数学因式分解题
因式分解:(x+1)4+(x+3)4-272请详细的讲一下,谢谢.注:括号后的四是指四次方....
因式分解:(x+1)4 +(x+3)4-272
请详细的讲一下,谢谢.
注:括号后的四是指四次方. 展开
请详细的讲一下,谢谢.
注:括号后的四是指四次方. 展开
2个回答
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原式=(x+1)4-16+(x+3)4-256
=[(x+1)²+4][(x+1)²-4]+[(x+3)²+16][(x+3)²-16]
=[(x+1)²+4](x+1+2)(x+1-2)+[(x+3)²+16](x+3+4)(x+3-4)
=(x²+2x+5)(x+3)(x-1)+(x²+6x+25)(x+7)(x-1)
=(x-1)[(x³+5x²+11x+15)+(x³+13x²+67x+175)
=(x-1)(2x³+18x²+78x+190)
=(x-1)(2x³+10x²+8x²+78x+190)
=(x-1)[2x²(x+5)+2(4x+19)(x+5)]
=2(x-1)(x+5)(x²+4x+19)
=[(x+1)²+4][(x+1)²-4]+[(x+3)²+16][(x+3)²-16]
=[(x+1)²+4](x+1+2)(x+1-2)+[(x+3)²+16](x+3+4)(x+3-4)
=(x²+2x+5)(x+3)(x-1)+(x²+6x+25)(x+7)(x-1)
=(x-1)[(x³+5x²+11x+15)+(x³+13x²+67x+175)
=(x-1)(2x³+18x²+78x+190)
=(x-1)(2x³+10x²+8x²+78x+190)
=(x-1)[2x²(x+5)+2(4x+19)(x+5)]
=2(x-1)(x+5)(x²+4x+19)
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展开全部
(x+1)^4+(x+3)^4-272
=(x+3)^4-4^4+(x+1)^4-2^4
(平方差)
=[(x+3)^2-4^2][(x+3)^2+4^2]+[(x+1)^2-2^2][(x+1)^2+2^2]
(平方差)
=(x-1)(x+7)[(x+3)^2+4^2]+(x-1)(x+3)[(x+1)^2+2^2]
(提取公因式,再整理)
=2(x-1)(x^2+4x+19)(5+x)
=(x+3)^4-4^4+(x+1)^4-2^4
(平方差)
=[(x+3)^2-4^2][(x+3)^2+4^2]+[(x+1)^2-2^2][(x+1)^2+2^2]
(平方差)
=(x-1)(x+7)[(x+3)^2+4^2]+(x-1)(x+3)[(x+1)^2+2^2]
(提取公因式,再整理)
=2(x-1)(x^2+4x+19)(5+x)
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