题目内容
计算:
(1)-x4y5z5÷
xy4z3×(-
xyz2)2;
(2)[x(x2y2-xy)-y(x2-x3y)]÷3x2y;
(3)解不等式:(1-3y)2+(2y-1)2>13(y-1)(y+1);
(4)在x2+px+8与x2-3x+q的积中不含x3与x项,求p、q的值?
(1)-x4y5z5÷
| 1 |
| 6 |
| 1 |
| 2 |
(2)[x(x2y2-xy)-y(x2-x3y)]÷3x2y;
(3)解不等式:(1-3y)2+(2y-1)2>13(y-1)(y+1);
(4)在x2+px+8与x2-3x+q的积中不含x3与x项,求p、q的值?
(1)原式=-x4y5z5•
•(-
xyz2)2=-
x5y3z6;
(2)原式=[x2y(xy-1)-x2y(1-xy)]•
,
=x2y(2xy-2)•
,
=
xy-
;
(3)化简得:-10y>-15,
∴y<
;
(4)(x2+px+8)(x2-3x+q),
=x4+(-3+p)x3+(17-3p)x2+(pq-24)x+8q,
因为不含x3与x项,
所以-3+p=0,pq-24=0,
解得:p=3,q=8.
| 6 |
| xy4z3 |
| 1 |
| 2 |
| 3 |
| 2 |
(2)原式=[x2y(xy-1)-x2y(1-xy)]•
| 1 |
| 3x2y |
=x2y(2xy-2)•
| 1 |
| 3x2y |
=
| 2 |
| 3 |
| 2 |
| 3 |
(3)化简得:-10y>-15,
∴y<
| 3 |
| 2 |
(4)(x2+px+8)(x2-3x+q),
=x4+(-3+p)x3+(17-3p)x2+(pq-24)x+8q,
因为不含x3与x项,
所以-3+p=0,pq-24=0,
解得:p=3,q=8.
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