse and cliff formation, as observed in landscapes where uneven creates bold escarpments. Conversely, resistant igneous rocks such as withstand longer, forming persistent cliffs through slower mechanical , exemplified by sea stacks and caves along faulted coasts where differential resistance preserves steep profiles. These interactions highlight how rock composition influences the rate and style of cliff development.

Types of Cliffs

Cliffs are classified using multiple criteria to account for their diverse formations and associated geological processes. Primary classifications include , which distinguishes between coastal or cliffs exposed to influences and inland or cliffs situated in terrestrial environments such as mountains or valleys. Another key criterion is origin, encompassing erosional processes that carve cliffs through and , tectonic origins from crustal movements like faulting, and depositional origins where differential erosion acts on accumulated layers to produce steep faces. Composition provides further , with cliffs formed from sedimentary rocks like , which often layer to create stepped profiles; igneous rocks such as , yielding resistant vertical walls; or metamorphic rocks like , which exhibit variable durability based on and content. These criteria overlap, as a cliff's influences how origins manifest, for instance, sedimentary layers deposited horizontally may erode into escarpments under tectonic uplift. Among specific types, sea cliffs represent erosional coastal formations primarily shaped by wave action that undercuts and retreats the shoreline, often resulting in near-vertical faces in resistant rock. Fault cliffs, a tectonic variant, emerge as scarps along active fault lines, particularly in rift zones where extensional forces displace rock blocks, creating abrupt elevations. Ice cliffs occur at termini through calving, where gravitational instability causes massive blocks to detach and plunge into adjacent , forming temporary steep faces. Man-made cliffs, noted briefly as artificial analogs, arise from quarrying operations that excavate rock faces resembling natural cliffs, though they lack endogenous geological processes. Cliffs also differ in unique features such as and , which reflect their and formation dynamics. Vertical or near-vertical s predominate in hard igneous or metamorphic compositions resistant to subaerial , while overhanging profiles develop from basal undercutting in softer sedimentary s, enhancing . In terms of , small scarps may span mere meters in height from localized faulting or , whereas large s extend for kilometers, often as broad tectonic or erosional features separating plateaus from plains.

Physical Characteristics

Height and Structure

Cliffs display significant variations in height, ranging from a few meters for small river or coastal bluffs to over 1,000 meters for extreme vertical drops in mountainous terrain, such as the 1,250-meter sheer face of in . These variations are primarily influenced by geological factors including rock type and resistance to , tectonic uplift that elevates landmasses, and the underlying formation processes, with tectonic cliffs often achieving greater heights than those formed solely by . For instance, resistant igneous rocks like support taller structures compared to softer sedimentary layers. The internal structure of cliffs typically consists of layered strata, where sedimentary or igneous rocks are organized into horizontal or inclined beds separated by bedding planes that reflect depositional history. Joints and fractures, formed as cracks without notable , create planes of weakness that influence cliff and potential failure points. Overhangs develop where upper strata protrude beyond underlying layers due to differential , while caves often form at the base through wave or water undercutting, and talus slopes accumulate as loose rock debris at the foot, resulting from and . Cliff height is standardly measured as the vertical from the base (often the toe or ) to the or , employing methods such as clinometer readings for combined with measurements via , or advanced techniques like and GPS surveys for precise topographic profiling. Structural integrity is assessed through indicators like the —the maximum of rock layer inclination relative to —and the —the direction of the horizontal line along the layer's with a — which reveal orientation and potential stability risks from misalignment with erosive forces.

Erosion and Stability

Cliff erosion primarily occurs through a combination of subaerial processes and external forces that progressively weaken and remove material from the cliff face. Physical , such as wetting-drying cycles, salt crystallization, and freeze-thaw action, breaks down rock into smaller fragments, while chemical dissolves minerals, particularly in sedimentary formations. Rainfall exacerbates these processes by promoting , forming gullies and rills, and increasing saturation, which can trigger landslides during intense or prolonged events. Seismic activity further contributes by inducing ground shaking that dislodges blocks and amplifies instability, with earthquakes accounting for significant portions of retreat in tectonically active regions, such as up to 57% of cliff-top retreat over 72 years along parts of the coast. For soft rock sea cliffs, typical annual retreat rates range from 0.3 to 1.0 meter, though these vary by location and material strength, with higher rates during episodic events like storms. Several factors influence cliff stability, determining the rate and likelihood of collapses. Vegetation plays a key role by anchoring and through systems, which enhance and reduce surface , particularly on upper . Rock , dictated by the material's inherent strength—such as the binding properties of clay-rich sediments versus loose sands—resists breakdown, with more cohesive formations exhibiting lower retreat rates. levels critically affect durability; elevated pore pressures from seepage or saturation diminish on the , promoting along joints or bedding planes. Common triggers for collapses include intense storms that combine high rainfall with wave undercutting at the base, and seismic events that exploit pre-existing weaknesses, leading to rapid mass movements like rockfalls or slumps. Monitoring and predicting cliff stability involves assessing slope conditions to forecast potential failures without relying on complex computations. Basic evaluates factors like material strength, water content, and slope angle through geotechnical surveys and field observations to identify vulnerable zones, such as those with high or weak cohesion. Techniques like , aerial , and historical mapping track retreat over time, revealing patterns of episodic rather than uniform rates. Probabilistic approaches, such as simulations, estimate future retreat distances by incorporating variability in wave impact and rainfall. Historical examples illustrate these dynamics: in 1996, a cliff experienced 180 meters of in a single day from a storm-induced , destroying two houses; similarly, the triggered widespread failures along California's northern cliffs, damaging homes and infrastructure.

Notable Examples

Largest Cliffs

The largest cliffs are typically measured by their pure vertical drop—the uninterrupted from the highest point of the overhanging lip to the base—rather than total elevation or sloped relief, as this metric highlights extreme steepness suitable for or geological study. Alternative criteria include nearly vertical face height (allowing slight inward or outward lean up to 15 degrees) or overall face area for massive walls, though pure remains the standard for global records. These distinctions arise because many high-relief faces, like the Rupal Face of at over 4,500 meters of total south-face rise, include gentler slopes that reduce effective verticality. Mount Thor in Auyuittuq National Park, Baffin Island, Canada, holds the record for the world's greatest pure vertical drop at 1,250 meters (4,101 feet), measured along its west face, which overhangs at an average 105-degree angle with a 15-degree lip protrusion. This granite monolith, part of the ancient formed 3.5 billion to 570 million years ago, was sculpted by repeated glacial plucking during the Pleistocene, where ice sheets quarried resistant rock, leaving sheer faces unsupported by softer surrounding material. Such glaciated igneous formations in regions enable these extremes, as the hard rock withstands erosion while valleys deepen below. The Great Trango Tower in Pakistan's Range features the tallest nearly vertical drop at 1,340 meters (4,396 feet) on its east face, a wall rising from the that challenges the pure-drop record due to its minimal 5-10 degree variance from vertical. Composed of durable Karakoram intruded during the Himalayan , its face formed through tectonic uplift and freeze-thaw fracturing, amplified by high-altitude in a non-glaciated but arid, erosive . This combination of resistant rock and structural integrity allows vast, unbroken expanses uncommon in more weathered ranges. In , the (Trollveggen) in Norway's Romsdalen Valley stands as the tallest vertical rock face at 1,000 meters (3,281 feet) of near-perpendicular , overhanging up to 50 meters at its crest and rising abruptly from the valley floor. Its metamorphic , derived from rocks hardened over 400 million years ago, was sharpened by glaciations that carved the fjord-like valley, exposing a uniform, fracture-resistant slab ideal for extreme scale. Like , this glaciated setting in resistant crystalline underscores why northern latitudes host many superlative cliffs, where ice action preferentially erodes weaker strata to isolate towering walls.

