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Section 4: Sensor Signal Conditioning
Section 4: Sensor Signal Conditioning

section 1
section 1

Gt Vipre Package - Aspen And Associates
Gt Vipre Package - Aspen And Associates

... Ribbon mics, for example, are sought after for their smooth tonal properties. When properly terminated or loaded with 300 ohms, the tonal characteristics change, and the sound seems to “bloom” in a way most people have never heard. The equalization changes slightly as well, with the entire spectrum ...
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TPS40077 数据资料 dataSheet 下载

... Short-circuit-protection programming pin. This pin is used to set the short circuit detection threshold. An internal current sink from this pin to ground sets a voltage drop across an external resistor connected from this pin to VDD. The voltage on this pin is compared to the voltage drop (VVDD – VS ...
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... Envelope Peak Output. Voltage output for peak-hold function, with limited current drive capability. The output has an internal 100 Ω series resistance. Low capacitance loads are recommended to allow for envelope tracking and fast response time. RMS Output Pin. Rail-to-rail voltage output with limite ...
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... Soft-start time programming pin. Connect capacitor from SS pin to GND to program converter soft-start time. This pin also functions as a timeout timer when the power supply is in an overcurrent condition. ...
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TPS60251 数据资料 dataSheet 下载
TPS60251 数据资料 dataSheet 下载

... display LED channels drive up to 25mA and an auxiliary LED output (DM5) drives up to 80mA that can be assigned for keypad backlight, torch light or low cost/weak camera flash application using the I2C interface. The TPS60251 circuit uses only 5 external components: the input/output capacitors, 2 cha ...
AN98 - Signal Sources, Conditioners and Power Circuitry Circuits of the Fall, 2004
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MAX15036/MAX15037 2.2MHz, 3A Buck or Boost Converters with an Integrated High-Side Switch
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... operate over a wide power-supply range of 2.7-V to 15-V single supply, and ±1.35-V to ±7.5-V dual supply. Consuming only 750 μA with a unity gain bandwidth of 90 MHz and a high 35-V/μs slew rate, the THS4281 allows portable or other power-sensitive applications to realize high performance with minim ...
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... The headphone amplifier is driven by the internal positive voltage (+2.4V) and negative voltage (SVSS, -2.4V) based on ground (SGND). Therefore, the headphone can be connected without the output coupling capacitor. As a result, it brings improvement to low-frequency characteristic compared with the ...
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AN98 - Linear Technology

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The development of high-voltage measuring techniques
The development of high-voltage measuring techniques

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Analog-to-digital converter



An analog-to-digital converter (ADC, A/D, or A to D) is a device that converts a continuous physical quantity (usually voltage) to a digital number that represents the quantity's amplitude.The conversion involves quantization of the input, so it necessarily introduces a small amount of error. Furthermore, instead of continuously performing the conversion, an ADC does the conversion periodically, sampling the input. The result is a sequence of digital values that have been converted from a continuous-time and continuous-amplitude analog signal to a discrete-time and discrete-amplitude digital signal.An ADC is defined by its bandwidth (the range of frequencies it can measure) and its signal to noise ratio (how accurately it can measure a signal relative to the noise it introduces). The actual bandwidth of an ADC is characterized primarily by its sampling rate, and to a lesser extent by how it handles errors such as aliasing. The dynamic range of an ADC is influenced by many factors, including the resolution (the number of output levels it can quantize a signal to), linearity and accuracy (how well the quantization levels match the true analog signal) and jitter (small timing errors that introduce additional noise). The dynamic range of an ADC is often summarized in terms of its effective number of bits (ENOB), the number of bits of each measure it returns that are on average not noise. An ideal ADC has an ENOB equal to its resolution. ADCs are chosen to match the bandwidth and required signal to noise ratio of the signal to be quantized. If an ADC operates at a sampling rate greater than twice the bandwidth of the signal, then perfect reconstruction is possible given an ideal ADC and neglecting quantization error. The presence of quantization error limits the dynamic range of even an ideal ADC, however, if the dynamic range of the ADC exceeds that of the input signal, its effects may be neglected resulting in an essentially perfect digital representation of the input signal.An ADC may also provide an isolated measurement such as an electronic device that converts an input analog voltage or current to a digital number proportional to the magnitude of the voltage or current. However, some non-electronic or only partially electronic devices, such as rotary encoders, can also be considered ADCs. The digital output may use different coding schemes. Typically the digital output will be a two's complement binary number that is proportional to the input, but there are other possibilities. An encoder, for example, might output a Gray code.The inverse operation is performed by a digital-to-analog converter (DAC).
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