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Peak envelope power

Peak envelope power (PEP) is the average power supplied to the by a radio transmitter during one radiofrequency cycle at the crest of the modulation envelope, measured under normal operating conditions. This metric, defined in international and national radio regulations, captures the maximum instantaneous power output for modulated signals where the envelope amplitude varies over time, such as in (AM) or single-sideband () transmissions. Unlike carrier power, which applies to unmodulated signals, PEP specifically addresses the peak of the modulated envelope to ensure compliance with emission standards and prevent interference. In regulatory contexts, PEP serves as the primary measure for specifying transmitter power limits across various radiocommunication services. For instance, the (ITU) use PEP to define operational constraints for broadcasting, mobile, and fixed services, emphasizing its role in managing spectrum efficiency and protecting adjacent bands. In the United States, the (FCC) mandates PEP for operations, capping the maximum at 1.5 kW for most frequency bands, with lower limits such as 200 W on certain segments or 50 W in designated UHF areas to mitigate risks. This approach ensures that transmitters, particularly linear amplifiers, are rated and operated within safe bounds, avoiding or splatter that could degrade signal quality. PEP is especially relevant for voice and data modes with high peak-to-average power ratios (PAPR), where the instantaneous peak can significantly exceed the average power. In modulation, commonly used in amateur and broadcasting, a two-tone test signal yields a PEP that is twice the average power, highlighting the need for amplifiers capable of handling brief high-power bursts without clipping. This distinction is critical for system design, as overdriving a transmitter beyond its PEP rating can produce distortion, increasing emissions and violating regulatory thresholds. By focusing on peaks, PEP provides a conservative yet practical for ensuring reliable and legal operation in dynamic environments. Measurement of PEP typically involves instruments that capture the envelope's peak, such as true peak-reading wattmeters, oscilloscopes for voltage-based calculations, or analyzers in time-domain mode. For accurate results in amateur setups, the (ARRL) recommends using a two-tone audio input to simulate speech peaks, converting the observed peak voltage to power via the PEP = (V_peak / √2)^2 / , where R is the load impedance. Professional tools from manufacturers like employ wideband sensors to trace power over time, enabling precise characterization for compliance testing in mobile and broadcast applications. These methods underscore PEP's foundational role in verifying transmitter performance and maintaining integrity.

Fundamentals

Definition

Peak envelope power (PEP), abbreviated as PEP or PX in ITU Radio Regulations, is defined as the average power supplied to the antenna transmission line by a transmitter during one radio frequency cycle at the crest of the modulation envelope. This metric quantifies the maximum power level in a modulated signal where the envelope varies, providing a standardized measure for regulatory compliance in radio transmissions. The definition is adopted by authoritative bodies such as the International Telecommunication Union (ITU) in its Radio Regulations and the Federal Communications Commission (FCC) in the United States. The concept of peak envelope power originated in early 20th-century radio regulations, emerging alongside the widespread adoption of techniques to address the need for consistent power limits that account for signal variations and mitigate between stations. Key characteristics of PEP include its applicability to non-constant signals, where amplitude fluctuations occur due to , such as in voice or data transmissions that impose varying audio or information content on a . Unlike carrier power, which applies to unmodulated signals, PEP specifically captures the peak instantaneous power at the envelope's maximum, ensuring regulators can enforce limits based on the signal's highest potential output. For instance, in voice-modulated transmissions, PEP accounts for the brief surges caused by audio peaks, like loud syllables, which exceed the average power level.

Mathematical Formulation

The peak envelope power (PEP) is fundamentally expressed in terms of the peak voltage across a resistive load as \text{PEP} = \frac{V_\text{peak}^2}{2R}, where V_\text{peak} denotes the maximum of the RF voltage at the of the , and R is the load . This arises from the between peak voltage and power for a sinusoidal RF , where the root-mean-square () voltage is V_\text{peak}/\sqrt{2}, yielding average power P = V_\text{RMS}^2 / R. For modulated signals employing sinusoidal amplitude modulation, PEP relates to the unmodulated carrier power P_\text{carrier} through \text{PEP} = P_\text{carrier} (1 + m)^2, with m representing the modulation index ($0 \leq m \leq 1 for undistorted modulation). Here, the peak envelope amplitude is A(1 + m), where A is the carrier amplitude, leading to a power scaling by the square of this factor relative to the carrier. A more general derivation employs the complex envelope s(t) of the narrowband bandpass signal, expressed as v(t) = \Re \{ s(t) e^{j 2\pi f_c t} \}, with f_c as the carrier frequency. The time-averaged power over one RF cycle, treating the slowly varying envelope as constant, is P(t) = \frac{|s(t)|^2}{2R}. Thus, PEP is the maximum value of this expression: \text{PEP} = \max_t \frac{|s(t)|^2}{2R}. This captures the power at the envelope peak by integrating the squared instantaneous voltage over the RF period. The formulations rely on the narrowband approximation, wherein the modulation bandwidth is much smaller than the carrier frequency, ensuring the envelope remains nearly constant over an RF cycle for accurate averaging. They further assume no distortion effects, such as amplifier clipping or nonlinearities, which could modify the true envelope peak.

