第一题:(1) (an+2)/2=√(2Sn) 即(an+2)^2=8Sn [a(n-1)+2]^2=8S(n-1) 相减得[an-a(n-1)][an+a(n-1)+4]=8[Sn-S(n-1)]=8an [an-a(n-1)][an+a(n-1)]+4[an-a(n-1)]-8an=0 [an-a(n-1)][an+a(n-1)]-4[an+a(n-1)]=0 [an-a...
两道高一数学题 50分悬赏?v=1这是第一道?v=1好像倒了,凑合着看吧
第一题:(1) (an+2)/2=√(2Sn) 即(an+2)^2=8Sn [a(n-1)+2]^2=8S(n-1) 相减得[an-a(n-1)][an+a(n-1)+4]=8[Sn-S(n-1)]=8an [an-a(n-1)][an+a(n-1)]+4[an-a(n-1)]-8an=0 [an-a(n-1)][an+a(n-1)]-4[an+a(n-1)]=0 [an-a...