3个回答
展开全部
化极坐标 D:x^2+y^2 = 4x, 化为 r = 4cost
I = ∫∫<D> (x^2+y^2)dxdy = ∫<-π/2, π/2>dt ∫<0, 4cost>r^2 rdr
= ∫<-π/2, π/2>dt [(1/4)r^4]<0, 4cost> = ∫<-π/2, π/2>64(cost)^4dt
= ∫<0, π/2>128(cost)^4dt = ∫<0, π/2>32(1+cos2t)^2dt
= 16∫<0, π/2>[2+4cos2t+2(cos2t)^2]dt = 16∫<0, π/2>(3+4cos2t+cos4t)dt
= 16[3t+2sin2t+(1/4)sin4t]<0, π/2> = 24π
I = ∫∫<D> (x^2+y^2)dxdy = ∫<-π/2, π/2>dt ∫<0, 4cost>r^2 rdr
= ∫<-π/2, π/2>dt [(1/4)r^4]<0, 4cost> = ∫<-π/2, π/2>64(cost)^4dt
= ∫<0, π/2>128(cost)^4dt = ∫<0, π/2>32(1+cos2t)^2dt
= 16∫<0, π/2>[2+4cos2t+2(cos2t)^2]dt = 16∫<0, π/2>(3+4cos2t+cos4t)dt
= 16[3t+2sin2t+(1/4)sin4t]<0, π/2> = 24π
本回答被网友采纳
已赞过
已踩过<
评论
收起
你对这个回答的评价是?
推荐律师服务:
若未解决您的问题,请您详细描述您的问题,通过百度律临进行免费专业咨询