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LT1814IGN датащи(PDF) 12 Page - Linear Technology |
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LT1814IGN датащи(HTML) 12 Page - Linear Technology |
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12 / 16 page ![]() 12 LT1813/LT1814 18134fa APPLICATIO S I FOR ATIO Complementary followers form an output stage that buff- ers the gain node from the load. The input resistor, input stage transconductance, and the capacitor on the high impedance node determine the bandwidth. The slew rate is determined by the current available to charge the gain node capacitance. This current is the differential input voltage divided by R1, so the slew rate is proportional to the input step. Highest slew rates are therefore seen in the lowest gain configurations. The RC network across the output stage is bootstrapped when the amplifier is driving a light or moderate load and has no effect under normal operation. When a heavy load (capacitive or resistive) is driven, the network is incom- pletely bootstrapped and adds to the compensation at the high impedance node. The added capacitance moves the unity-gain frequency away from the pole formed by the output impedance and the capacitive load. The zero cre- ated by the RC combination adds phase to ensure that the total phase lag does not exceed 180 ° (zero phase margin), and the amplifier remains stable. In this way, the LT1813/ LT1814 are stable with up to 1000pF capacitive loads in unity gain, and even higher capacitive loads in higher closed-loop gain configurations. Power dissipation is composed of two parts. The first is due to the quiescent supply current and the second is due to on-chip dissipation caused by the load current. The worst-case load induced power occurs when the output voltage is at 1/2 of either supply voltage (or the maximum swing if less than 1/2 the supply voltage). Therefore PDMAX is: PDMAX = (V+ – V–) • (ISMAX) + (V+/2)2/RL or PDMAX = (V+ – V–) • (ISMAX) + (V+ – VOMAX) • (VOMAX/RL) Example: LT1814S at 70 °C, VS = ±5V, RL=100Ω PDMAX = (10V) • (4.5mA) + (2.5V)2/100Ω = 108mW TJMAX = 70°C + (4 • 108mW) • (100°C/W) = 113°C Circuit Operation The LT1813/LT1814 circuit topology is a true voltage feedback amplifier that has the slewing behavior of a current feedback amplifier. The operation of the circuit can be understood by referring to the Simplified Schematic. Complementary NPN and PNP emitter followers buffer the inputs and drive an internal resistor. The input voltage appears across the resistor, generating current that is mirrored into the high impedance node. SI PLIFIED SCHE ATIC (one amplifier) 1814 SS OUT +IN –IN V+ V– R1 CC RC C |
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