今有未知溶質(zhì)質(zhì)量分數(shù)的鹽酸50 g,與7.8 g鋅充分反應(yīng)后,鋅有剩余,然后再加入20 g7.3%的鹽酸,恰好與剩余的鋅完全反應(yīng),求:(1)第一次反應(yīng)時所用鹽酸中溶質(zhì)的質(zhì)量分數(shù).(2)反應(yīng)后所得溶液中溶質(zhì)的質(zhì)量分數(shù).
分析:計算第一次反應(yīng)時所用的鹽酸中溶質(zhì)的質(zhì)量分數(shù)時,應(yīng)先計算出加入20 g7.3%的鹽酸時消耗的鋅的質(zhì)量,才能得出第一次所消耗的鋅的質(zhì)量,才能得出結(jié)果.反應(yīng)后所得溶液中溶質(zhì)的質(zhì)量分數(shù)計算時,先計算出兩次反應(yīng)后所得溶質(zhì)的質(zhì)量,然后確定出所得溶液的質(zhì)量.
解答:解:設(shè)與20 g7.3%的鹽酸反應(yīng)的鋅的質(zhì)量為X,反應(yīng)后生成的氫氣質(zhì)量為a
1,生成ZnCl
2質(zhì)量為b
1Zn+2HCl═ZnCl
2+H
2↑
65 73
X 20 g×7.3%
=
X=1.3g
Zn+2HCl═ZnCl
2+H
2↑
73 136
20 g×7.3% b
1=
b
1=2.72g
Zn+2HCl═ZnCl
2+H
2↑
73 2
20 g×7.3% a
1=
a
1=0.04g
設(shè)第一次反應(yīng)時所用鹽酸中溶質(zhì)的質(zhì)量分數(shù)為Y,反應(yīng)后生成的氫氣質(zhì)量為a
2,生成ZnCl
2質(zhì)量為b
2Zn+2HCl═ZnCl
2+H
2↑
65 73 136 2
7.8 g-1.3g 50 gY b
2a
2
=
Y=14.6%
Zn+2HCl═ZnCl
2+H
2↑
65 136
7.8 g-1.3g b
2=
b
2=13.6g
Zn+2HCl═ZnCl
2+H
2↑
65 2
7.8 g-1.3g a
2=
a
2=0.2g
反應(yīng)后所得溶液中溶質(zhì)的質(zhì)量分數(shù)為
2.72g+13.6g |
50g+20g+7.8g-0.04g-0.2g |
×100%=21.0%
答:第一次反應(yīng)時所用鹽酸中溶質(zhì)的質(zhì)量分數(shù)為14.6%;反應(yīng)后所得溶液中溶質(zhì)的質(zhì)量分數(shù)為21.0%.
點評:在確定反應(yīng)后溶液中溶質(zhì)的質(zhì)量分數(shù)時,一定要確定好反應(yīng)后的溶質(zhì)和溶液,否則就會得到錯誤結(jié)果.