Home
Class 10
CHEMISTRY
Analyse the following equation 2NO((g))+...

Analyse the following equation `2NO_((g))+O_(2(g))rarr2NO_(2(g))`: Calculate the number of the moles of NO required to combine completely with 112L of Oxygen at STP.

Promotional Banner

Topper's Solved these Questions

  • GAS LAWS AND MOLE CONCEPT

    BODY BOOKS PUBLICATION|Exercise EXERCISE|6 Videos
  • COMPOUNDS OF NON-METALS

    BODY BOOKS PUBLICATION|Exercise EXERCIES|7 Videos
  • March 2020 Paper

    BODY BOOKS PUBLICATION|Exercise EXERCISE|42 Videos

Similar Questions

Explore conceptually related problems

Analyse the following equation 2NO_((g))+O_(2(g))rarr2NO_(2(g)) : Calculate the mass of NO_2 formed when 112L of oxygen react completely?

The balanced chemical equation of a reaction (at STP) is given below. 2H_(2((g))+O_(2(g))rarr2H_2O_((g)) : Calculation the volume of oxygen required to combine completely with 224L of the hydrogen at STP.

Caluclate the number of moles of O2 present in 64g of oxygen molecule?

Calculate the number of moles of O_2 required to produce 240 g of Mgo by burning magnesium metal

Calculate the number of moles of 11.2L chlorine at STP. Find its mass.

Calculate the number of moles and mass of methane required to produce 11 g of CO_2 by combustion.

H_2(g)+I_2(g)harr2HI(g) What is the total number of moles of reactants?

Calculate the mass of oxygen required for the complete burning of 2 g of carbon.

If 6.023xx10^23 molecules of N_2 react completely with H_2 according to the equation: N_(2(g)) + 3H_(2(g)) rarr 2NH_(3(g)) , then calculate the numbers of molecules of NH_3 formed.

Calculate the amount of CO_2 produced when 2 moles of carbon are burned in l6 g of O_2