Advertisements
Advertisements
प्रश्न
Concentrated nitric acid oxidises phosphorus to phosphoric acid according to the following equation:
\[\ce{P + 5HNO3 -> H3PO4 + H2O + 5NO2}\]
- What mass of phosphoric acid can be prepared from 6.2 g of phosphorus?
- What mass of nitric acid will be consumed at the same time?
- What will be the volume of steam at the same time measured at 760 mm Hg pressure and 373°C?
(H = 1; N = 14; O = 16; P = 31∴ )
Advertisements
उत्तर
\[\ce{\underset{31 g}{P} + 5HNO3 -> \underset{(98 g)}{H3PO4} + H2O + 5NO2}\]
i. 31 g of P = 1 mole
∴ 9.3 g of P = `1/31 xx 9.3`
= 0.3 moles
Hence, 0.3 moles of phosphorus were taken for the reaction.
ii. 31 g of P forms 98 g of phosphoric acid.
∴ 9.3 g of P = `98/31 xx 9.3`
= 29.4 g
Hence, 29.4 g of phosphoric acid is formed.
iii. 31 g of P produces 5 vol = 5 × 22.4 lit.
∴ 9.3 g will produce = `(5 xx 22.4)/31`
= 33.6 lit.
APPEARS IN
संबंधित प्रश्न
Empirical formula of a compound is CH2O. If its empirical formula is equal to its vapour density, calculate the molecular formula of the compound.
What is the mass of nitrogen in 1000Kg of urea [CO(NH2)2] ?
[H = 1, C= 12, N= 14, O = 16]
The equation for the burning of octane is:
\[\ce{2C6H18 + 25O2 -> 16CO2 + 18H2O}\]
If the relative molecular mass of carbon dioxide is 44, what is the mass of carbon dioxide produced by burning two moles of octane?
Find the weight of 0.5 mole of O2.
Find the weight of 0.2 mole of H2 gas.
Which of the following would weigh most?
Which of the following contains maximum number of molecules?
The atomic mass of Chlorine is 35.5. What is its vapour density?
Correct the statement, if required.
Under similar conditions of temperature and pressure, two volumes of hydrogen combined with two volumes of oxygen will give two volumes of water vapour.
A gas cylinder can hold 1 kg of hydrogen at room temperature and pressure. What mass of carbon dioxide can it hold under similar conditions of temperature and pressure?
