56 g of an element M combines with 16 g of oxygen to form its oxide of type MO. Find out
(a) Equivalent mass of element
(b) Equivalent mass of oxide
(Assume law of conservation of mass to be valid).

Equivalent mass of a metal is 12 g "mol"^(-1) . Hence, equivalent mass of its oxide is

4 g of a metal oxide contains 1.6 g-oxygen, then equivalent mass of the metal is

The equivalent mass of a metal is twice to that of oxygen. How many times is the equivalent mass of it's oxide than the equivalent mass of the metal ?

1.50 g of a metal on being heated in oxygen gives 2.15 g of its oxide. Calculate the equivalent mass of the metal.

0.9367 g of cadmium combine with chlorine to form 1.5276 g of CdCl_2 - Find the equivalent mass of cadmium.

X gm of metal gave Y gm of its oxide, so equivalent mass of metal is :

An element forms an oxide, in which the oxygen is 20% of the oxide by weight, the equivalent weight of the given element will be

If the equivalent weight of an element is 32, then the percentage of oxygen in its oxide is :

Equivalent mass of a bivalent metal is 32.7g. Molecular mass of its chloride will be :

This law was proposed by Dalton in 1803 . According to this law , if two elements combune to form more than one compounds ,the masses of one element that combine with a fixed mass of the other element, are in the ratio of small whole number. For exemple, hydrogen combines with oxygen to form two compounds ,namely, water and hydrogen peroxide. Here, the masses of oxygen (i.e, 16g and 32g) which combine with a fixed mass of hydrogen (2g) bear a simple raio, i.e, 16 :32 or 1 :2 . An element forms two oxides .In one oxide ,one gram of the oxide containd 0.5g of the element. In another oxide, 4g of the oxide contains 0.8g of the element . Show that these data confirm the law of multiple proportion.