已知a눀-3a-1=0,求a^6+120a^-2的值

2024-12-05 04:44:33
推荐回答(1个)
回答1:

解:
a²-3a-1=0
a²=3a+1,3a=a²-1
a -3 -1/a=0
a- 1/a=3
a⁶+120a⁻²
=(3a+1)³+120a⁻²
=27a³+27a²+9a+1+120a⁻²
=27a(3a+1)+27(3a+1)+9a+1+120a⁻²
=81a²+27a+81a+27+9a+1+120a⁻²
=81a²+39(a²-1)+120a⁻²+28
=120a²+120a⁻²-11
=120[(a- 1/a)²+2]-11
=120(3²+2)-11
=120·11-11
=1309