Applications

Amplitude Modulation

In amplitude modulation (AM), particularly full-carrier AM used in broadcast and , peak envelope power (PEP) represents the maximum power level during modulation peaks and is critical for ensuring and equipment safety. At 100% modulation depth, PEP equals four times the unmodulated power, as the envelope amplitude doubles relative to the carrier alone, resulting in a power increase proportional to the square of the voltage. This relationship holds for standard double-sideband AM signals where the carrier remains present, distinguishing it from suppressed-carrier variants. The of an AM signal exhibits an that varies with the modulating superimposed on the . The peaks occur when the instantaneous value of the modulating aligns constructively with the 's , effectively adding to the voltage and doubling the peak amplitude; conversely, negative peaks subtract, reaching zero at full modulation without . This dynamic shape necessitates PEP as a key metric to capture the transient high-power excursions that average power measurements might overlook. Regulatory bodies like the (FCC) incorporate PEP considerations in AM operations to prevent , which could cause spectral splatter and . For instance, FCC rules limit AM broadcast station to 100% on negative peaks (with up to 125% allowed on positive peaks), effectively capping PEP at four times the authorized power for standard operations; high-power broadcasters, such as Class A stations with 50 kW authorization, thus operate with PEP up to 200 kW to maintain while maximizing coverage. In , FCC Part 97 explicitly regulates transmitter output in PEP terms, applying the same principle to AM emissions to avoid exceeding linear capabilities. Monitoring and limiting PEP in AM systems offers advantages in and , as it prevents excursions beyond ratings during peaks without restricting average levels. This approach allows efficient use of in broadcast scenarios while minimizing and ensuring reliable operation in amateur setups.

In single-sideband () , peak envelope () quantifies the maximum instantaneous at the crest of the RF envelope during transient audio peaks, such as those produced by speech bursts, ensuring efficient without unnecessary . This metric is particularly relevant for signals, where the suppression of the and one creates a highly variable that closely follows the modulating audio . According to ITU recommendations, for (emissions like R3E or J3E) is measured using a two-tone test with equal-amplitude audio tones (e.g., 700 Hz and 1700 Hz) to simulate peaks, where the at the envelope crest is calculated as the mean scaled by the square of the peak-to-single-tone deflection on a peak-responding instrument. The characteristics of SSB signals lead to PEP values that can be several times the average during voiced phonemes, driven by the concentrated in audio transients like vowels, which produce sharp crests without the steady carrier component found in . This variability underscores PEP's role in rating transmitter capability for voice communications, where average typically reaches 20-40% of PEP for normal speech, depending on voice characteristics. In practice, these peaks demand linear amplification to avoid intermodulation distortion, maintaining signal purity across the . In , PEP serves as the standard output rating for transceivers, with common specifications like 100 W PEP enabling reliable operation while complying with regulatory limits such as the FCC's 1500 W PEP maximum. This rating prevents overdrive and distortion in linear amplifiers by focusing on peak handling rather than continuous power. 's adoption in accelerated post-World War II for its spectrum efficiency—using approximately half the bandwidth of full-carrier double-sideband AM—with PEP emerging as a key guideline in equipment designs and operating practices, as exemplified by Collins Radio's 500 W PEP systems.