Famous Cliffs

The in hold profound historical and symbolic importance, particularly during , when they served as a frontline defense and a beacon of hope for British forces. In 1940, during the , the cliffs provided a reassuring sight for over 338,000 Allied troops rescued from the beaches of northern , embodying resilience amid invasion threats. Their cultural resonance extends to literature, as William Shakespeare's features the cliffs of in a pivotal scene where the blinded contemplates suicide, symbolizing despair and redemption; a nearby promontory is even named Shakespeare Cliff in tribute. The in Ireland are celebrated for their role in and as a major tourist destination, drawing inspiration from ancient myths and modern media. Local legends associate the cliffs with tales of mermaids, enchanted beings, and lost lovers, rooted in the site's ancient fort of Mothar, which lends its name to the landscape. These stories have permeated , influencing poets and musicians for generations, while the cliffs' dramatic presence has appeared in films like and the Half-Blood Prince (2009), enhancing their global allure. El in , , gained fame through its pioneering role in history, marking a milestone in exploratory achievement. On November 12, 1958, climbers Warren Harding, Wayne Merry, and George Whitmore completed the of the route after 47 days of effort, using innovative aid techniques that pushed the boundaries of big-wall . This feat, led by Harding, transformed El Capitan from an unclimbed monolith into an iconic challenge, inspiring subsequent generations of adventurers and documented in works like the 2018 film .

Regional Distribution

Africa

Africa's cliffs exhibit remarkable geological diversity, shaped by tectonic rifting, volcanic activity, and prolonged arid erosion across the continent's varied landscapes. In , the features prominent escarpments formed by faulting along the System, which initiated during the epoch around 23-5 million years ago, leading to significant crustal uplift and the creation of steep scarps that define the valley's boundaries. These rift-related cliffs, often fault scarps, contrast with volcanic formations in other regions, highlighting the interplay of and magmatism. The in stands as a premier example of basaltic cliffs, where a thick layer of erosion-resistant , up to 1,500 meters thick, caps the and rises to elevations exceeding 3,000 meters, resulting from flood basalts that were later uplifted and dissected. In Ethiopia's , dramatic reach heights of about 1,500 meters, formed from basaltic lavas that have been deeply incised by fluvial and periglacial processes, creating sheer cliffs and pinnacles along the northern edge of the . Further north in the , the of showcase volcanic cliff formations, with flows and ring dikes eroded into steep scarps and plugs, remnants of alkaline volcanism on a basement swell. Regional variations underscore the continent's tectonic history, particularly the Miocene uplift associated with the Afar hotspot and rift propagation, which elevated plateaus and exposed cliff faces across , including the Ethiopian Plateau's margins. In southern and northern , volcanic influences dominate, as seen in the basalts of the and the Hoggar's intrusive features, both contributing to the stability and prominence of these cliffs. Arid erosion patterns, prevalent in the and Kalahari margins, enhance cliff development through wind abrasion and differential , sculpting jagged profiles in and exposures that resist mechanical breakdown in hyper-arid conditions. This combination of volcanic resilience and erosional sculpting results in some of 's most enduring cliff landscapes.

Americas

In North America, cliffs are prominently featured in the Yosemite Valley of California, where massive granite faces such as El Capitan and Half Dome rise sheerly up to 3,000 feet (914 meters) above the valley floor, formed from durable granitic rock that resists erosion and preserves bold vertical forms. These granite cliffs dominate the park's geology, comprising nearly the entire landscape within its boundaries and resulting from the interplay of intrusive igneous activity and subsequent glacial sculpting. Further north, the Canadian Rockies exhibit dramatic scarps and cliffs composed primarily of sedimentary rocks like limestone and shale, thrust upward along northeast-southwest trending faults that create steep, cliff-forming carbonates from Cambrian to Devonian periods. A notable example is Angel's Landing in Zion National Park, Utah, a narrow sandstone fin protruding 1,488 feet (454 meters) above the valley floor to an elevation of 5,790 feet (1,765 meters), showcasing the region's layered Navajo Sandstone formations exposed by erosional processes. In , the host extensive escarpments, particularly in Peru's , the highest tropical mountain range with over 33 peaks exceeding 18,000 feet (5,500 meters) and numerous glacial features that contribute to steep, fault-bounded cliffs along the fault zone. This range, spanning 200 kilometers, features rugged escarpments shaped by tectonic uplift and glacial retreat, with prominent faces on peaks like rising sharply from surrounding valleys. In , the tepuis of the Guiana Highlands, such as , present isolated table-top mountains with precipitous cliffs dropping up to 1,000 meters (3,280 feet) from summits reaching 2,450 meters (8,040 feet), creating near-vertical walls that isolate unique summit ecosystems. Northern American cliffs owe much of their form to glacial carving during the Pleistocene, where ice masses excavated U-shaped valleys and accentuated vertical faces in resistant bedrock like Yosemite's granite and the Rockies' carbonates. In contrast, southern formations arise from subduction zone tectonics, as the Nazca Plate converges with the South American Plate at rates of 6-10 centimeters per year along the Peru-Chile Trench, driving crustal shortening and uplift that builds the Andean escarpments and tepui margins. Historical explorations in the 19th century illuminated these features; in Yosemite, the Mariposa Battalion first entered the valley in 1851, documenting its towering cliffs, while Joseph Walker approached the brink in 1833. The Palliser Expedition (1857-1860) mapped Canadian Rockies scarps for potential settlement, and botanists like Robert Schomburgk ascended tepuis such as Roraima in 1842, revealing their sheer drops; meanwhile, mid-century Andean surveys by Peruvian and international teams began systematic charting of Cordillera Blanca escarpments.

