∫cos^4xsin^2xdx怎么积分?

4个回答

  • ∵cos^4xsin^2x

    =cos^4x(1-cos²x)

    =cos^4x-cos^6x

    =[1+cos(2x)]²/4-[1+cos(2x)]³/8

    =[1+2cos(2x)+cos²(2x)]/4-[1+3cos(2x)+3cos²(2x)+cos³(2x)]/8

    =1/8+1/8cos(2x)-1/8cos²(2x)-1/8cos³(2x)

    =1/8+1/8cos(2x)-[1+cos(4x)]/16-1/8cos³(2x)

    =1/16+1/8cos(2x)-cos(4x)/16-1/8cos³(2x)

    ∴∫cos^4xsin^2xdx

    =∫[1/16+1/8cos(2x)-cos(4x)/16-1/8cos³(2x)]dx

    =x/16+sin(2x)/16-sin(4x)/64-1/16∫[1-sin²(2x)]d[sin(2x)]

    =x/16+sin(2x)/16-sin(4x)/64-[sin(2x)-sin³(2x)/3]/16+C

    =x/16-sin(4x)/64+sin³(2x)/48+C, (C是积分常数).