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ADT7490ARQZ-R7 Datasheet(PDF) 30 Page - ON Semiconductor |
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ADT7490ARQZ-R7 Datasheet(HTML) 30 Page - ON Semiconductor |
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30 / 75 page ![]() ADT7490 http://onsemi.com 30 If the fan output has a resistive pullup to 12 V, or other voltage greater than 3.6 V, the fan output can be clamped with a Zener diode, as shown in Figure 43. The Zener diode voltage should be chosen so that it is greater than VIH of the TACH input but less than 3.6 V, allowing for the voltage tolerance of the Zener. A value of between 3.0 V and 3.6 V is suitable. Figure 43. Fan with TACH Pullup to Voltage > 3.6 V, for Example, 12 V Clamped with Zener Diode 12V VCC PULLUP 4.7k TYPICAL TACH OUTPUT FAN SPEED COUNTER TACH ADT7490 ZD1* *CHOOSE ZD1 VOLTAGE APPROXIMATELY 0.8 y VCC W If the fan has a strong pullup (less than 1 k W) to 12 V or a totem−pole output, a series resistor can be added to limit the Zener current, as shown in Figure 44. Figure 44. Fan with Strong TACH Pullup to >VCC or Totem−Pole Output, Clamped with Zener Diode and Resistor 5V OR 12V VCC PULLUP TYP <1k OR TOTEM POLE TACH OUTPUT FAN SPEED COUNTER TACH ADT7490 ZD1 ZENER* FAN *CHOOSE ZD1 VOLTAGE APPROXIMATELY 0.8 y VCC W R1 10k W Alternatively, a resistive attenuator can be used, as shown in Figure 45. R1 and R2 should be chosen such that (eq. 6) 2.0 V t VPULLUP R2 RPULLUP ) R1 ) R2 t 3.6 V The fan inputs have an input resistance of nominally 160 k W to ground, which should be taken into account when calculating resistor values. With a pullup voltage of 12 V and pullup resistor less than 1 k W, suitable values for R1 and R2 are 100 kW and 40 kW, respectively. This gives a high input voltage of 3.42 V. Figure 45. Fan with Strong TACH Pullup to >VCC or Totem−Pole Output, Attenuated with R1/R2 12V VCC <1k TACH OUTPUT FAN SPEED COUNTER TACH ADT7490 R2 40kΩ W R1 100kW The fan counter does not count the fan TACH output pulses directly because the fan speed could be less than 1000 RPM, and it takes several seconds to accumulate a reasonably large and accurate count. Instead, the period of the fan revolution is measured by gating an on−chip 90 kHz oscillator into the input of a 16−bit counter for N periods of the fan TACH output (see Figure 46), so the accumulated count is actually proportional to the fan tachometer period and inversely proportional to the fan speed. N, the number of pulses counted, is determined by the settings of the TACH pulses per revolution register (0x7B). This register contains two bits for each fan, allowing one, two (default), three, or four TACH pulses to be counted. Figure 46. Fan Speed Measurement 1 2 3 4 CLOCK PWM TACH Fan Speed Measurement Registers The fan tachometer registers are 16−bit values consisting of a 2−byte read from the ADT7490. Register 0x28, TACH1 Low Byte = 0x00 default Register 0x29, TACH1 High Byte = 0x00 default Register 0x2A, TACH2 Low Byte = 0x00 default Register 0x2B, TACH2 High Byte = 0x00 default Register 0x2C, TACH3 Low Byte = 0x00 default Register 0x2D, TACH3 High Byte = 0x00 default Register 0x2E, TACH4 Low Byte = 0x00 default Register 0x2F, TACH4 High Byte = 0x00 default Reading Fan Speed from the ADT7490 The measurement of fan speeds involves a 2−register read for each measurement. The low byte should be read first. This causes the high byte to be frozen until both high and low byte registers have been read, preventing erroneous TACH readings. The fan tachometer reading registers report back the number of 11.11 ms period clocks (90 kHz oscillator) gated to the fan speed counter, from the rising edge of the first fan TACH pulse to the rising edge of the third fan TACH pulse (assuming two pulses per revolution are being counted). Because the device is essentially measuring the fan TACH period, the higher the count value, the slower the fan is actually running. A 16−bit fan tachometer reading of 0xFFFF indicates that either the fan has stalled or is running very slowly (<100 RPM). High Limit > Comparison Performed |
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