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AD8311 数据表(PDF) 14 Page - Analog Devices |
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AD8311 数据表(HTML) 14 Page - Analog Devices |
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14 / 24 page ![]() AD8311 Rev. 0 | Page 14 of 24 Continuing with the stability analysis, the gain of the control loop can be expressed as kA k I P SET OUT + = ∂ ∂ 1 (10) where: PA FLT PA s sC G k τ + × × = 1 ) 1 ( 35 . 1 (dB/A) (11) SLP I A = (A/dB) (12) The effect of the zero resistor, RFLT, can be easily included by replacing (1/sCFLT) with (RFLT + 1/sCFLT). The criteria for loop stability can be derived by setting the denominator of Equation 10 equal to 0, giving () () ( ) SLP PA FLT PA FLT FLT I G sC s C sR × × τ + + × + = 1 1 35 . 1 1 0 (13) From Equation 13, the closed-loop integration time constant is given by ( ) 35 . 1 × × = SLP PA FLT ClosedLoop I G C T (14) The gain and phase margins of the control loop can be deduced from the Bode plots of Equation 13. BASIC CONNECTIONS Figure 29 shows the basic connections for operating the AD8311, and Figure 30 shows a block diagram of a typical application. The AD8311 is typically used in the RF power control loop of a mobile handset. A supply voltage of 2.7 V to 5.5 V is required for the AD8311. The supply to the VPOS pin should be decoupled with a low inductance 0.1 µF surface-mount ceramic capacitor, close to the device. The AD8311 has an internal input coupling capacitor, which negates the need for external ac-coupling. This capacitor, along with the low frequency input impedance of the device of approximately 2.14 kΩ, sets the minimum usable input frequency to around 0.016 GHz. A broadband 50 Ω input match is achieved in this example by connecting a 52.3 Ω resistor between RFIN and ground. A Smith chart plot of input impedance vs. frequency is shown in Figure 14. Other coupling methods are also possible (see the Input Coupling Options section). VPOS VAPC VSET RFIN COMM FLTR AD8311 1 2 34 5 6 +VS (2.7V TO 5.5V) C1 0.1 µF RFIN R1 52.3 Ω VAPC VSET CFLT Figure 29. Basic Connections RFIN VSET AD8311 VAPC FLTR CFLT DAC POWER AMP RFIN ATTENUATOR DIRECTIONAL COUPLER 52.3 Ω RFLT GAIN CONTROL VOLTAGE Figure 30. Typical Application In a power control loop, the AD8311 provides both the detector and controller functions. A sample of the power amplifier’s (PA) output power is coupled to the RF input of the AD8311, usually via a directional coupler. In dual mode applications, where there are two PAs and two directional couplers, the outputs of the directional couplers can be passively combined (both PAs will never be turned on simultaneously) before being applied to the AD8311. A setpoint voltage is applied to VSET from the controlling source (generally this is a DAC). Any imbalance between the RF input level and the level corresponding to the setpoint voltage is corrected by the AD8311’s VAPC output that drives the gain control terminal of the PA. This restores a balance between the actual power level sensed at the input of the AD8311 and the value determined by the setpoint. This assumes that the gain control sense of the variable gain element is positive, that is, an increasing voltage from VAPC tends to increase gain. VAPC can swing from 200 mV to within 100 mV of the supply rail and can source up to 6 mA. If the control input of the PA needs to source current, a suitable load resistor can be connected between VAPC and COMM. The output swing and current sourcing capability of VAPC is shown in Figure 11. RANGE ON VSET AND RFIN The relationship between the RF input level and the setpoint voltage follows from the nominal transfer function of the device (see Figure 4, Figure 5, Figure 7, and Figure 8). At 0.9 GHz, for example, a voltage of 1 V on VSET indicates a demand for −18 dBm at RFIN. The corresponding power level at the output of the power amplifier is greater than this amount due to the attenuation through the directional coupler. For setpoint voltages of less than approximately 150 mV, VAPC unconditionally remains at its minimum level of approximately 300 mV. This feature can be used to prevent any spurious emissions during power-up and power-down phases. Above 250 mV, VSET has a linear control range up to 1.4 V, corresponding to a dynamic range of 50 dB. This results in a slope of 23.8 mV/dB, or approximately 42.0 dB/V. |
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