解:
?$(1\mathrm {)}$?反應(yīng)生成的二氧化碳?xì)怏w的質(zhì)量為:?$11 \mathrm {g}+50 \mathrm {g}+64.4 \mathrm {g}-121 \mathrm {g}=4.4 \mathrm {g}$
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?$(2\mathrm {)}$?設(shè)參加反應(yīng)的碳酸鈉的質(zhì)量為?$x����,$?設(shè)反應(yīng)生成的氯化鈉的質(zhì)量為?$y。$?
?$\mathrm {Na}_2\mathrm {CO}_3+2\mathrm {HCl}\xlongequal[ ]{ }2 \mathrm {NaCl}+\mathrm {H}_2\mathrm {O}+\mathrm {CO}_2↑$?
106 117 44
? $x$? y 4.4 g
?$\frac {106 }{x }=\frac {117 }{y }=\frac {44 }{4.4 \mathrm {g} }��,$?解得?$x=10.6 \mathrm {g},$??$y=11.7 \mathrm {g}$
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該純堿樣品的純度為?$\frac {10.6 \mathrm {g}}{11 \mathrm {g}}×100%≈96.4 % $
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?$(3\mathrm {)}$?純堿樣品中所含的氯化鈉的質(zhì)量為:?$11 \mathrm {g}-10.6 \mathrm {g}=0.4 \mathrm {g}$?
反應(yīng)后溶液中溶質(zhì)氯化鈉的質(zhì)量為:?$11.7 \mathrm {g}+0.4 \mathrm {g}=12.1 \mathrm {g}$?
反應(yīng)后所得溶液中溶質(zhì)的質(zhì)量分?jǐn)?shù)為:?$\frac { 12.1 \mathrm {g}}{ 121 \mathrm {g}}×100%= 10 %$
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答:?$(1\mathrm {)}$?生成?$\mathrm {CO}_2$?的質(zhì)量為?$4.4\mathrm {g}����;$?
?$(2\mathrm {)}$?該純堿樣品的純度為?$96.4%;$?
?$(3\mathrm {)}$?所得溶液中溶質(zhì)的質(zhì)量分?jǐn)?shù)為?$10%��。$?
