题目内容
13.解下列方程组:(1)$\left\{\begin{array}{l}{y=2x-3}\\{4x-3y=1}\end{array}\right.$
(2)$\left\{\begin{array}{l}{x-3y=1}\\{2x+y-15=1}\end{array}\right.$.
分析 (1)先把①代入②求出x的值,再把x的值代入①即可得出y的值;
(2)先用加减消元法求出y的值,再用代入消元法求出x的值即可.
解答 解:(1)$\left\{\begin{array}{l}y=2x-3①\\ 4x-3y=1②\end{array}\right.$,把①代入②得,4x-3(2x-3)=1,解得x=4,把x=4代入①得,y=8-1=7,
故方程组的解为$\left\{\begin{array}{l}x=4\\ y=7\end{array}\right.$;
(2)$\left\{\begin{array}{l}x-3y=1①\\ 2x+y-15=1②\end{array}\right.$,①×2-②得,-7y=-14,解得y=2,把y=2代入①得,x-6=1,解得x=7,
故方程组的解为$\left\{\begin{array}{l}x=7\\ y=2\end{array}\right.$.
点评 本题考查的是解二元一次方程组,熟知解二元一次方程组的加减消元法和代入消元法是解答此题的关键.
练习册系列答案
相关题目
3.平行四边形的周长为240,两邻边长为x、y,则y与x之间的关系是( )
| A. | y=120-x(0<x<120) | B. | y=120-x(0≤x≤120) | C. | y=240-x(0<x<240) | D. | y=240-x(0≤x≤240) |
