∫(0→2)(4-x^2)^1.5dx答案是3∏,怎么会有∏
来源:学生作业帮助网 编辑:六六作业网 时间:2024/12/26 17:07:07
∫(0→2)(4-x^2)^1.5dx答案是3∏,怎么会有∏∫(0→2)(4-x^2)^1.5dx答案是3∏,怎么会有∏∫(0→2)(4-x^2)^1.5dx答案是3∏,怎么会有∏令x=2sinθ,d
∫(0→2)(4-x^2)^1.5dx答案是3∏,怎么会有∏
∫(0→2)(4-x^2)^1.5dx
答案是3∏,怎么会有∏
∫(0→2)(4-x^2)^1.5dx答案是3∏,怎么会有∏
令x = 2sinθ,dx = 2cosθ dθ
当x = 0,θ = 0,当x = 2,θ = π/2
∫(0→2) (4 - x²)^(1.5) dx
= ∫(0→π/2) (4 - 4sin²θ)^(1.5)(2cosθ) dθ
= ∫(0→π/2) (4cos²θ)^(1.5)(2cosθ) dθ
= 16∫(0→π/2) cos⁴θ dθ
= 16∫(0→π/2) (cos²θ)² dθ
= 16∫(0→π/2) [(1 + cos2θ)/2]² dθ
= 4∫(0→π/2) (1 + 2cos2θ + cos²2θ) dθ
= 4∫(0→π/2) (1 + 2cos2θ) + 4∫(0→π/2) (1 + cos4θ)/2 dθ
= 4[θ + sin2θ]:[0→π/2] + 2[θ + (1/4)sin4θ]:[0→π/2]
= 4(π/2) + 2(π/2)
= 2π + π
= 3π
此题要用到换元法,令x=sin@,同时0<@
∫(x^2+1/x^4)dx
∫dx/根号(4x-x^2)
∫1/(x^4-x^2)dx
∫x/(4+9x^2)dx
计算∫(0→2)|x^2-x|dx
∫(0→1) x[(2x-1)^8]dx
计算∫π/4~0 x/cos^2x dx
∫dx/根号x^2(4-X^2) 求导∫dx/ 根号x^2(4-X^2)DX
∫x-根号下x dx ∫lx-2l dx ∫1/根号下(4-x^2) dx ∫e^(-x) dx ∫2/根号下x dx ∫(1/x^2)sin(1/x) dx
∫(0→2)(4-x^2)^1.5dx答案是3∏,怎么会有∏
∫ 4/(1-2x)^2 dx
求∫4/(x^2+4)dx
∫0~2π x|sinx|dx
∫(0 1)x(arctanx)^2dx
∫ 4/sin^2x dx
∫√(4-x^2)dx等于?
用换元法求 ∫dx/(4-9x^2)
∫√(4-x^2)dx