已知a²+3a+1=0,求3a³+(a²+5)(a²-1)-a(5a+6)

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已知a²+3a+1=0,求3a³+(a²+5)(a²-1)-a(5a+6)
已知a²+3a+1=0,求3a³+(a²+5)(a²-1)-a(5a+6)

已知a²+3a+1=0,求3a³+(a²+5)(a²-1)-a(5a+6)
由条件知：a²+3a=-1
原式=a的4次方+3a³-a²-6a-5
=a²(a²+3a)-a²-6a-5
=-a²-a²-6a-5
=-2a²-6a-5
=-2(a²+3a)-5
=-2×(-1)-5
=-3

a^2+3a+1=0
a^2+3a=-1
3a^3+(a^2+5)(a^2-1)-a(5a+6)
=3a^3+a^4+4a^2-5-5a^2-6a
=a^4+3a^3+4a^2-5-5a^2-6a
=a^2(a^2+3a)+4a^2-5-5a^2-6a
=-a^2+4a^2-5-5a^2-6a
=-2a^2-6a-5
=-2(a^2+3a)-5
=-2*(-1)-5
=2-5
= -3