मराठी
महाराष्ट्र राज्य शिक्षण मंडळएचएससी विज्ञान (सामान्य) इयत्ता ११ वी

Solve problem: Calculate the mass of sulfur dioxide produced by burning 16 g of sulfur in excess of oxygen in the contact process. (Average atomic mass : S = 32 u, O = 16 u)

Advertisements
Advertisements

प्रश्न

Solve problem:

Calculate the mass of sulfur dioxide produced by burning 16 g of sulfur in excess of oxygen in the contact process. (Average atomic mass : S = 32 u, O = 16 u)

बेरीज
Advertisements

उत्तर

Given: Mass of sulfur (reactant) = 16 g

To find: Mass of sulfur dioxide (product)

Calculation: 32 g of sulfur combine with 32 g oxygen to form 64 g of sulfur dioxide as follows:

\[\ce{\underset{\text{32 g}}{sulfur} + \underset{\text{32 g}}{Oxygen}->\underset{\text{64 g}}{sulfur dioxide}}\]

Hence, (0.5 × 32 = 16 g) of sulfur will combine with (0.5 × 32 = 16 g) of oxygen to give (0.5 × 64 = 32 g) sulfur dioxide.

Mass of sulfur dioxide produced = 32 g

shaalaa.com
  या प्रश्नात किंवा उत्तरात काही त्रुटी आहे का?
पाठ 1: Some Basic Concepts of Chemistry - Exercises [पृष्ठ १२]

APPEARS IN

बालभारती Chemistry [English] Standard 11 Maharashtra State Board
पाठ 1 Some Basic Concepts of Chemistry
Exercises | Q 4. (R) | पृष्ठ १२

संबंधित प्रश्‍न

Choose the correct option.

Which of the following has maximum number of molecules?


The number of molecules in 22.4 cm3 of nitrogen gas at STP is ______.


What is the ratio of molecules in 1 mole of NH3 and 1 mole of HNO3?


Solve problem:

The mass of an atom of hydrogen is 1.008 u. What is the mass of 18 atoms of hydrogen?


Solve problem:

Calculate the number of an atom of the following (Given: Atomic mass of I = 127 u).

254 g of iodine (I)


Solve problem:

Arjun purchased 250 g of glucose (C6H12O6) for Rs 40. Find the cost of glucose per mole.


Solve the problem:

The natural isotopic abundance of 10B is 19.60% and 11B is 80.40 %. The exact isotopic masses are 10.13 and 11.009 respectively. Calculate the average atomic mass of boron.


Solve problem:

Calculate the number of atoms of the following. (Average atomic mass : N = 14 u, S = 32 u)

0.4 mole of nitrogen


Solve problem:

Calculate the number of atoms of the following. (Average atomic mass : N = 14 u, S = 32 u)

1.6 g of sulfur


Which one of the following represents 180 g of water?


What is the mass of precipitate formed when 50 ml of 8.5% solution of AgNO3 is mixed with 100 ml of 1.865% potassium chloride solution?


Which of the following is/are true with respect to carbon-12.


Define relative atomic mass.


Calculate the average atomic mass of naturally occurring magnesium using the following data.

Isotope Isotopic atomic mass Abundance (%)
Mg24 23.99 78.99
Mg25 24.99 10.00
Mg26 25.98 11.01

The reaction between aluminium and ferric oxide can generate temperatures up to 3273 K and is used in welding metals.
(Atomic mass of Al = 27 u Atomic mass of O = 16 u)
\[\ce{2Al + Fe2O3 -> Al2O3 + 2Fe}\]; If, in this process, 324 g of aluminium is allowed to react with 1.12 kg of ferric oxide.

  1. Calculate the mass of Al2O3 formed.
  2. How much of the excess reagent is left at the end of the reaction?

An element has a bee structure with cell edge of 288 pm. The density of element is 7.2 g cm-3. What is the atomic mass of an element?


Boron has two isotopes 10B and 11B with atomic masses 10 and 11, respectively. If its average atomic mass is 10.81, the abundance of 10B is ____________.


How many moles of ammonia are present in 5.6 cm3 of ammonia gas at STP?


The unit of atomic mass, amu is replaced by u, here u stands for ______.


One amu is equal to ________.


Calculate mass of 3.01 × 1024 atoms of an element having atomic mass 21.13.


It is found that in 11.2 L at 0°C and 1 atm, of any gaseous compound of 'X', there is never less than 15.5 gm of 'X'. It is also found that 11.2 L of vapours of 'X' at 0°C and 1 atm, weighs 62 gm. The atomicity of 'X' is ______.


Which symbol replaces the unit of atomic mass, amu?


Share
Notifications

Englishहिंदीमराठी


      Forgot password?
Use app×