Chapter 3 - Mass Relationships in Chemical Reactions - Questions & Problems - Page 112: 3.104

$18.7 g$

$ H_{2}C_{2}O_{4}.2H_{2}O+ heat → H_{2}C_{2}O_{4} + 2H_{2}O$ Molecular mass of oxalic acid dihydrate $ H_{2}C_{2}O_{4}.2H_{2}O = 6 \times 1+2 \times 12+6 \times 16$ = 126 g Molecular mass of anhydrous oxalic acid $H_{2}C_{2}O_{4} = 2\times1+2 \times 12+4 \times 16$= 90 g From the dehydration equation we have, 126 g oxalic acid hydrate on complete dehydration yields 90 g of anhydrous oxalic acid. Therefore anhydrous oxalicacid left after dehydration of 26.2 g oxalicacid dehydrate =$ (26.2 \times 90) \div 126 = 18.7 g $