解:(7x*m+kx²+4n+1)(x+5)=7*(m+1)+kx³+4nx+x+35x*m+5kx²+20n+5∵是3次3项式,且一次项系数为-7∴m=2 4n+1=-7 即n=2 35+5k=0 即k=-7∴m+n+k=2+2+(-7)=-3