Asia

Asia's cliffs are predominantly shaped by the continent's intense tectonic activity and climate, resulting in dramatic orogenic and coastal landforms that reflect ongoing plate collisions and seasonal processes. The Himalayan range exemplifies this through steep faces formed by the India-Eurasia collision, which began approximately 50 million years ago and continues to drive uplift. rains exacerbate on these slopes, carving vertical escarpments from resistant . A prominent example is the Rupal Face of in the , rising about 4,500 meters from base to summit, formed from and granitic rocks exposed by rapid tectonic uplift. Pleistocene uplift phases, particularly from around 1 million years ago, intensified incision and cliff development across the Himalayan syntaxis, with fluvial and glacial processes contributing to their steepness. In contrast, China's Danxia landforms, such as those in , consist of layered red sandstone cliffs up to 300 meters high, sculpted by differential erosion of continental deposits during uplift and . Japanese sea cliffs, like the 257-meter Matengai Cliff on , highlight coastal features eroded by Pacific waves and typhoon-driven storms, often exposing layered volcanic and sedimentary rocks from the archipelago's subduction zone . These cliffs differ from the monolithic Himalayan types, which derive from massive crystalline basement rocks resistant to layering, whereas Danxia and examples showcase stratified sedimentary sequences that promote stepped or colorful profiles through selective . Such variations adapt cliff types to Asia's diverse , from collisional orogens to margins.

Europe

Europe's cliffs exhibit a diverse array of formations shaped predominantly by , marine erosion, and tectonic stability following the Pleistocene , resulting in stabilized landscapes that contrast with more dynamic global counterparts. In northern and western regions, walls and coastal escarpments reflect intense glacial carving, while southern Mediterranean and areas feature karstic dissolution and chalky outcrops influenced by temperate climates. These features have evolved over , with human activities further altering edges through quarrying and stabilization efforts. Prominent examples include the Cliffs of Étretat in Normandy, France, renowned for their dramatic white chalk formations rising up to 100 meters, formed from Upper Cretaceous sediments deposited in ancient marine environments and sculpted by wave erosion into natural arches and pinnacles like L'Aiguille. These Coniacian-age chalk cliffs, part of the Alabaster Coast, exemplify post-orogenic uplift and differential erosion in a temperate setting, where softer chalk layers erode faster than overlying harder limestones. Further north, the Black Cuillin in Scotland's Highlands on the Isle of Skye present steep, jagged basalt and gabbro cliffs up to 1,000 meters, remnants of a Tertiary igneous intrusion from 60 million years ago, where glacial polishing during the Ice Age enhanced their sheer faces and corries. These dark, rough-textured outcrops provide exceptional grip for climbers due to the crystalline gabbro structure. In the Mediterranean, the calanques of and , such as those near and , consist of narrow, steep-walled inlets carved from and carbonates, forming a karstic coastline through fluvial incision followed by marine flooding after the . These white cliffs, often exceeding 300 meters in height, result from tectonic uplift of the fold belt and subsequent dissolution in a , creating inaccessible coves with minimal cover. Regional specifics highlight the role of glaciation in Norway's walls, where Pleistocene ice sheets eroded pre-existing valleys to depths of over 1,000 meters, leaving sheer granitic and metamorphic cliffs that were later submerged during post-glacial sea-level rise around 10,000 years ago. In the , cliffs like those in the and Totes Gebirge plateau feature dolomitic and calcitic escarpments shaped by dissolution along joints, with examples such as the Rofan massif showcasing high-altitude pavements and deep shafts from s. Historical records indicate varying erosion rates in European coastal cliffs, with sites like England's Coast experiencing approximately 2 meters per year since times, driven by soft retreat that has submerged over 30 villages. Temperate processes, including freeze-thaw cycles and salt crystallization in intertidal zones, contribute to this retreat, particularly on chalk and limestone faces where rates average 0.04 to 0.4 meters annually in areas like the . modifications, such as 19th-century beach mining and modern groynes along soft cliffs in , have accelerated localized erosion by reducing supply, while stabilization measures like rock armor in Italy's region aim to mitigate wave undercutting. Stability issues in coastal , including increased retreat from storm surges, underscore the need for integrated conservation amid ongoing temperate climatic influences.

Oceania

Oceania's cliffs are predominantly shaped by volcanic activity, tectonic uplift, and marine erosion in isolated island settings, distinguishing them from continental formations elsewhere. The region's geology features dramatic sea cliffs rising from fjords, escarpments, and atoll perimeters, often resulting from Holocene and Pleistocene processes along the Pacific Ring of Fire. Volcanic collapses and coral limestone accumulations contribute to their steep profiles, with many formed during post-glacial sea-level rise and plate boundary interactions. In New Zealand's , fjord-side cliffs exemplify glacial and tectonic sculpting, with walls reaching 1,500–2,000 meters in height along sites like . These formations originated from glaciations that deepened pre-existing valleys in uplifted gneissic rocks, following 1,000–3,000 meters of elevation gain over the past 7 million years due to along the Australia-Pacific plate boundary. The sheer faces, among the world's highest sea cliffs, drop directly into fjord waters up to 420 meters deep, enhanced by extreme annual rainfall exceeding 7 meters that feeds hanging valley waterfalls. Australia's Great Escarpment includes the along the , where limestone scarps plunge 60–120 meters into the over a 120-kilometer stretch. These coastal features formed through regressive of the elevated Nullarbor Plateau, a remnant of ancient marine sedimentation from the Eocene to epochs, with wave action undercutting the base to maintain their verticality. Hawaiian sea cliffs, such as those on , highlight volcanic collapse mechanisms, with faces rising over 900 meters along the north shore. The Kalaupapa cliffs resulted from a massive about 1.5 million years ago, when the northern third of East Volcano sheared off, creating a debris field that triggered one of Earth's largest tsunamis while exposing basaltic post-eruption faces. Similar profiles occur on and the Nā Pali Coast, eroded by Pleistocene stream incision and wave action on remnants. Coral limestone cliffs characterize many Pacific atolls and raised islands, as seen in , where steep coastal escarpments up to 60 meters border a central plateau. 's formations stem from an uplifted coral atoll, with karstic dissolving the porous to form chasms and caves while preserving sheer drop-offs from tectonic uplift and solution processes over the past 2–3 million years. In Palau's Rock Islands, similar coralline rises create rugged, mushroom-shaped outcrops from ancient reef buildup atop volcanic cores during the . Volcanic collapses remain a key regional specific, often post-dating shield-building eruptions in the , as evidenced by submerged sea cliffs around remnant volcanoes like West Molokaʻi. These events expose fresh, unstable faces prone to further marine undercutting. Tsunami-influenced coastal profiles add uniqueness, with ancient waves depositing s atop Tongan cliffs—such as a 1,200-tonne over 30 meters above from a ~7,000-year-old event—sculpting irregular notches and amplifying erosion in low-lying island margins.

