MAX16956 36V, 300mA, Mini Buck Converter with 1.1µA I Q
... device is designed to deliver up to 300mA with input voltages from 3.5V to 36V, while using only 1.1µA quiescent current at no load (fixed-output versions). Voltage quality can be monitored by observing the RESET signal. The device can operate near dropout by running at 97% duty cycle, making it ide ...
... device is designed to deliver up to 300mA with input voltages from 3.5V to 36V, while using only 1.1µA quiescent current at no load (fixed-output versions). Voltage quality can be monitored by observing the RESET signal. The device can operate near dropout by running at 97% duty cycle, making it ide ...
OPA1632 数据资料 dataSheet 下载
... performance advantages in high-speed analog signal processing systems, including immunity to external common-mode noise, suppression of even-order nonlinearities, and increased dynamic range. Fully-differential amplifiers not only serve as the primary means of providing gain to a differential signal ...
... performance advantages in high-speed analog signal processing systems, including immunity to external common-mode noise, suppression of even-order nonlinearities, and increased dynamic range. Fully-differential amplifiers not only serve as the primary means of providing gain to a differential signal ...
MAX3676 622Mbps, 3.3V Clock-Recovery and Data-Retiming IC with Limiting Amplifier General Description
... and supply fluctuations. The power detector functions as a broadband power meter that detects the total RMS power of all signals within the detector bandwidth (including input signal noise). The RSSI voltage varies linearly (in decibels) for inputs of 2mVP-P to 50mVP-P. The slope over this input ran ...
... and supply fluctuations. The power detector functions as a broadband power meter that detects the total RMS power of all signals within the detector bandwidth (including input signal noise). The RSSI voltage varies linearly (in decibels) for inputs of 2mVP-P to 50mVP-P. The slope over this input ran ...
construction of car touch intruder alarm
... parked in garage against theft or an intruder. The circuit uses three NE555 timers; one of the NE555 was wired as a monostable oscillator and remaining two were wired as tone generator and amplified to obtain a maximum audible sound. However, pin 2 of the first NE555 was used as sensor part .When pi ...
... parked in garage against theft or an intruder. The circuit uses three NE555 timers; one of the NE555 was wired as a monostable oscillator and remaining two were wired as tone generator and amplified to obtain a maximum audible sound. However, pin 2 of the first NE555 was used as sensor part .When pi ...
AD8203 数据手册DataSheet 下载
... Changes to Specifications Table...................................................... 3 Changes to Caption on Figure 6 and Figure 8 .............................. 6 Changes to Figure 12........................................................................ 7 Added Figure 14 to Figure 23............ ...
... Changes to Specifications Table...................................................... 3 Changes to Caption on Figure 6 and Figure 8 .............................. 6 Changes to Figure 12........................................................................ 7 Added Figure 14 to Figure 23............ ...
04 Design Examples
... Current and Voltage Limitations The internal Darlington transistor switch can handle a maximum peak current of 1.5 amps during the t on period, and a maximum of 40 volts during the t off period. An external transistor switch is needed if the design requires either more current or a higher input volt ...
... Current and Voltage Limitations The internal Darlington transistor switch can handle a maximum peak current of 1.5 amps during the t on period, and a maximum of 40 volts during the t off period. An external transistor switch is needed if the design requires either more current or a higher input volt ...
LVC608/LVC623 and LVC2016
... The LVC608 200-HF has been modified to allow much higher frequencies than would normally be available, because of this several changes have been made to the input section. The LVC 608-200HF differs from the standard LVC-608 in these ways: 1) The LVC 608-200HF has a specially optimized high frequency ...
... The LVC608 200-HF has been modified to allow much higher frequencies than would normally be available, because of this several changes have been made to the input section. The LVC 608-200HF differs from the standard LVC-608 in these ways: 1) The LVC 608-200HF has a specially optimized high frequency ...
BU7481G
... (Note 3) The voltage difference between inverting input and non-inverting input is the differential input voltage. Then input pin voltage is set to more than VSS. (Note 4) An excessive input current will flow when input voltages of more than VDD+0.6V or less than VSS-0.6V are applied. The input curr ...
... (Note 3) The voltage difference between inverting input and non-inverting input is the differential input voltage. Then input pin voltage is set to more than VSS. (Note 4) An excessive input current will flow when input voltages of more than VDD+0.6V or less than VSS-0.6V are applied. The input curr ...
Datasheet
... have differential outputs. The typical voltage output swing with no load will be 0 volts to +5 volts. With worst case loading of 54Ω across the differential outputs, the driver can ...
... have differential outputs. The typical voltage output swing with no load will be 0 volts to +5 volts. With worst case loading of 54Ω across the differential outputs, the driver can ...
Budapest University of Technology and Economics
... its voltage [6]. A very precise current source, time and voltage measurement and an environment with very low noise is necessary for this method, thus it is of little practical use when the capacitance to measure is very small and the environment is noisy. A sophisticated and improved version of thi ...
... its voltage [6]. A very precise current source, time and voltage measurement and an environment with very low noise is necessary for this method, thus it is of little practical use when the capacitance to measure is very small and the environment is noisy. A sophisticated and improved version of thi ...
AD7843
... Data Out. Logic Output. The conversion result from the AD7843 is provided on this output as a serial data stream. The bits are clocked out on the falling edge of the DCLK input. This output is high impedance when CS is high. BUSY Output. Logic Output. This output is high impedance when CS is high. D ...
... Data Out. Logic Output. The conversion result from the AD7843 is provided on this output as a serial data stream. The bits are clocked out on the falling edge of the DCLK input. This output is high impedance when CS is high. BUSY Output. Logic Output. This output is high impedance when CS is high. D ...
