记y=3x-2为l1,其倾斜角为θ,所求直线为l2,其倾斜角为2θtanθ=k1=3tan2θ=2tanθ/(1-tan²θ)=2×3/(1-3²)=-3/4设l2为y=k2x+b∵l2过原点且tan2θ=-3/4∴l2为y=-3/4x
y=-9/8x