Ecological Role

Flora Habitats

Cliffs provide harsh yet specialized habitats that foster unique communities adapted to conditions such as limited , high winds, intense , and unstable substrates. These environments often support rare and endemic that thrive in niches unavailable elsewhere, contributing significantly to regional . on cliffs exhibit remarkable adaptations to survive and mechanical stress. Many , including ferns like the smooth cliff brake (Pellaea glabella), develop drought-resistant fronds with waxy coatings and small, clustered leaves that minimize water loss while anchoring into rocky crevices via shallow rhizomes. In regions, such as (Leontopodium nivale) feature dense, woolly hairs on leaves and stems to protect against , cold, and UV radiation, alongside robust root systems that secure them against strong winds on exposed slopes. These adaptations enable cliff-dwelling to endure seasonal by restricting growth and reproduction to brief favorable periods, often relying on wind-dispersed seeds for colonization. Habitat niches on cliffs vary distinctly between exposed faces and shaded ledges, influencing composition. Exposed surfaces favor sun-tolerant, stress-resistant perennials with thick cuticles and reduced sizes, while shaded crevices and overhangs support moisture-retaining like mosses and shade-adapted ferns that exploit higher . Sea cliffs, in particular, serve as hotspots, harboring endemic such as Cheirolophus crassifolius on coastal formations, where spray and create isolated refugia for specialized halophytic . Following erosion events, succession on cliffs proceeds slowly in a primary starting with lichens and crustose that weather rock and accumulate . This is followed by from vascular like ferns and cushion-forming perennials, which stabilize substrates and facilitate mat-forming shrubs over decades, though nutrient-poor soils often limit progression to climax communities. Invasive plants pose significant threats to native cliff flora by outcompeting adapted species for scarce resources and altering microhabitats. Non-native invaders, such as certain grasses and shrubs, can rapidly colonize crevices post-disturbance, reducing native diversity and hindering succession in vulnerable ecosystems like Mediterranean sea cliffs.

Fauna Habitats

Cliffs offer specialized habitats for diverse fauna, particularly those adapted to vertical terrains that provide safety from predators and access to resources. Seabird colonies dominate coastal cliffs, with species like the Atlantic puffin (Fratercula arctica) excavating burrows in grassy slopes and the common guillemot (Uria aalge) occupying narrow ledges. These formations allow dense aggregations, for example, in the UK, where approximately 922,000 common guillemots (as of 2023) breed on coastal cliffs, representing about 22% of the Northeast Atlantic population. In arid regions, reptiles such as the chuckwalla lizard (Sauromalus ater) thrive on desert scarps, utilizing rocky crevices and outcrops for shelter. Mammals like the mountain goat (Oreamnos americanus) also exploit steep cliff faces in alpine areas, scaling near-vertical surfaces to forage and rest. Behavioral adaptations among cliff-dwelling animals emphasize nesting and roosting in elevated, inaccessible sites to reduce predation pressure. Seabirds nest on sheer ledges that deter terrestrial mammals like foxes, while their single-egg clutches or systems further minimize vulnerability during . leverage their agility on precipitous drops, with specialized hooves featuring rough pads and flexible dewclaws for secure footing, enabling quick escapes from threats. lizards employ a defensive inflation of their bodies to lodge firmly in fissures, deterring attackers in exposed scarps. These strategies allow to persist in otherwise hostile environments, where sparse occasionally provides incidental cover or supplementary food like lichens for . Foraging behaviors in cliff habitats are closely linked to structural features like and , influencing and range. Seabirds from elevated cliffs benefit from stronger updrafts for launching into marine foraging grounds, pursuing fish schools offshore via plunge-dives or surface pursuits. Raptors, such as peregrine falcons, hunt along cliff edges, using the vantage for spotting prey mid-flight. Population scales underscore habitat value; seabird colonies, including around 922,000 guillemots and approximately 580,000 pairs of puffins (as of recent estimates), sustain regional through nutrient cycling from marine-derived . However, recent threats like highly pathogenic (HPAI) outbreaks in 2022-2023 have led to substantial declines in these populations, with some colonies experiencing 20-50% mortality as of 2025. Certain migratory species, including soaring raptors, follow cliff lines and ridges as routes, exploiting thermal currents for energy-efficient long-distance travel during seasonal movements.

Human Interactions

Recreational Uses

Cliffs serve as prime locations for a variety of recreational activities that attract adventure enthusiasts worldwide. stands out as one of the most prominent pursuits, encompassing techniques from short sessions to multi-day big wall routes that ascend sheer faces using ropes, harnesses, and protection gear. leverages the strong updrafts along cliff edges for foot-launched flights, allowing pilots to soar over landscapes for extended periods. Hiking trails along cliff rims provide accessible yet exhilarating experiences, with paths like the Rim Trail in offering expansive views while following the contours of dramatic drop-offs. The historical development of cliff-based recreation began with 19th-century alpinists who pioneered ascents during the of alpinism from 1854 to 1865, scaling peaks and cliffs in the European Alps with rudimentary equipment and guides. By the 1970s, innovations in climbing gear—such as nuts and spring-loaded camming devices—facilitated the shift toward , emphasizing technique and physical prowess over artificial aids, as exemplified in routes on cliffs like those in Yosemite. These activities drive substantial economic benefits through tourism. Visitors to the Southeast Utah Group of national parks, including areas like near , spent $397.6 million in 2023, supporting 5,122 jobs and generating $486.1 million in economic output in the region. Annual climbing festivals amplify this impact; for example, Utah's Joe's Valley Bouldering Festival has been recognized for boosting local economies through participant expenditures on lodging, gear, and services.

