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MP7722DF 数据表(PDF) 7 Page - Monolithic Power Systems |
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MP7722DF 数据表(HTML) 7 Page - Monolithic Power Systems |
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7 / 11 page ![]() MP7722 – 2 x 20W CLASS D STEREO SINGLE ENDED AUDIO AMPLIFIER MP7722 Rev. 1.3 www.MonolithicPower.com 7 9/25/2006 MPS Proprietary Information. Unauthorized Photocopy and Duplication Prohibited. © 2006 MPS. All Rights Reserved. APPLICATION INFORMATION COMPONENT SELECTION The MP7722 uses a minimum number of external components to complete a stereo Class D audio amplifier. The circuit of Figure 1 is optimized for a 24V power supply and a 1.5V RMS maximum input signal. This circuit should be suitable for most applications. However, if this circuit is not suitable, use the following sections to determine how to customize the amplifier for a particular application. Setting the Voltage Gain The maximum output voltage swing is limited by the power supply. To achieve the maximum power out of the MP7722 amplifier, the gain resistors should be set such that the maximum input signal results in an output voltage swing that reaches the supply limit (clipping). The maximum output voltage swing at clipping is approximately ±VDD/2. To achieve clipping for a given input signal voltage, where VIN(pk) is the peak input voltage, the voltage gain is: ) pk ( V 2 V ) MAX ( A IN DD V × = The voltage gain setting results in the peak output voltage approaching its maximum for the maximum input signal. There are applications where it is desirable to allow the amplifier to overdrive slightly, allowing the THD to increase at higher power levels (as the output signal continues to go further into clipping), and so a higher gain than AV (max) is required. Setting the Switching Frequency The idle switching frequency (the switching frequency when no audio input is present) is a function of several variables: the supply voltage VDD, the timing capacitor CINT and the feedback resistor RFB. For the MP7722, the idle switching frequencies for CH1 and CH2 are independent of each other and are a function of their own associated components. The proper setting of the “idle frequency” is important for obtaining optimum performance. If the frequency is set too high, the result will be more power loss and high distortion, while setting the idle switching frequency too low results in more inductor ripple, causing more output voltage ripple with increased the output noise. The optimum quiescent switching frequency is approximately 700KHz to 800KHz. Refer to Table 1 for recommended values. Table 1—Switching Frequency vs. VDD, Timing Capacitor and Feedback Resistor (see Figure 1) Gain (V/V) Gain (dB) RFB (kΩ) RIN (kΩ) CINT FSW VDD (V) 3.9 15.0 39 10 6.8nF 660KHz 12 8.2 18.3 82 10 3.3nF 660KHz 12 8.3 21.5 39 4.7 6.8nF 660KHz 12 17.4 24.8 82 4.7 3.3nF 660KHz 12 5.6 15.0 56 10 8.2nF 670KHz 24 8.2 18.3 82 10 5.6nF 720KHz 24 11.9 21.5 56 4.7 8.2nF 670KHz 24 17.4 24.8 82 4.7 5.6nF 720KHz 24 33.0 30.4 330 10 1.8nF 700KHz 24 Choosing the LC Filter The Inductor-Capacitor (LC) filter converts the pulse train at SW to the output voltage that drives the speaker. Typical values for the LC filter are a 10µH inductor and a 0.47µF capacitor. The characteristic frequency of the LC filter needs to be high enough to allow high frequency audio to the output, yet needs to be low enough to filter out high frequency products of the pulses from SW. The characteristic frequency of the LC filter is: LC 2 1 f0 π = The voltage ripple at the output is approximated by the equation: ⎟⎟ ⎠ ⎞ ⎜⎜ ⎝ ⎛ × ≅ SW 0 DD RIPPLE f f V V |
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