Power Metrics

Comparison with Average Power

Average power represents the time-averaged value of the instantaneous power delivered over a complete cycle or an extended period, serving as a measure of the sustained output in a . In contrast, peak envelope power (PEP) is the average power supplied during a single radiofrequency cycle at the crest of the envelope under normal operating conditions. This distinction is critical in modulated signals, where power varies dynamically with the modulating . In single-sideband (SSB) transmissions, the ratio of PEP to average power during typical voice modulation is approximately 2.5 to 1, reflecting the intermittent nature of speech peaks relative to the overall signal envelope. For amplitude modulation (AM) at full sinusoidal modulation, PEP reaches four times the unmodulated carrier power, while average power is 1.5 times the carrier, resulting in a PEP-to-average power ratio of about 2.67 to 1. These ratios highlight how PEP captures transient maxima, whereas average power better indicates ongoing transmission characteristics. The average power primarily dictates heat dissipation requirements in transmitters and , as it corresponds to the continuous thermal load over time. PEP, however, imposes constraints on to prevent during high peaks and serves as the standard for regulatory power limits, such as those set by the for operations. In practical scenarios, a 100 W PEP typically outputs 20-30 W average power during normal speech, which extends battery life in portable operations compared to constant-power modes like .

Comparison with Other Power Measures

Peak envelope power (PEP) differs from carrier power, which represents the average power supplied to the by an unmodulated transmitter during one cycle. In contrast, PEP captures the maximum power at the peak of the envelope under normal operating conditions, accounting for the effects of on signal . This distinction is particularly relevant in amplitude-modulated systems, where PEP can exceed carrier power significantly during peaks. While PEP is often related to peak , the latter refers to the instantaneous maximum in a signal, such as the highest point in modulated or pulsed waveforms without averaging over the RF . PEP, however, is specifically the average supplied to the over one RF at the crest of the modulation , providing a standardized measure for variations in RF communications. In practice, for many envelope-tracked signals, PEP approximates the peak but emphasizes the 's maximum rather than raw instantaneous values. RMS power, or root mean square power, quantifies the effective power of a signal over time, equivalent to the DC power that would produce the same heating effect in a load. Unlike PEP, which focuses on the crest of the envelope for peak capability assessment, RMS power averages the signal's variations, making it suitable for evaluating overall energy delivery in complex modulated signals. In regulatory contexts, the (ITU) employs PEP as a key metric for licensing amplitude-modulated transmitters, particularly single-sideband systems, to ensure compliance with maximum power limits and interference protection. Some standards, such as those from the U.S. (NTIA), use PEP to calculate (ERP), which incorporates relative to a half-wave dipole to determine total radiated output. ERP thus extends PEP by factoring in effects, often preferred in regulations for broadcast and land mobile services to define service contours and emission limits.

Practical Aspects

Measurement Techniques

Peak envelope power (PEP) is typically measured using specialized RF instruments that capture the maximum instantaneous power within the signal's , ensuring accuracy for modulated waveforms like those in or single sideband. True peak meters employ diode detectors to rectify the RF signal into a video voltage, followed by averaging circuits that integrate over one RF to compute PEP without distorting the peaks. These detectors operate in the peak-detecting for high-power signals, with fast response times (e.g., risetimes around 4.5 ns) to track variations accurately. examples include the Bird 43 Thruline , an insertion-type device using Thruline sensors that measure forward and reflected power in 50-ohm systems, with peak-reading kits enabling PEP assessment for AM and SSB applications up to 10 kW. Modern variants incorporate (SDR) platforms, where the RF signal is downconverted and digitized for detection and PEP calculation via software algorithms, offering flexibility for real-time analysis in and test environments. The method involves sampling the RF through a high- probe or sampler, then deriving PEP from the peak voltage across a known load using the relation PEP = (V_peak² / (2R)), where R is typically 50 ohms. A practical procedure requires an with at least 20 MHz vertical , connected via a line sampler (e.g., Bird 4273) to a 50-ohm ; the transmitter is first calibrated in a continuous like RTTY to set a reference (e.g., 100 W), then switched to with voice input to observe the peaks matching the reference deflection for accurate PEP verification. Internationally, the (e.g., Article 1) define PEP similarly and recommend envelope peak detection methods, often using two-tone signals for compliance testing in services like . Key challenges in these techniques include detector , where elements exceed their linear range (typically above -20 dBm), causing the output to underestimate true peaks and introduce errors in high peak-to-average ratio signals; this is mitigated by selecting sensors with appropriate and applying linearity corrections. ensures traceability in 50-ohm systems by using NIST-referenced signals to adjust for and mismatch, often via multi-point methods that account for uncertainties like ±0.34% at 50 MHz. Regulatory standards, such as those from the FCC for licensing, mandate PEP limits (e.g., 1.5 kW maximum). Two-tone tests are a common method specified in industry practices for measuring SSB PEP, where equal-amplitude tones separated by 300 Hz to 3 kHz (commonly 1 kHz) are applied to simulate voice peaks, ensuring the combined envelope reaches the rated PEP without exceeding targets like -30 .