Hazards and Conservation

Cliffs present significant hazards to human visitors, primarily through rockfalls, falls from heights, and, in regions with seasonal snow cover, . Rockfalls occur when loose rocks detach from cliff faces due to , seismic activity, or freeze-thaw cycles, posing risks to hikers, climbers, and nearby . In , rockfalls happen year-round with an average frequency of one event every five days, resulting in at least 18 fatalities and over 100 injuries historically, including events up to 2022. processes exacerbate cliff instability, contributing to the frequency and scale of these rockfalls by progressively weakening rock structures over time. Globally, non-seismic rockfalls have caused hundreds of deaths; for instance, an inventory of events in from 1803 to 2021 documented 577 fatalities and 266 injuries, highlighting the widespread danger in cliff-prone areas. Falls from heights represent another major risk, particularly during recreational activities like near cliff edges. In the United States, incidents contribute to approximately 20-30 annual fatalities across , with leader falls and ground falls accounting for a significant portion of these deaths, as reported by the American Alpine Club's Accidents in North American Climbing database from 2003 to 2021. Avalanches, though less common on sheer cliffs, can occur in alpine environments where snow accumulates on steep faces, leading to rapid slides that endanger mountaineers; summer avalanches alone have caused multiple fatalities in high-mountain regions like the Rockies. A notable incident was the November 16, 1980, on the upper , which killed three hikers and injured 19 others, prompting immediate trail closure for eight months to clear debris and stabilize the slope. More recently, a December 2022 on the Four Mile killed two hikers and injured others, leading to temporary trail closures. Conservation efforts for cliffs focus on mitigating these hazards while preserving geological integrity, often through designation as protected areas. Many prominent cliff formations are safeguarded within national parks, such as in the United States, a since 1984 that encompasses iconic cliffs and implements strict visitor management to reduce human-induced risks. measures include installing wire mesh netting or cable systems to catch falling rocks and stabilize slopes, as well as replanting native vegetation to bind soil and prevent further degradation; these techniques have been applied in U.S. national parks to protect both visitors and natural features. Legal frameworks, including designations, enforce international standards for site protection, prohibiting activities that accelerate or instability. In response to major incidents, policies have evolved to enhance safety. Following the 1980 Yosemite rockfall, the U.S. Geological Survey expanded monitoring programs, leading to improved hazard mapping. The 1996 Happy Isles rockfall in Yosemite, which killed one person and injured eight, spurred advanced modeling for rockfall prediction and trail rerouting. In the 2000s, after multiple rockfalls at in 2008 that damaged structures and injured three individuals, the realigned rockfall hazard zones, demolished at-risk buildings, and introduced stricter access regulations to limit exposure in high-risk areas. These measures, combined with ongoing geological assessments, have reduced fatalities while balancing with public access.

