设3x2-x=1,求9x4+12x3-3x2-7x+2000的值
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解决时间 2021-11-18 14:53
- 提问者网友:送舟行
- 2021-11-18 00:13
设3x2-x=1,求9x4+12x3-3x2-7x+2000的值
最佳答案
- 五星知识达人网友:舊物识亽
- 2021-11-18 01:31
3x²-x=1
x=(1±√13)/6
9x4+12x³-3x²-7x+2000
=9x4-3x³+15x³-3x²-7x+2000
=3x²(3x²-x)+15x³-5x²+2x²-7x+2000
=3x²(3x²-x)+5x(3x²-x)+2x²-7x+2000
=3x²+5x+2x²-7x+2000
=5x²-2x+2000
=5(3²x-x)/3 - x/3+2000
=5/3-x/3+2000
=2001+2/3-(1±√13)/6
=2001+1/2±(√13)/6
=2001.5±(√13)/6
x=(1±√13)/6
9x4+12x³-3x²-7x+2000
=9x4-3x³+15x³-3x²-7x+2000
=3x²(3x²-x)+15x³-5x²+2x²-7x+2000
=3x²(3x²-x)+5x(3x²-x)+2x²-7x+2000
=3x²+5x+2x²-7x+2000
=5x²-2x+2000
=5(3²x-x)/3 - x/3+2000
=5/3-x/3+2000
=2001+2/3-(1±√13)/6
=2001+1/2±(√13)/6
=2001.5±(√13)/6
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