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MCP6401RT-E/ST Fiches technique(PDF) 15 Page - Microchip Technology |
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MCP6401RT-E/ST Fiches technique(HTML) 15 Page - Microchip Technology |
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15 / 28 page ![]() © 2009 Microchip Technology Inc. DS22229A-page 15 MCP6401/1R/1U 4.6 Application Circuits 4.6.1 PRECISION HALF-WAVE RECTIFIER The precision half-wave rectifier, which is also known as a super diode, is a configuration obtained with an operational amplifier in order to have a circuit behaving like an ideal diode and rectifier. It effectively cancels the forward voltage drop of the diode so that very low level signals can still be rectified with minimal error. This can be useful for high-precision signal processing. The MCP6401/1R/1U op amps have high input impedance, low input bias current and rail-to-rail input/output, which makes this device suitable for precision rectifier applications. Figure 4-6 shows a precision half-wave rectifier and its transfer characteristic. The rectifier’s input impedance is determined by the input resistor R1. To avoid loading effect, it must be driven from a low impedance source. When VIN is greater than zero, D1 is OFF and D2 is ON, VOUT is zero. When VIN is less than zero, D1 is ON and D2 is OFF, and VOUT is the VIN with an amplification of -R2/R1. The rectifier circuit shown in Figure 4-6 has the benefit that the op amp never goes in saturation, so the only thing affecting its frequency response is the amplification and the gain bandwidth product. . FIGURE 4-6: Precision Half-Wave Rectifier. 4.6.2 BATTERY CURRENT SENSING The MCP6401/1R/1U op amps’ Common Mode Input Range, which goes 0.3V beyond both supply rails, supports their use in high side and low side battery current sensing applications. The low quiescent current (45 µA, typical) helps prolong battery life, and the rail-to-rail output supports detection of low currents. Figure 4-7 shows a high side battery current sensor circuit. The 10 Ω resistor is sized to minimize power losses. The battery current (IDD) through the 10Ω resistor causes its top terminal to be more negative than the bottom terminal. This keeps the common mode input voltage of the op amp below VDD, which is within its allowed range. The output of the op amp will also be below VDD, which is within its Maximum Output Voltage Swing specification. FIGURE 4-7: Supply Current Sensing. 4.6.3 INSTRUMENTATION AMPLIFIER The MCP6401/1R/1U op amps are well suited for conditioning sensor signals in battery-powered applications. Figure 4-8 shows a two op amp instrumentation amplifier, using the MCP6401, that works well for applications requiring rejection of common mode noise at higher gains. The reference voltage (VREF) is supplied by a low impedance source. In single supply applications, VREF is typically VDD/2. FIGURE 4-8: Two Op Amp Instrumentation Amplifier. VOUT R2 D1 D2 R1 VIN VOUT VIN -R2/R1 Transfer Characteristic Precision Half-Wave Rectifier MCP6401 VDD IDD 100 k Ω 1M Ω 1.8V VOUT 10 Ω to 6.0V I DD V DD V OUT – 10 V/V () 10 Ω () ⋅ ------------------------------------------ = To load MCP6401 V OUT V 1 V 2 – () 1 R 1 R 2 ------ 2R 1 R G --------- ++ ⎝⎠ ⎛⎞ V REF + = VREF R1 R2 R2 R1 VOUT RG V2 V1 MCP6401 MCP6401 |
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