Level Control Methods

Automatic level control (ALC) is a feedback mechanism employed in radio transceivers to dynamically adjust the input drive level, thereby compressing the signal and capping the peak envelope power (PEP) to prevent overdrive and distortion in the power amplifier. This technique samples the output RF envelope and feeds back a control voltage to attenuate the audio or RF drive when PEP approaches the amplifier's rated limit, ensuring operation remains within linear regions and complies with regulatory constraints. ALC is particularly common in amateur radio transceivers, where it helps maintain PEP below thresholds like the 1.5 kW maximum permitted by FCC rules for U.S. operators on most HF bands. Speech processors enhance average power output in single-sideband (SSB) transmissions by applying pre-emphasis and compression to the audio signal, boosting lower-amplitude components without allowing the envelope peaks to exceed established PEP limits. These devices typically use dynamic range compression with ratios of 10:1 or higher, along with bandpass filtering to emphasize speech frequencies (300-3000 Hz), which increases talk power by 6-12 dB while preserving PEP compliance. In amateur setups, speech processors are integrated into transceivers or used externally to optimize intelligibility over long distances, as the higher average power improves signal-to-noise ratio without risking amplifier saturation or regulatory violations. Manual adjustments involve tuning the transceiver's drive level using a to verify and set PEP output precisely, ensuring the system adheres to legal limits such as the FCC's 1.5 kW PEP cap for amateur stations. Operators typically connect a 50-ohm to the transmitter output, monitor PEP with a , and incrementally adjust the or drive control until the desired power is achieved without overshoot, often targeting 90-100% of the amplifier's rated PEP. This method allows for safe, non-radiating and is essential for regulatory adherence, as exceeding PEP limits can result in fines or license revocation. In modern software-defined radios (SDRs), digital predistortion () linearizes power amplifiers by pre-applying inverse distortions to the signal, enabling efficient operation near PEP limits without . Adaptive algorithms in SDR platforms, such as those using or models, continuously model the amplifier's nonlinear response and compensate in , supporting PEP outputs up to 100 in HF-6 m bands while maintaining spectral purity. This advanced technique is increasingly adopted in high-end SDRs to maximize efficiency and linearity under varying load conditions, reducing the need for excessive backoff from PEP ratings.

