1)可设y=k(x-0.4),将当x=0.65元时,y=0.8千瓦时代入求得k=3.2,即y=3.2(x-0.4) (0.55≤x≤0.75)2)由y=3.2(x-0.4)得x=5/16y+0.4≤0.55/16y≤0.1y≤0.32即新增用电量至少是0.32亿千瓦时.
