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LM4841 数据表(PDF) 22 Page - National Semiconductor (TI) |
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LM4841 数据表(HTML) 22 Page - National Semiconductor (TI) |
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22 / 31 page ![]() Application Information (Continued) AUDIO POWER AMPLIFIER DESIGN Audio Amplifier Design: Driving 1W into an 8 Ω Load The following are the desired operational parameters: Power Output: 1 W RMS Load Impedance: 8 Ω Input Level: 1 V RMS Input Impedance: 20 k Ω Bandwidth: 100 Hz−20 kHz ± 0.25 dB The design begins by specifying the minimum supply voltage necessary to obtain the specified output power. One way to find the minimum supply voltage is to use the Output Power vs Supply Voltage curve in the Typical Performance Char- acteristics section. Another way, using Equation (10), is to calculate the peak output voltage necessary to achieve the desired output power for a given load impedance. To ac- count for the amplifier’s dropout voltage, two additional volt- ages, based on the Dropout Voltage vs Supply Voltage in the Typical Performance Characteristics curves, must be added to the result obtained by Equation (10). The result is Equation (11). (11) V DD ≥ (V OUTPEAK+(VODTOP +VODBOT)) (12) The Output Power vs Supply Voltage graph for an 8 Ω load indicates a minimum supply voltage of 4.6V. This is easily met by the commonly used 5V supply voltage. The additional voltage creates the benefit of headroom, allowing the LM4841 to produce peak output power in excess of 1W without clipping or other audible distortion. The choice of supply voltage must also not create a situation that violates of maximum power dissipation as explained above in the Power Dissipation section. After satisfying the LM4841’s power dissipation require- ments, the minimum differential gain needed to achieve 1W dissipation in an 8 Ω load is found using Equation (12). (13) Thus, a minimum overall gain of 2.83 allows the LM4841’s to reach full output swing and maintain low noise and THD+N performance. The last step in this design example is setting the amplifier’s −6dB frequency bandwidth. To achieve the desired ±0.25dB pass band magnitude variation limit, the low frequency re- sponse must extend to at least one-fifth the lower bandwidth limit and the high frequency response must extend to at least five times the upper bandwidth limit. The gain variation for both response limits is 0.17dB, well within the ±0.25dB desired limit. The results are an f L = 100Hz/5 = 20Hz (14) and an f H = 20kHz x 5 = 100kHz (15) As mentioned in the Selecting Proper External Compo- nents section, R in A and B and Cin A and B create a highpass filter that sets the amplifier’s lower bandpass frequency limit. Find the input coupling capacitor’s value using Equation (14). C in A and B ≥ 1/(2πR in A and BfL) (16) The result is 1/(2 π*20kΩ*20Hz) = 0.397µF (17) Use a 0.39µF capacitor, the closest standard value. The product of the desired high frequency cutoff (100kHz in this example) and the differential gain A VD, determines the upper passband response limit. With A VD = 3 and fH = 100kHz, the closed-loop gain bandwidth product (GBWP) is 300kHz. This is less than the LM4841’s 3.5MHz GBWP. With this margin, the amplifier can be used in designs that require more differential gain while avoiding performance,restricting bandwidth limitations. Recommended Printed Circuit Board Layout Figures 8 through 14 show the recommended PC board layout that is optimized for the LM4841 and associated external components. This circuit is designed for use with an external 5V supply and 8 Ω speakers. This circuit board is easy to use. Apply 5V and ground to the board’s V DD and GND pads, respectively. Connect 8 Ω speakers between the board’s −OUTA and +OUTA and -OUTB and +OUTB pads. www.national.com 22 |
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