问题
填空题
若直线l1:ax+(a+1)y=0与l2:2x+y+3a=0平行,则实数a=______.
答案
∵直线l1:ax+(a+1)y=0与l2:2x+y+3a=0平行,
∴
=a1 a2
≠b1 b2
即 c1 c2
=a 2
≠a+1 1
,0 3a
解得 a=-2,
故答案为-2.
搜题请搜索小程序“爱下问搜题”
若直线l1:ax+(a+1)y=0与l2:2x+y+3a=0平行,则实数a=______.
∵直线l1:ax+(a+1)y=0与l2:2x+y+3a=0平行,
∴
=a1 a2
≠b1 b2
即 c1 c2
=a 2
≠a+1 1
,0 3a
解得 a=-2,
故答案为-2.