References

  1. [1]
    47 CFR 2.1 -- Terms and definitions. - eCFR
    For different classes of emission, the relationships between peak envelope power, mean power and carrier power, under the conditions of normal operation and of ...
  2. [2]
    47 CFR 97.313 -- Transmitter power standards.
    ### Summary of Maximum Transmitting Power Limits (PEP) for Amateur Stations
  3. [3]
    [PDF] RBW influence on peak or mean power measurement of pulsed ...
    This application note explains the use of the Rohde & Schwarz FSW spectrum analyzer family for the measurement of peak power and mean power on pulsed signals.
  4. [4]
    [PDF] ARTICLE 1 Terms and definitions - ITU
    In this definition the term telegraphy has the same general meaning as defined ... peak envelope power (of a radio transmitter): The average power supplied to the.
  5. [5]
    47 CFR 97.3 -- Definitions.
    ### Summary of PEP Definition and Power Limits from 47 CFR 97.3
  6. [6]
    [PDF] Radio Regulations, annexed to the International Telecommunication ...
    the definition of "peak power of a radio trans- mitter" as follows: 61. Peak Power of a Radio Transmitter: The mean power supplied to the antenna during one ...
  7. [7]
    (PDF) Amplitude Modulation Fundamentals - Academia.edu
    Calculate peak envelope power (PEP), given signal voltages and load impedances. ... Problems. Give the formula for modulation index and explain its terms. * ...
  8. [8]
    Amplitude Modulation - W8JI
    Amplitude modulation (AM) involves a carrier signal with sidebands. With 100% modulation, peak envelope power can be four times the carrier power.
  9. [9]
    Peak Envelope Power and Your RF Signal Chain Simulations
    Apr 17, 2020 · The peak envelope power is simply the amplitude of the envelope signal in the time domain. The average simply an average value in the time ...Missing: definition | Show results with:definition
  10. [10]
  11. [11]
    None
    ### Summary: Peak Envelope Power Measurement for Single-Sideband Modulation (ITU-R SM.326-7)
  12. [12]
    A Simple SSB PEP Measuring Procedure - QSL.net
    May 18, 2021 · Note 1: Definition of PEP: Peak Envelope Power (PEP) is the average power supplied to the antenna by a transmitter during one radio-frequency ...<|control11|><|separator|>
  13. [13]
    [PDF] FUNDAMENTALS OF - World Radio History
    ... SSB Communnications System Provides. Transmission and Reception in the 2 to. 30 Mc Range, with 500 Watts PEP. Page 4. TYPE/DESCRIPTION. TRANSMITTERS. 30S-1 ...<|control11|><|separator|>
  14. [14]
    [PDF] Amateur Radio and the Rise of SSB - ARRL
    Byron Goodman's column “On the Air With Single Sideband” was discontinued after March 1954 and the ARRL's hand- book, “Single Sideband for the Radio Amateur,” ...
  15. [15]
  16. [16]
    Intro to RF Power Measurements - Mini-Circuits Blog
    Jul 30, 2024 · This is a measure of how far the peak power lies above the average power values. It is a useful measure in RF communications to reduce power ...
  17. [17]
    RF Power Frequently Asked Questions | Boonton
    Peak envelope power is the maximum point or peak amplitude of a signal's envelope power. What is average power? Average power defines the average power level ...
  18. [18]
    [PDF] Chapter 5 Spectrum Standards
    Jan 1, 2021 · * Transmitter peak envelope power shall be used to determine effective radiated power. ... Effective Radiated Power (ERP). Watts*. Up to 150.
  19. [19]
    RF Power Measurements: Average, Pulse, Peak Envelope Power PEP
    The envelope power is measured by making the averaging time greater than the period of the modulating waveform, i.e. 1/fm where fm is the maximum frequency ...
  20. [20]
    [PDF] Principles of Power Measurement - Electrometric
    A brief history of RF power measurements. Power ... level of the signal's envelope, a peak power meter can deliver more than just the average power.
  21. [21]
    The 43 Series Wattmeters | Bird – The RF Experts
    Built around our field-proven Thruline® design, these portable insertion-type wattmeters deliver direct, accurate measurement of forward and reflected RF power— ...
  22. [22]
    148: Software Defined Radio kit | Tutorial | Build | Test | Softrock Lite II
    May 17, 2014 · ... test of a Softrock Lite II software defined radio (SDR) kit ... #296: SSB & AM RF Envelopes, Peak Envelope Power (PEP), Average Power and more.
  23. [23]
    [PDF] Application Note #2 Transmitter Two Tone Test | PreciseRF
    Mar 3, 2012 · FCC regulations limit the maximum power to 1,500 peak envelope power (PEP). When adjusted properly and operating in their linear region ...
  24. [24]
    Making Sense of RF Output Power | Keysight Blogs
    Nov 12, 2018 · The maximum envelope power is called “peak envelop power (PEP)” which is an important parameter that is used to characterize the output power of ...Missing: derivation complex narrowband
  25. [25]
    47 CFR § 97.313 - Transmitter power standards. - Law.Cornell.Edu
    No station may transmit with a transmitter power exceeding 1.5 kW PEP. (c) No station may transmit with a transmitter power output exceeding 200 W PEP.Missing: 1500W | Show results with:1500W
  26. [26]
  27. [27]
    [PDF] Ham Audio Processing in a Nutshell – Just the Basics - EA1DDO
    In this article, I'd like to acquaint you with the basics of audio processing theory - "just the basics" - and give you an idea of how a professional, broadcast ...
  28. [28]
    [PDF] External Processing for Controlled Envelope Single Sideband - ARRL
    A 2.5 dB increase in average transmitted power is typical, compared with advanced look-ahead ALC systems.Missing: ratio | Show results with:ratio
  29. [29]
    [PDF] ethics and operating procedures for the radio amateurr - ARRL
    measuring PEP power in SSB. • When running 100W PEP, the power meter of the transmitter will indicate 50 W, provided the transmitter is not overmodulated. A ...
  30. [30]
    Digital predistortion of envelope-tracking power amplifiers under ...
    Feb 18, 2013 · This paper demonstrates a scalable digital predistortion (DPD) approach that can be applied under different power back-off levels in envelope-tracking (ET) ...
  31. [31]
  32. [32]