若直线y=-1/2x+m与直线y=-2x+2m+3的交点在第四象限,m为整数,则m为_数学解答

若直线y=-1/2x+m与直线y=-2x+2m+3的交点在第四象限,m为整数,则m为

人气：389 ℃　时间：2020-04-24 00:50:57

解答

y=-1/2x+m
x + 2y = 2m (1)
y=-2x+2m+3
2x +y = 2m + 3 (2)
(1) - (2) * 2
==> -3x = 2m - 2 * (2m + 3)
==> -3x = 2m - 4m - 6
==> -3x = -2m - 6
==> x = 2(m+3)/3
(2) - (1) * 2
==> -3y = 2m+3 - 4m
==> -3y = -2m + 3
==> y = (2m -3) / 3
交点在第四象限
x > 0 y < 0
==> 2(m +3)/3 > 0
(2m - 3) / 3 < 0
==> m > -3
m < 3/2
==> -3 < m < 3/2
m为整数
所以m= -2,-1,0,1