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AD8363ACPZ-R2 数据表(PDF) 24 Page - Analog Devices |
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AD8363ACPZ-R2 数据表(HTML) 24 Page - Analog Devices |
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24 / 29 page ![]() AD8363 Data Sheet Rev. B | Page 24 of 29 In general, CLPF should be chosen to provide stable loop operation for the complete output power control range. If the slope (in dB/V) of the gain control transfer function of the VGA is not constant, CLPF must be chosen to guarantee a stable loop when the gain control slope is at its maximum. In addition, CLPF must provide adequate averaging to the internal low range squaring detector so that the rms computation is valid. Larger values of CLPF tend to make the loop less responsive. The relationship between VSET and the RF input follows the measurement mode behavior of the device. For example, Figure 4 shows the measurement mode transfer function at 900 MHz and that an input power of −10 dBm yields an output voltage of approximately 2.5 V. Therefore, in controller mode, if VSET is 2.5 V, the AD8363 output would go to whatever voltage is necessary to set the AD8363 input power to −10 dBm. CONSTANT OUTPUT POWER OPERATION In controller mode, the AD8363 can be used to hold the output power of a VGA stable over a broad temperature/input power range. This is useful in topologies where a transmit card is driving an HPA, or when connecting any two power sensitive modules together. Figure 54 shows a schematic of a circuit setup that holds the output power to approximately −26 dBm at 2.14 GHz, when the input power is varied over a 40 dB dynamic range. Figure 55 shows the results. A portion of the output power is coupled off using a 10 dB directional coupler, and it is then fed into the AD8363. VSET is fixed at 0.95 V, which forces to AD8363 output voltage to control the ADL5330 so that the input to the AD8363 is approximately −36 dBm. If the AD8363 was in measurement mode and a −36 dBm input power is applied, the output voltage would be 0.95 V. A general- purpose, rail-to-rail op amp (AD8062) is used to invert the slope of the AD8363 so that the gain of the ADL5330 decreases as the AD8363 control voltage increases. The output power is controlled to a 10 dB higher power level than that seen by the AD8363 due to the coupler. The high-end power is limited by the linearity of the VGA (ADL5330) with high attenuation and can be increased by using a higher linearity VGA. The low end power is limited by the maximum gain of the VGA (ADL5330) and can be increased by using a VGA with more gain. The temperature performance is directly related to the temperature performance of the AD8363 at 2.14 GHz and −26 dBm, using TCM1 = 0.52 V and TCM2 = 0.6 V. All other temperature variations are removed by the AD8363. T1 T2 C5 100pF C6 100pF C11 100pF C12 100pF C10 0.1µF C12 0.1µF C9 0.1µF PIN INHI INLO OPHI OPLO GAIN ADL5330 POUT 10dB COUPLER AD8062 10kΩ 10kΩ 10kΩ 10kΩ 5V 0.95V 0.6V 0.52V INHI TCM1 TCM2 VSET VOUT CLPF INLO AD8363 Figure 54. Constant Power Circuit –25.0 –25.5 –26.0 –26.5 –27.0 –27.5 –28.0 –40 –35 –30 –25 –20 –15 –10 –5 0 PIN (dBm) –20°C –40°C +85°C +25°C 0°C Figure 55. Performance of the Circuit Shown in Figure 54 |
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