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General characteristics of amplifiersMost amplifiers can be characterized by a number of parameters. Gain
Output dynamic rangeOutput dynamic range is the range, usually given in dB, between the smallest and largest useful output levels. Since the lowest useful level is limited by output noise, this is quoted as the amplifier dynamic range. Bandwidth and rise timeThe bandwidth (BW) of an amplifier is usually defined as the difference between the lower and upper half power points. This is therefore also known as the −3 dB BW. Bandwidths for other response tolerances are sometimes quoted (−1 dB, −6 dB etc.). As an example, a good audio amplifier will be essentially flat between twenty hertz to about twenty kilohertz (the range of normal human hearing), so the amplifier's usable frequency response needs to extend considerably beyond this (one or more octaves either side) and typically a good audio amplifier will have -3 dB points < 10 and > 65 kHz.
Many amplifiers are ultimately slew rate limited (typically by the impedance of a drive current having to overcome capacitive effects at some point in the circuit), which may limit the full power bandwidth to frequencies well below the amplifiers frequency response when dealing with small signals. For a Gaussian response system (or a simple RC roll off), the rise time is approximated by: Tr * BW = 0.35, where Tr is in seconds and BW is in Hz. Settling time and aberrationsTime taken for output to settle to within a certain percentage of the final value (say 0.1%). This is usually specified for oscilloscope vertical amplifiers and high accuracy measurement systems. Slew rateSlew rate is the maximum rate of change of output variable, usually quoted in volts per second (or microsecond). NoiseThis is a measure of how much noise is introduced in the amplification process. Noise is an undesirable but inevitable product of the electronic devices and components. It is measured in either decibels or the peak output voltage produced by the amplifier when no signal is applied. EfficiencyEfficiency is a measure of how much of the input power is usefully applied to the amplifier's output. Class A amplifiers are very inefficient, in the range of 10–20% with a max efficiency of 25%. Modern Class AB amps are commonly between 35–55% efficient with a theoretical maximum of 78.5%. Commercially available Class D amplifiers have reported efficiencies as high as 97%. The efficiency of the amplifier limits the amount of total power output that is usefully available. Note that more efficient amplifiers run much cooler, and often do not need any fans even in multi-kilowatt designs. LinearityAn ideal amplifier would be a totally linear device, but real amplifiers are only linear within certain practical limits. When the signal drive to the amplifier is increased, the output also increases until a point is reached where some part of the amplifier becomes saturated and cannot produce any more output; this is called clipping, and results in distortion. Some amplifiers are designed to handle this in a controlled way which causes a reduction in gain to take place instead of excessive distortion; the result is a compression effect, which (if the amplifier is an audio amplifier) will sound much less unpleasant to the ear. For these amplifiers, the 1dB compression point is defined as the input power (or output power) where the gain is 1dB less than the small signal gain. Linearization is an emergent field, and there are many techniques, such us feedforward, predistortion, postdistortion, EER, LINC, CALLUM, cartesian feedback... in order to avoid the undesired effects of the non-linearities. Electronic amplifiersThere are many types of electronic amplifiers for different applications. One common type of amplifier is the electronic amplifier, commonly used in radio and television transmitters and receivers, high-fidelity ("hi-fi") stereo equipment, microcomputers and other electronic digital equipment, and guitar and other instrument amplifiers. Its critical components are active devices, such as vacuum tubes or transistors. Amplifier classesAmplifiers are commonly classified by the conduction angle (sometimes known as 'angle of flow') of the input signal through the amplifying device; see electronic amplifier.
