07. EQUILIBRIUM
Chemical Equilibrium

33467 In the reversible reaction \(A + B\) \(\rightleftharpoons\) \(C + D\), the concentration of each \(C\) and \(D\) at equilibrium was \(0.8\) mole/litre, then the equilibrium constant \({K_c}\) will be

1 \(6.4\)
2 \(0.64\)
3 \(1.6\)
4 \(16\)
Chemical Equilibrium

33468 \(4\) moles of \(A\) are mixed with \(4\) moles of \(B\). At equilibrium for the reaction \(A + B\) \(\rightleftharpoons\) \(C + D\), \(2 \) moles of \(C\) and \(D\) are formed. The equilibrium constant for the reaction will be

1 \(\frac{1}{4}\)
2 \(\frac{1}{2}\)
3 \(1\)
4 \(4\)
Chemical Equilibrium

33469 On a given condition, the equilibrium concentration of \(HI,\,{H_2}\) and \({I_2}\) are \(0.80, \,0.10\) and \(0.10\) mole/litre. The equilibrium constant for the reaction \({H_2} + {I_2}\) \(\rightleftharpoons\) \(2HI\) will be

1 \(64\)
2 \(12\)
3 \(8\)
4 \(0.8\)
Chemical Equilibrium

33470 In which of the following, the reaction proceeds towards completion

1 \(K = {10^3}\)
2 \(K = {10^{ - 2}}\)
3 \(K = 10\)
4 \(K = 1\)
Chemical Equilibrium

33467 In the reversible reaction \(A + B\) \(\rightleftharpoons\) \(C + D\), the concentration of each \(C\) and \(D\) at equilibrium was \(0.8\) mole/litre, then the equilibrium constant \({K_c}\) will be

1 \(6.4\)
2 \(0.64\)
3 \(1.6\)
4 \(16\)
Chemical Equilibrium

33468 \(4\) moles of \(A\) are mixed with \(4\) moles of \(B\). At equilibrium for the reaction \(A + B\) \(\rightleftharpoons\) \(C + D\), \(2 \) moles of \(C\) and \(D\) are formed. The equilibrium constant for the reaction will be

1 \(\frac{1}{4}\)
2 \(\frac{1}{2}\)
3 \(1\)
4 \(4\)
Chemical Equilibrium

33469 On a given condition, the equilibrium concentration of \(HI,\,{H_2}\) and \({I_2}\) are \(0.80, \,0.10\) and \(0.10\) mole/litre. The equilibrium constant for the reaction \({H_2} + {I_2}\) \(\rightleftharpoons\) \(2HI\) will be

1 \(64\)
2 \(12\)
3 \(8\)
4 \(0.8\)
Chemical Equilibrium

33470 In which of the following, the reaction proceeds towards completion

1 \(K = {10^3}\)
2 \(K = {10^{ - 2}}\)
3 \(K = 10\)
4 \(K = 1\)
Chemical Equilibrium

33467 In the reversible reaction \(A + B\) \(\rightleftharpoons\) \(C + D\), the concentration of each \(C\) and \(D\) at equilibrium was \(0.8\) mole/litre, then the equilibrium constant \({K_c}\) will be

1 \(6.4\)
2 \(0.64\)
3 \(1.6\)
4 \(16\)
Chemical Equilibrium

33468 \(4\) moles of \(A\) are mixed with \(4\) moles of \(B\). At equilibrium for the reaction \(A + B\) \(\rightleftharpoons\) \(C + D\), \(2 \) moles of \(C\) and \(D\) are formed. The equilibrium constant for the reaction will be

1 \(\frac{1}{4}\)
2 \(\frac{1}{2}\)
3 \(1\)
4 \(4\)
Chemical Equilibrium

33469 On a given condition, the equilibrium concentration of \(HI,\,{H_2}\) and \({I_2}\) are \(0.80, \,0.10\) and \(0.10\) mole/litre. The equilibrium constant for the reaction \({H_2} + {I_2}\) \(\rightleftharpoons\) \(2HI\) will be

1 \(64\)
2 \(12\)
3 \(8\)
4 \(0.8\)
Chemical Equilibrium

33470 In which of the following, the reaction proceeds towards completion

1 \(K = {10^3}\)
2 \(K = {10^{ - 2}}\)
3 \(K = 10\)
4 \(K = 1\)
Chemical Equilibrium

33467 In the reversible reaction \(A + B\) \(\rightleftharpoons\) \(C + D\), the concentration of each \(C\) and \(D\) at equilibrium was \(0.8\) mole/litre, then the equilibrium constant \({K_c}\) will be

1 \(6.4\)
2 \(0.64\)
3 \(1.6\)
4 \(16\)
Chemical Equilibrium

33468 \(4\) moles of \(A\) are mixed with \(4\) moles of \(B\). At equilibrium for the reaction \(A + B\) \(\rightleftharpoons\) \(C + D\), \(2 \) moles of \(C\) and \(D\) are formed. The equilibrium constant for the reaction will be

1 \(\frac{1}{4}\)
2 \(\frac{1}{2}\)
3 \(1\)
4 \(4\)
Chemical Equilibrium

33469 On a given condition, the equilibrium concentration of \(HI,\,{H_2}\) and \({I_2}\) are \(0.80, \,0.10\) and \(0.10\) mole/litre. The equilibrium constant for the reaction \({H_2} + {I_2}\) \(\rightleftharpoons\) \(2HI\) will be

1 \(64\)
2 \(12\)
3 \(8\)
4 \(0.8\)
Chemical Equilibrium

33470 In which of the following, the reaction proceeds towards completion

1 \(K = {10^3}\)
2 \(K = {10^{ - 2}}\)
3 \(K = 10\)
4 \(K = 1\)