1771sc Isolated-Circuit 220/240 Vac/dc Input Module
... eliminate concerns with crossing phases and improve overall system integrity • Can be used in applications requiring from 159 to 264 Vac or 184 to 276 Vdc discrete input, sinking or sourcing. Just like a relay contact module, input types can be mixed • Designed to work properly with proximity switch ...
... eliminate concerns with crossing phases and improve overall system integrity • Can be used in applications requiring from 159 to 264 Vac or 184 to 276 Vdc discrete input, sinking or sourcing. Just like a relay contact module, input types can be mixed • Designed to work properly with proximity switch ...
PHYS 2426 – Engineering Physics II
... 3. Use the spring clips to connect the components in the order shown in the circuit schematic. (The instructions in this lab will be written assuming you connected the components in the order shown.) 4. Place the BNC/T on the output of the function generator. 5. Use the BNC/Alligator cable to connec ...
... 3. Use the spring clips to connect the components in the order shown in the circuit schematic. (The instructions in this lab will be written assuming you connected the components in the order shown.) 4. Place the BNC/T on the output of the function generator. 5. Use the BNC/Alligator cable to connec ...
BU7255HFV
... (Note 3) The voltage difference between inverting input and non-inverting input is the differential input voltage. Then input terminal voltage is set to more than VSS. (Note 4) An excessive input current will flow when input voltages of more than VDD+0.6V or less than VSS-0.6V are applied. The input ...
... (Note 3) The voltage difference between inverting input and non-inverting input is the differential input voltage. Then input terminal voltage is set to more than VSS. (Note 4) An excessive input current will flow when input voltages of more than VDD+0.6V or less than VSS-0.6V are applied. The input ...
A 10 Volt “Turnkey” Programmable Josephson Voltage Standard for
... PJVS systems are quite different from the ac Josephson voltage standard (ACJVS), which is based on high-speed pulse-driven arrays that are useful for synthesizing precision waveforms at much higher frequencies, typically above 1 kHz [16, 17]. The waveform purity and voltage accuracy of the pulse-dri ...
... PJVS systems are quite different from the ac Josephson voltage standard (ACJVS), which is based on high-speed pulse-driven arrays that are useful for synthesizing precision waveforms at much higher frequencies, typically above 1 kHz [16, 17]. The waveform purity and voltage accuracy of the pulse-dri ...
BDTIC www.BDTIC.com/infineon TLE4946-2L
... 1) To operate the sensor at the max. switching frequency, the value of the magnetic signal amplitude must be 1.4 times higher than for static fields. This is due to the - 3 dB corner frequency of the low pass filter in the signal path. 2) Systematic delay between magnetic threshold reached and outpu ...
... 1) To operate the sensor at the max. switching frequency, the value of the magnetic signal amplitude must be 1.4 times higher than for static fields. This is due to the - 3 dB corner frequency of the low pass filter in the signal path. 2) Systematic delay between magnetic threshold reached and outpu ...
SIMULATION OF A SERIES RESONANT CIRCUIT ECE562: Power Electronics I
... 100, 200, 400, 2000, 4000, and 8000 Ω. This type of parametric sweep is accomplished in NL5 with a script. Go to Tools / Script and click on the Sweep tab. Select List instead of Loop. Enter R1 as the Name, enter the parametric values in the box, and select AC sweep. Click on the blue arrow to start ...
... 100, 200, 400, 2000, 4000, and 8000 Ω. This type of parametric sweep is accomplished in NL5 with a script. Go to Tools / Script and click on the Sweep tab. Select List instead of Loop. Enter R1 as the Name, enter the parametric values in the box, and select AC sweep. Click on the blue arrow to start ...
Driven-right-leg circuit design (PDF Available)
... least 6 MS. (= 120 V/20 pA) of impedance between all of the unity gain, they do not introduce substantial phase shift for amplifier, leads and ground. Ro may.be increased to limit the frequencies of interest., A3, however, introduces a pole current flow through the driven-right-leg electrode, but un ...
... least 6 MS. (= 120 V/20 pA) of impedance between all of the unity gain, they do not introduce substantial phase shift for amplifier, leads and ground. Ro may.be increased to limit the frequencies of interest., A3, however, introduces a pole current flow through the driven-right-leg electrode, but un ...
Digital Panel Meters Modular Indicator and Controller Type UDM35
... impedances and overloads” 40 to 440 Hz See table “input impedances and overloads” Only temperature measurement module. - For Pt 100-250-500-1000, 3-wire connection: up to 10Ω - For resistance measur. with 20Ω range: up to max 0.1Ω - For resistance measurements with ≥200Ωrange: up to max 10Ω Internal ...
... impedances and overloads” 40 to 440 Hz See table “input impedances and overloads” Only temperature measurement module. - For Pt 100-250-500-1000, 3-wire connection: up to 10Ω - For resistance measur. with 20Ω range: up to max 0.1Ω - For resistance measurements with ≥200Ωrange: up to max 10Ω Internal ...
Integrating ADC
An integrating ADC is a type of analog-to-digital converter that converts an unknown input voltage into a digital representation through the use of an integrator. In its most basic implementation, the unknown input voltage is applied to the input of the integrator and allowed to ramp for a fixed time period (the run-up period). Then a known reference voltage of opposite polarity is applied to the integrator and is allowed to ramp until the integrator output returns to zero (the run-down period). The input voltage is computed as a function of the reference voltage, the constant run-up time period, and the measured run-down time period. The run-down time measurement is usually made in units of the converter's clock, so longer integration times allow for higher resolutions. Likewise, the speed of the converter can be improved by sacrificing resolution.Converters of this type can achieve high resolution, but often do so at the expense of speed. For this reason, these converters are not found in audio or signal processing applications. Their use is typically limited to digital voltmeters and other instruments requiring highly accurate measurements.