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2026 年初中毕业班(九年级)练习
化学(三) 参考答案
一、选择题(本大题共10小题,每小题2分,共20分)
1-5BACCB 6-10BCADD
二、非选择题(本大题共8小题,共40分)
11.(4分)
(1)可再生
(2)三(或3)
(3)常温下碳单质的化学性质不活泼
(4)硬水
12.(4分)
(1)碱
(2)物理
(3)无机非金属
点燃
(4)3Fe+2O FeO
2 3 4
13.(5分)
(1)复合
(2)110
(3)氯化钾(或KCl)
(4)①③
(5)水体污染(或水富营养化)(叙述合理即可)
14.(5分)
(1)碳元素
(2)①②
富勒烯 C
60
(3)N+3H 2NH(或N+3H 2NH )
2 2 3 2 2 3
(4)分子之间有间隔
(5)14∶3
化学练习(三) 参考答案 第 1 页 共 2 页15.(5分)
(1)不易溶于水且不与水反应 先把导管移出水槽,再熄灭酒精灯
(2)蒸发皿 蒸发皿的余热 偏低
16.(5分)
(1)增大接触面积,使石灰石充分反应
(2)二氧化碳(或CO)
2
(3)过滤
(4)NaCO+CaCl CaCO↓+2NaCl
2 3 2 3
(5)不变
17.(7分)
【讨论交流】黑色
【解释】稀盐酸变质(或稀盐酸的溶质质量分数小) Fe+CuSO Cu+FeSO
4 4
实验2:生成物二氧化碳中有碳元素
【解释与结论】(1)0 (2)加快
【拓展应用】(1)化学性质
18.(5分)
(1)NaCl、HCl···········································································································1分
(2)解:二氧化碳的质量为100g+6g-103.8g=2.2g
设100g该洁厕灵中氯化氢的质量为x
NaCO +2HCl 2NaCl+HO+CO↑···························································1分
2 3 2 2
73 44
x 2.2g
73 x
= ···················································································1分
44 2.2g
x=3.65g····················································································1分
3.65g
该洁厕灵中盐酸的溶质质量分数为 ×100%=3.65%······································· 1分
100g
答:该洁厕灵中盐酸的溶质质量分数为3.65%。
化学练习(三) 参考答案 第 2 页 共 2 页
