题目内容
17.用代入消元法解下列二元一次方程组①$\left\{\begin{array}{l}{y=x+2}\\{4x+3y=13}\end{array}$
②$\left\{\begin{array}{l}{x+2y=4}\\{3x+2y=8}\end{array}$
③$\left\{\begin{array}{l}{2x+y=8}\\{x+3y=9}\end{array}$.
分析 ①方程组利用代入消元法求出解即可;
②方程组利用加减消元法求出解即可;
③方程组利用加减消元法求出解即可.
解答 解:①$\left\{\begin{array}{l}{y=x+2①}\\{4x+3y=13②}\end{array}\right.$,
把①代入②得:4x+3x+6=13,即x=1,
把x=1代入①得:y=3,
则方程组的解为$\left\{\begin{array}{l}{x=1}\\{y=3}\end{array}\right.$;
②$\left\{\begin{array}{l}{x+2y=4①}\\{3x+2y=8②}\end{array}\right.$,
②-①得:2x=4,即x=2,
把x=2代入①得:y=1,
则方程组的解为$\left\{\begin{array}{l}{x=2}\\{y=1}\end{array}\right.$;
③$\left\{\begin{array}{l}{2x+y=8①}\\{x+3y=9②}\end{array}\right.$,
①×3-②得:5x=15,即x=3,
把x=3代入②得:y=2,
则方程组的解为$\left\{\begin{array}{l}{x=3}\\{y=2}\end{array}\right.$.
点评 此题考查了解二元一次方程组,利用了消元的思想,消元的方法有:代入消元法与加减消元法.
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