神马作文网1/cosA+1/cosC=-√2/cosB,A+C=2B,求cos[(A-C)/2]
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1/cosA+1/cosC=-√2/cosB,A+C=2B,求cos[(A-C)/2]
![1/cosA+1/cosC=-√2/cosB,A+C=2B,求cos[(A-C)/2]](/uploads/image/z/19095467-59-7.jpg?t=1%2FcosA%2B1%2FcosC%3D-%E2%88%9A2%2FcosB%2CA%2BC%3D2B%2C%E6%B1%82cos%5B%28A-C%29%2F2%5D)
因A+B+C=π,又A+C=2B
得B=π/3
1/cosA+1/cosC=-2√2
=>(cosA+cosC)=-2√2cosAcosC
=>2cos(A-C)/2cos(A+C)/2=-√2[cos(A+C)+cos(A-C)]
=>cos(A-C)/2=-√2[-1/2+cos(A-C)]
=>cos(A-C)/2=-√2[-1/2+2cos²(A-C)/2-1]
=>4cos²(A-C)/2+√2cos(A-C)/2-3=0(|A-C|/2
得B=π/3
1/cosA+1/cosC=-2√2
=>(cosA+cosC)=-2√2cosAcosC
=>2cos(A-C)/2cos(A+C)/2=-√2[cos(A+C)+cos(A-C)]
=>cos(A-C)/2=-√2[-1/2+cos(A-C)]
=>cos(A-C)/2=-√2[-1/2+2cos²(A-C)/2-1]
=>4cos²(A-C)/2+√2cos(A-C)/2-3=0(|A-C|/2
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