References

  1. [1]
    Cliff - National Geographic Education
    Jul 2, 2024 · A cliff is a mass of rock that rises very high and is almost vertical, or straight up-and-down. Cliffs are very common landscape features.
  2. [2]
    What Is A Cliff And How Is It Formed? - World Atlas
    Mar 1, 2018 · Cliffs are erosional landforms and are in the form of vertical or nearly vertical rock exposures.
  3. [3]
    [PDF] Formation, Evolution, and Stability of Coastal Cliffs–Status and Trends
    Coastal cliffs are a common landform, particularly on the west, northeast, and Great. Lakes coasts of the United States, as well as within large estuaries. The ...
  4. [4]
    Rocky shore morphology - Coastal Wiki
    Mar 9, 2025 · A cliff is defined in the Oxford English Dictionary as "a steep rock face, especially at the edge of the sea".
  5. [5]
    Cliff - Etymology, Origin & Meaning
    Cliff originates from Old English clif, meaning a steep, rugged rock face or promontory, derived from Proto-Germanic *kliban, with uncertain deeper origin.
  6. [6]
    cliff - Wiktionary, the free dictionary
    Etymology 1. From Middle English clyf, from Old English clif, from Proto-West ... Coordinate term: bluff. (figurative) A point beyond which something ...
  7. [7]
    CLIFF Definition & Meaning - Merriam-Webster
    2025 See All Example Sentences for cliff. Word History. Etymology. Middle English clif, from Old English; akin to Old High German klep cliff, Old Norse klif.
  8. [8]
    cliff, n. meanings, etymology and more - Oxford English Dictionary
    The earliest known use of the noun cliff is in the Old English period (pre-1150). cliff is a word inherited from Germanic. See etymology. Nearby entries.
  9. [9]
    Escarpment - Etymology, Origin & Meaning
    Escarpment, from 1802 French escarpment (from escarper "make steep slope," Italian scarpa "slope"), means a steep slope or cliff.
  10. [10]
    escarpment, n. meanings, etymology and more | Oxford English ...
    OED's earliest evidence for escarpment is from 1802, in a dictionary by Charles James, army officer and writer. escarpment is a borrowing from French. Etymons: ...
  11. [11]
    [PDF] Chapter 12 Tectonic Geomorphology - Find People
    The common element among these tectonic processes is that rock uplift, and spatial gradients in rock uplift, set the stage for erosion to sculpt the land.
  12. [12]
    [PDF] GEOMORPHIC DESCRIPTION SYSTEM
    Aug 14, 2017 · fault-line scarp - (a) A steep slope or cliff formed by differential erosion along a fault line, as by the ... wave erosion, situated at the ...
  13. [13]
    Landslide Types and Processes - USGS Publications Warehouse
    Nov 29, 2016 · Landslide describes a wide variety of processes that result in the downward and outward movement of slope-forming materials including rock, soil, artificial ...
  14. [14]
    Geologic Formations - New River Gorge National Park & Preserve ...
    It was caused by erosion that has occurred over a very long period of time, forming the cliffs and canyon walls. You can see the ongoing effects of erosion ...
  15. [15]
    Glossary of Geologic Terms - National Park Service
    May 22, 2024 · A coarse-grained, generally unsorted, sedimentary rock consisting of cemented, rounded clasts larger than 2 mm (0.08 in) in diameter. conjugate ...
  16. [16]
    [PDF] Wind erosion of the wind-deposited Navajo Sandstone, USA
    Many of the cliff-forming sandstones that provide the scenery were deposited over a span of 100 million years by wind-blown dunes migrating across the ...
  17. [17]
    16.3 Glacial Erosion – Physical Geology
    Glaciers are effective agents of erosion, especially in situations where the ice is not frozen to its base and can therefore slide over the bedrock or other ...
  18. [18]
    Geology of Bryce Canyon National Park - USGS.gov
    This weak acid, over long time periods, can dissolve the limestone. Since not all the rocks are composed of limestone, there is uneven weathering, which is ...
  19. [19]
    Faults in Basalts: Sea Caves and Sea Stacks at Santa Cruz Island
    Caves along faults tend to be very long, narrow and straight. The largest sea caves worldwide are formed in basalts that are resistant to erosion and, ...
  20. [20]
    Glad You Asked: Igneous, Sedimentary, & Metamorphic Rocks
    Sandstone: Sandstone is composed of cemented sand grains and is the cliff-forming rock commonly seen in southern Utah. Two famous formations are the Entrada ...
  21. [21]
    Rocky Coast Landforms (U.S. National Park Service)
    Mar 20, 2019 · Bluffs, cliffs, and terraces form as rock is eroded. Fjords are made when glacial valleys are filled with water when sea level rises. Fjords.
  22. [22]
    Sea cliffs: Their processes, profiles, and classification | GSA Bulletin
    Jun 1, 2017 · General concavity or convexity of sea-cliff profiles is controlled by relative rates of erosion by marine and subaerial processes.
  23. [23]
    Divergent Plate Boundary—Continental Rift - National Park Service
    Feb 11, 2020 · The colder upper crust cracks and breaks along faults (like peanut brittle), causing earthquakes and forming long mountains (ranges) separated ...
  24. [24]
    Architecture of normal faults in the rift zone of central north Iceland
    This study examines the architecture of brittle extensional fractures in a rift zone of Iceland. Analysis of the shape of fault scarps and distribution of throw ...
  25. [25]
    A simple stress-based cliff-calving law - TC
    Sep 24, 2019 · In contrast to ice-shelf calving, an increase in calving from grounded glaciers contributes directly to sea-level rise. Ice cliffs with a ...
  26. [26]
    Escarpment - National Geographic Education
    Oct 19, 2023 · An escarpment is an area of the Earth where elevation changes suddenly. Escarpment usually refers to the bottom of a cliff or a steep slope.Missing: depositional | Show results with:depositional
  27. [27]
    5 Weathering, Erosion, and Sedimentary Rocks - OpenGeology
    Sedimentary rock is classified into two main categories: clastic and chemical. Clastic or detrital sedimentary rocks are made from pieces of bedrock, sediment, ...
  28. [28]
    [PDF] 7 Structure of Rock Bodies - Earth's Dynamic Systems
    Joints are tension fractures in brittle rocks along which no shear has occurred. They form at low pressure and are found in almost every exposure. The simplest ...
  29. [29]
    Cliffs - Missouri Department of Conservation
    Although any cliff with a broad, steep face may be called a bluff, the term bluff refers to a high bank or bold headland with a broad, precipitous, sometimes ...
  30. [30]
    [PDF] The Measurement and Interpretation of Coastal Cliff and Bluff Retreat
    Coastal cliff and bluff retreat is measured using field surveys, profiling, aerial photos, digital photogrammetry, lidar, and historical maps.
  31. [31]
    [PDF] Cliff Feature Delineation Tool and Baseline Builder Tool, Version 1.0 ...
    The Cliff Feature Delineation Tool conceptually displays the cliff delineation process, including cross-shore transects, cliff top and toe lines, and ...
  32. [32]
    Earthquake contributions to coastal cliff retreat - ESurf
    Aug 9, 2023 · 57 % of cliff-top retreat over 72 years. Earthquake-related debris piles at the base of the cliffs have been rapidly eroded since the 2016 ...
  33. [33]
    Mount Thor: The mountain with Earth's longest vertical drop
    Jul 18, 2025 · Mount Thor has the largest vertical drop, with a 4,100-foot drop from its western cliff, and a 15-degree overhang, making it "steeper than  ...
  34. [34]
    Great Trango Tower: The Biggest Big Wall
    Jul 30, 2025 · Located in the Baltoro Glacier region of northern Pakistan, Great Trango, the tallest formation in Trango Valley, features 4,396 vertical feet ...
  35. [35]
    Top 10 Tallest Cliffs in the World - Topo Streets
    Cape Enniberg (Faroe Islands): ~2,474 ft (754 m) towering basalt sea cliff on Viðoy Island. Croaghaun (Ireland): ~2,257 ft (688 m) sheer Atlantic sea cliffs on ...
  36. [36]
  37. [37]
    Trollveggen | Nature Attractions | Åndalsnes - Visit Norway
    Rating 4.5 (52) Trollveggen is Europe's tallest vertical, overhanging rock face at 1,000 meters, located in the Romsdalen valley, and is attractive to climbers and tourists.<|control11|><|separator|>
  38. [38]
    White Cliffs of Dover - History and Facts
    Jun 11, 2021 · During the Second World War, the White Cliffs of Dover were Britain's frontline from 1941 and large gun batteries were constructed along the ...
  39. [39]
