Ratio of `(/_\T_(b))/(K_(b))` of 10 g `AB_(2)` and 14 g `A_(2)B` per 100 g of solvent in their respective, solution (`AB_(2)and A_(2)B`both are non-electrolytes ) is 1 mole/ kg in both cases. Hence, atomic wt. of A and B are respectively :

The element 'A' and 'B' combine together to give two compounds A_(2) B_(3) and AB_(2) . The weight of 0.2 mole of A_(2) B_(3) is 26 gm . The weight of 0.3 mole of AB_(2) is 24 g m . Then the atomic weight of A and B respectively

Two situations are shown in fig. (a) and (b) In each case m_(1) = 3 kg and m_(2) = 4 kg . If a_(1), a_(2) are the respective accelerations of the blocks in these situations, then the values of a_(1) and a_(2) are respectively [g = 10 ms^(-2)]

In the figure the blocks A, B and C of mass m each, have acceleration a_(1), a_(2) and a_(3) respectively. F_(1) and F_2 are external forces of magnitudes 2 mg and mg respectively.

Relative lowering of a solution containing a non volatile solute (A) in a solvent (B) is 2%. What is the mole percentage of component 'B' in the solution.

A and B are two elements which form AB_(2) and A_(2)B_(3) if 0.18 mole of AB_(2) weights 10.6 g and 0.18 mole of A_(3)B_(3) weighs 17.8 g.Then

Two elements A and B from compounds having formula "AB"_(2) and "AB"_(4) . When dissolved in 20g of Benzene (C_(6)H_(6)) , 1g of "AB"_(2) lowers the freezing point by 2.3 K whereas 1.0g of "AB"_(4) lowers it by 1.3 K. The molar depression constant for benzene is 5.1 K kg "mol"^(-1) . Calculate atomic masses of A and B.