解:
(2)設該NaOH溶液中溶質質量分數(shù)為X
?$\ \text {NaOH+HCl}\xlongequal[\ \ \ \ \ \ ]{}\ \text {NaCl+H}_2\ \text {O}$?
40 36.5
100g×X 100g×3.65%
?$\mathrm{ \frac { 40 }{ 100g×X }=\frac { 36.5}{ 100g×3.65% } } $? 解得 X = 4 %
(3)設恰好完全反應時�����,生成氯化鈉的質量為y
?$\ \text {NaOH+HCl}\xlongequal[\ \ \ \ \ \ ]{}\ \text {NaCl+H}_2\ \text {O}$?
36.5 58.5
100g×3.65% y
?$ \mathrm{ \frac { 36.5 }{ 100g×3.65% }=\frac { 58.5 }{ y } }$? 解得 y = 5.85 g
則恰好完全反應時,所得溶液的溶質質量分數(shù)為
?$ \mathrm{\frac{ 5.85g}{ 100g+100g}\times 100%= 2.925%}$?
答:
(2)該NaOH溶液中溶質的質量分數(shù)為4%����;
(3)恰好完全反應時,所得溶液的溶質質量分數(shù)為2.925%����。
