(1)f=1/T λ=vT =4*0.25 =1m(2)以O为坐标原点,设P为OA间的任意一点,其坐标为x,则两波源到P点的波程差为 Δl Δl=x-(2-x) 0≤x≤2 合振动振幅最小的点的位置满足 Δl=(n+1/2)λ(n=0,1,2……) x=0.25m,0.75m,1.25m,1.75m