The term "power amplifier" is a relative term with respect to the amount of power delivered to the load and/or sourced by the supply circuit. In general a power amplifier is designated as the last amplifier in a transmission chain and is the amplifier stage that typically requires most attention to power efficiency. For these reasons, a power amplifier is typically any of the above-mentioned classes except Class A. Vacuum tube (valve) amplifiersAccording to Symons, while semiconductor amplifiers have largely displaced valve amplifiers for low power applications, valve amplifiers are much more cost effective in high power applications such as "radar, countermeasures equipment, or communications equipment" (p. 56). Many microwave amplifiers are specially designed valves, such as the klystron, gyrotron, traveling wave tube, and crossed-field amplifier, and these microwave valves provide much greater single-device power output at microwave frequencies than solid-state devices (p. 59).[1] In the earlier years of audio, vacuum tubes filled the active device role. Valve amplifiers are widely, but not always correctly, associated with the valve sound. Some claim this sound has more to do with the circuit topology and circuit design of the amplifier, than to the use of valves rather than transistors as the active gain devices. However, this reasoning is not entirely correct. Because tubes are significantly more linear than transistors, tube amplifiers do not need as much global negative feedback to achieve acceptable linearity. While large amounts of global negative feedback are effective for reducing total harmonic distortion (THD) at low frequencies, feedback has downsides such as reduced stability, reduced slew rate, reduced bandwidth, increased high-order distortion[citation needed], and artifacts such as asymmetrical slewing[citation needed]. In most commercial designs, little attention is paid to these problems, and designers simply attempt to achieve the lowest possible THD. Transistor amplifiersThe essential role of this active element is to magnify an input signal to yield a significantly larger output signal. The amount of magnification (the "forward gain") is determined by the external circuit design as well as the active device. Many common active devices in transistor amplifiers are bipolar junction transistors (BJTs) and metal oxide semiconductor field-effect transistors (MOSFETs). Applications are numerous, some common examples are audio amplifiers in a home stereo or PA system, RF high power generation for semiconductor equipment, to RF and Microwave applications such as radio transmitters. Operational amplifiers (op-amps)An operational amplifier is a solid state integrated circuit amplifier which employs external feedback for control of its transfer function or gain. Fully differential amplifiers (FDA)A fully differential amplifier is a solid state integrated circuit amplifier which employs external feedback for control of its transfer function or gain. It is similar to the operational amplifier but it also has differential output pins. Video amplifiersThese deal with video signals and have bandwidths of about 5 MHz. Certain requirements for step response and overshoot are necessary in order for acceptable TV images to be presented. Oscilloscope vertical amplifiersThese are used to deal with video signals to drive an oscilloscope display tube and can have bandwidths of about 500 MHz. The specifications on step response, rise time, overshoot and aberrations can make the design of these amplifiers extremely difficult. One of the pioneers in high bandwidth vertical amplifiers was the Tektronix company. Distributed amplifiersThese use transmission lines to temporally split the signal and amplify each portion separately in order to achieve higher bandwidth than can be obtained from a single amplifying device. The outputs of each stage are combined in the output transmission line. This type of amplifier was commonly used on oscilloscopes as the final vertical amplifier. The transmission lines were often housed inside the display tube glass envelope. Microwave amplifiersTravelling wave tube (TWT) amplifiersUsed for high power amplification at low microwave frequencies. They typically can amplify across a broad spectrum of frequencies; however, they are usually not as tunable as klystrons. KlystronsVery similar to TWT amplifiers, but more powerful and with a specific frequency "sweet spot". They generally are also much heavier than TWT amplifiers, and are therefore ill-suited for light-weight mobile applications. Klystrons are tunable, offering selective output within their specified frequency range. Musical instrument (audio) amplifiersAn audio amplifier is usually used to amplify signals such as music or speech. Other amplifier typesCarbon microphoneOne of the first devices used to amplify signals was the carbon microphone. By channeling a large electric current through the compressed carbon granules in the microphone, a small sound signal could produce a much larger electric signal. The carbon microphone was extremely important in early telecommunications; analog telephones in fact work without the use of any other amplifier. Before the invention of electronic amplifiers, mechanically coupled carbon microphones were also used as amplifiers in telephone repeaters for long distance service. Magnetic amplifierA magnetic amplifier is a transformer-like device that makes use of the saturation of magnetic materials to produce amplification. It is a non-electronic electrical amplifier with no moving parts. The bandwidth of magnetic amplifiers extends to the hundreds of kilohertz. An Amplidyne(Amplidyne redirects to this article) or Rototrol is a rotating machine like an electrical generator that provides amplification of electrical signals by the conversion of mechanical energy to electrical energy. Optical amplifiersOptical amplifiers amplify light through the process of stimulated emission. Miscellaneous types
References
See also
de:Verstärker (Technik) es:Etapa de potencia fr:Amplificateur it:Amplificatore ms:Amplifier nl:Versterker (elektronica) ja:アンプ pl:Wzmacniacz pt:Amplificador ru:Усилитель звуковых частот fi:Vahvistin sv:förstärkare
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