    White Cliffs of Dover: Why are they so important to the British? - BBC
    Aug 29, 2012 · They have witnessed some of the most dramatic moments in English history, including the return of British forces rescued from Dunkirk in WWII.
  40. [40]
    The Cliffs of Moher | Ireland.com
    On an island of storytellers, it's no surprise that one of the most dramatic landscapes comes with its fair share of folklore and fantasy.Missing: significance | Show results with:significance
  41. [41]
    Lights, Camera…Action! The Cliffs of Moher in Pop Culture
    Jan 27, 2025 · The cliffs are tied to many local legends and myths, including stories of lost lovers, mermaids, and enchanted beings, making them a recurring ...
  42. [42]
    50th anniversary of first ascent of El Capitan - SFGATE
    Nov 9, 2008 · Harding, Merry and Whitmore topped out on El Capitan on Nov. 12, 1958, establishing the Nose route. The 2,900-foot rock face is now world famous ...
  43. [43]
    El Capitan speed climbing record: History of the route - Red Bull
    Jun 9, 2020 · When Warren Harding, George Whitmore and Wayne Merry first climbed the mighty 914m route in 1958, they took 45 days. Most 'normal' climbers now ...<|control11|><|separator|>
  44. [44]
    East African uplift as a catalyst for Middle Miocene faunal transitions
    Oct 15, 2025 · The East African uplift during the Miocene played a crucial role in reshaping regional climates, ecosystems, and faunal communities, ...
  45. [45]
    The uplift of the East Africa - Arabia swell - ScienceDirect
    At the beginning of Miocene, the East African Rift (EAR) started the expansion both north and south from the Turkana region (Purcell, 2017). Between 18 and ...
  46. [46]
    [PDF] Geomorphometric indices over the Drakensberg basalts
    The region has a maximum elevation of 3482m. a.s.l., with the basalts typically extending to 1000m above the underlying sandstones.
  47. [47]
    [PDF] THE CASE OF THE SIMIEN MOUNTAINS
    This basin is bounded to the west by uplifted Precambrian crystalline metamorphic rocks, and to the east by a ridge composed of Miocene basalts. The Simien ...<|control11|><|separator|>
  48. [48]
    Cenozoic alkaline volcanism of the Atakor massif, Hoggar, Algeria
    Jan 1, 2007 · The Atakor massif is a part of the Hoggar volcanic province, which was emplaced on top of a basement swell initiated during the Cretaceous.
  49. [49]
    The Mid-Miocene East African Plateau: a pre-rift topographic model ...
    Jan 1, 2011 · Here, we report on the formation of high topography in East Africa prior to Cenozoic rifting. We infer topographic uplift of the East African ...<|control11|><|separator|>
  50. [50]
    Geology - Yosemite Valley - National Park Service
    The sheer cliffs of Yosemite Valley, the spire-like peaks of the high country, and the many rounded domes all result from the fact that granite is very strong: ...Granite · Rockfall · Glaciers
  51. [51]
    Granite - Yosemite National Park (U.S. National Park Service)
    Granite dominates the geology of Yosemite National Park. The park boundary perfectly frames a landscape that is composed almost entirely of granite.Missing: characteristics | Show results with:characteristics
  52. [52]
    The Magnificent Southern Canadian Rockies - GeoExpro
    Dec 4, 2015 · In the Rocky Mountain belt the thrust faults run north-east to southwest and are generally hard cliff-forming carbonates from the Cambrian, ...
  53. [53]
    Angels Landing Permits & Hiking - Zion - National Park Service
    After you get a permit. Prepare for your hike! Along this 5.4 mile round-trip hike, you will gain 1,488 feet in elevation. Most ...Zion National Park marks two... · Gallery · 2024 Seasonal Lottery Dates
  54. [54]
    Database and Map of Quaternary Faults and Folds in Perú and its ...
    To the west, the Cordillera Blanca fault zone forms the western limit of this 120-170 km wide region of active extension.
  55. [55]
    Cordillera blanca | Peru | climbs in the Andes - Andean Ascents
    It is well known for its legendary beauty and the many options it offers with its 33 major peaks over 5500m and 16 peaks over 6000m high. We propose the two ...
  56. [56]
    Venezuela's Flat-Topped Mountains - NASA Earth Observatory
    Jul 12, 2021 · More than 100 tepuis, which can range 1,000 to 3,000 meters (3,000 to 10,000 feet) in height, are located in the park.
  57. [57]
    Oceanic/Continental: The Andes - The Geological Society
    The Nazca plate subducts under the South American plate, causing earthquakes, obduction, and crustal shortening, leading to the formation of the Andes ...
  58. [58]
    Explorers and Recorders - Yosemite National Park (U.S. National ...
    Yosemite Valley from Glacier Point, 1866. The floor of Yosemite Valley has experienced many changes since the first European Americans arrived with the Mariposa ...
  59. [59]
    Explorations in the Canadian Rockies - Watershed Notes
    Jul 15, 2020 · The late-1800s travels in the Rockies of British mountaineers HEM Stuttfield and Norman Collie, in Climbs and Explorations in the Canadian Rockies.
  60. [60]
    Venezuela's lost world - BBC
    Oct 25, 2012 · The most accessible tepui, 2,180m-high Roraima, was unexplored until 1884. Today, the plateaued summit is home to small waterfalls, natural ...
  61. [61]
    The Himalayas: Two Continents Collide
    Jul 11, 2025 · This immense mountain range began to form between 40 and 50 million years ago, when two large landmasses, India and Eurasia, driven by plate movement, collided.Missing: cliffs | Show results with:cliffs
  62. [62]
    Monsoon controls on sediment generation and transport: Mass ...
    The Asian summer monsoon exerts significant influence over the erosion and weathering of South Asia, and we explore in detail here the consequences related ...
  63. [63]
    Fluvial incision and tectonic uplift across the Himalayas of central ...
    Nov 10, 2001 · The pattern of fluvial incision across the Himalayas of central Nepal is estimated from the distribution of Holocene and Pleistocene terraces and from the ...
  64. [64]
    China Danxia - UNESCO World Heritage Centre
    It is characterised by spectacular red cliffs and a range of erosional landforms, including dramatic natural pillars, towers, ravines, valleys and waterfalls.
  65. [65]
    Chapter 12 The rock coast of Japan - Lyell Collection
    Jul 25, 2014 · Rocky coasts are common, most having a steep cliff with coastal recession being primarily driven by wave erosion. A fundamental relationship ...
  66. [66]
    Matengai Cliff, Kuniga Coast | List of Geopark Sites and Treasures
    This 257 m high cliff is the one of the most spectacular sea cliffs in Japan. It was carved by erosion from the strong winter winds and waves.
  67. [67]
    Formation of Norwegian Fjords | Journal of Glaciology
    Jan 30, 2017 · Glaciers had their inception in the heads of valleys of a mature landscape; they lengthened, eroding the valleys on their way to the sea (a ...<|separator|>
  68. [68]
    [PDF] The rock coast of continental Europe in the Atlantic - HAL
    Apr 25, 2024 · The continental European Atlantic rocky coasts show a great variability of rock types and structural contexts, as well as different wave ...
  69. [69]
    [PDF] The High Normandy Chalk Cliffs: An Inspiring Geomorphosite for ...
    The Etretat cliffs are chiefly cut in the Coniacian chalk, but the upper Turonian appears locally. Morphological characteristics of the site of Etretat result ...
  70. [70]
    Cliffs of Etretat, France : Geology, Formation
    Jul 16, 2024 · Sedimentary Origin: The cliffs are primarily composed of chalk and limestone, which originated from the accumulation of marine sediments during ...
  71. [71]
    Cuillin Hills, Skye - Scottish Geology Trust
    The Cuillin Hills on the Isle of Skye have fascinated geologists for over 200 years, encouraging multiple field expeditions despite the steep, jagged peaks.Missing: cliffs | Show results with:cliffs
  72. [72]
    Gabbro, Isle of Skye - The Geological Society
    The Cuillin Hills on Skye are well known by rock climbers – the coarse, crystalline rock provides excellent grip. These mountains are made of gabbro, ...
  73. [73]
    Geology and landscapes | Parc national des calanques
    The limestone rocks of the National Park were originally made of sediment. This was 80 million years ago, during the Mesozoic, Jurassic and Cretaceous periods: ...
  74. [74]
    Rocky habitats | Parc national des calanques
    The limestone cliffs of the Calanques host a wealth of, often unexpected, biodiversity that reveals itself to those who are ready to take the time to observe ...
  75. [75]
    Karst landscape of the alps - Geoweg Achensee
    Karst landscape of the alps · Rofan (Tirol) · Totes Gebirge (Upper Austria) · Grazer Bergland (Styria).
  76. [76]
    The cliff erosion rates from 1852 to 1995 in the Hornsea to Cowden ...
    Over 30 villages have been lost since Roman times and historic records give erosion rates of 2m annually over the 50km frontage.
  77. [77]
    Regional coastal cliff classification: Application to the cantabrian ...
    Nov 15, 2024 · The study found that Cantabrian coastal cliffs have a low mean retreat rate of 0.042 m/year, with a maximum retreat rate of up to 0.4 m/year in ...
  78. [78]
    Human interference on soft cliff retreat: examples from Christchurch ...
    Nov 1, 2012 · Human influence on coastal change​​ Cliff retreat has been heavily influenced by humans through beach mining and dredging since at least the 19th ...
  79. [79]
    Constraints on long-term cliff retreat and intertidal weathering ... - ESurf
    May 10, 2023 · Rock coasts located in a weak lithology, such as chalk, are likely to be most vulnerable to climate-change-triggered accelerations in cliff retreat rates.
  80. [80]
    Fjords and towering sea cliffs of Fiordland - IUGS-Geoheritage.org
    Globally significant examples of spectacular fjords, deeply carved by glaciers through gneissic rocks uplifted high along a convergent plate boundary.
  81. [81]
    11 Interesting Facts About Great Australian Bight - Marine Insight
    Apr 16, 2024 · It spans Western Australia and Southern Australia and is surrounded by cliffs that reach 60 to 120 m in height. Situated on the coast of the ...
  82. [82]
    Geology - Kalaupapa National Historical Park (U.S. National Park ...
    Dec 5, 2022 · Hundreds of thousands of years following the cataclysmic landslide, which created the dramatic Molokai cliffs, another geologic event occurred.
  83. [83]
    Niue - National Geographic Society
    A wide variety of geological features dots the island's craggy coastline, including steep limestone cliffs, caves, and sharp, exposed coral formations.
  84. [84]
    Rock Islands Southern Lagoon - UNESCO World Heritage Centre
    The marine site covers 100,200 ha and is characterized by coral reefs and a diversity of other marine habitats, as well as 445 coralline limestone islands ...
  85. [85]
    [PDF] Geology and ground-water resources of the island of Molokai, Hawaii
    Marine erosion attacked both parts of the island, producing high sea-cliffs on the windward coast. ... small lava cone at the foot of the northern cliff, forming ...
  86. [86]
    Boulder washed inland a sign of Pacific tsunami history - Phys.org
    May 21, 2025 · "We had been surveying the southern side of the island of Tongatapu looking along the coastal cliffs at evidence of past tsunamis," Mr.
  87. [87]
    Cliff-dwelling plants: rare and precious species in harsh habitats
    The cliff environment poses multiple challenges to seedling survival, including water scarcity, temperature extremes, intense solar radiation, pathogen threats, ...
  88. [88]
    Smooth Cliff Brake - Missouri Department of Conservation
    Jul 8, 2024 · Smooth cliff brake is a perennial fern that grows as a cluster of leaves from a rhizome. It typically grows out of an exposed limestone or dolomite bluff or ...
  89. [89]
    Cliffs as Natural Refuges | American Scientist
    Rocky precipices around the world provide a surprisingly sheltered environment for plants and animals.
  90. [90]
    These plants are thriving in extreme cliff conditions—here's how
    Apr 6, 2019 · The classic adaptation shown by most cliff species to seasonal climate was an ability to limit their growing and reproductive phases to the ...
  91. [91]
    Calcareous Cliff Community - Conservation Guides
    Jan 23, 2024 · Exposed cliffs are more sparsely vegetated and plants are typically found rooted in small amounts of soil that accumulates on ledges, or in ...
  92. [92]
    Cheirolophus crassifolius
    Cheirolophus crassifolius is a perennial, rupicolous shrub growing along the north-western and southern coastal limestone cliffs.Summary · How To Recognise It ? · Why Is It Threatened ?
  93. [93]
    Cliffs as priority ecosystems - Conservation Biology - Wiley
    Aug 8, 2023 · Cliffs, all over the world, harbor a large diversity of endemic plants, endangered species, and rock-dwelling birds and bats (Larson et al ...
  94. [94]
    Plant Succession on Granite Rock in Eastern North Carolina
    Succession on the North Carolina rocks follows two major lines, originating (1) anywhere on the rock surface and (2) in depressions. The depressions may be dry, ...
  95. [95]
    Southeastern Coastal Plain Cliff | NatureServe Explorer
    The types of plants that may grow on cliffs is limited by the harsh conditions to those with adaptations to drought and limited nutrients (Edwards et al. 2013) ...
  96. [96]
    THREATS TO HABITATS - LIFE medCLIFFS
    When a non-native invasive plant arrives in a habitat, it can spread and develop in an uncontrolled way because in this habitat there are still no natural ...
  97. [97]
    Common and black guillemot | Wildlife | The Guardian
    Jun 7, 2008 · There are estimated to be 3 million guillemots around our coasts. The common and black guillemot are both found in Britain, and about 30 ...
  98. [98]
    Sauromalus ater (Northern Chuckwalla) - Animal Diversity Web
    They are found in deserts with rocks and crevices for hiding, such as areas of past lava flows, rocky hillsides, and outcrops. They use underground burrows and ...
  99. [99]
    Life on the Edge - National Wildlife Federation
    Gravity-defying acrobatics help mountain goats survive in a world of sheer cliffs and icy winds.<|control11|><|separator|>
  100. [100]
    Coastal cliffs - Scottish Seabird Centre
    Cliffs are an ideal place for seabird colonies because their inaccessibility to land animals reduces the risk of predation. They also provide close proximity ...
  101. [101]
    Understanding seabird behaviour at sea part 2: improved estimates ...
    Oct 16, 2023 · Similarly, gannets considered in our analyses from Flamborough and Bempton Cliffs had lower estimated heights for both foraging and commuting ...4. Discussion · 4.1. Nocturnal Activity · 4.3. Flight Height
  102. [102]
    [PDF] Raptor Migration in North America 2 - HawkWatch International
    Raptor migration routes are defined by topography and water barriers. Most travel south in autumn, and north in spring, with some following coastlines or ...<|control11|><|separator|>
  103. [103]
    Puffin Bird Facts | Fratercula Arctica - RSPB
    The UK is home to about 9% of Europe's Puffins, which breed on islands and sea cliffs around our coasts. But their populations have been declining steeply. Key.
  104. [104]
    NPS Climbing History - Climbing (U.S. National Park Service)
    Nov 10, 2021 · Early NPS climbing was for exploration, rock climbing emerged in the 1930s, the 1950s saw big wall ascents, and the 1980s-90s saw a shift to ...
  105. [105]
    Hang Glider Viewing Platform (U.S. National Park Service)
    Jan 11, 2024 · Updrafts over the coastal bluffs make Fort Funston one of the best hang gliding sites on planet Earth. Fort Funston is especially conducive ...
  106. [106]
    Rim Trail - Grand Canyon Trust
    The Rim Trail stretches for over 13 miles along the rim of the Grand Canyon. With 14 shuttle stops spread out along its course, you have options abound.
  107. [107]
    The "Golden Age" of Mountaineering: 1854 - 1865 - SummitPost.org
    The main remarkable British pioneers of that era were Francis Douglas, Leslie Stephen, John Tyndall, William Mathews, A.W. Moore, Francis Fox Tuckett, Horace ...Missing: cliffs | Show results with:cliffs
  108. [108]
    The Legendary History of Rock Climbing in the Shawangunks
    By the 1950s, the Appalachian Mountain Club oversaw most climbing activities at the cliffs. Obsessed with safety procedures, perhaps the results of a fatal ...
  109. [109]
    Tourism to Southeast Utah national parks contributes over $486M to ...
    Sep 3, 2024 · Canyonlands National Park's 800 thousand visitors in 2023 spent an estimated $106 million, which supported 1,370 jobs, $42.8 million in labor ...
  110. [110]
    Joe's Valley Bouldering Festival Becomes an Award Winner
    Sep 19, 2018 · The Joe's Valley Bouldering Festival, now in its fourth year, was just awarded the Economic Impact Award from the Utah Office of Outdoor Recreation.