Graham’s Law of Rate of Diffusion and Effusion
CHXI06:STATES OF MATTER

314155 A rubber balloon permeable to all isotopic forms of hydrogen is filled with heavy hydrogen and placed in tank of pure hydrogen. After some time, the balloon will

1 Shrink in size
2 Expand
3 Remain as such
4 Shrink to half of the size
CHXI06:STATES OF MATTER

314156 The densities of \(\mathrm{\mathrm{CH}_{4}}\) and \(\mathrm{\mathrm{O}_{2}}\) are in the ratio \(\mathrm{1: 2}\). The ratio of rates of diffusion of oxygen and methane is

1 \(\mathrm{1.414: 1}\)
2 \(\mathrm{1: 1.414}\)
3 \(\mathrm{1.732: 1}\)
4 \(\mathrm{1: 1.732}\)
CHXI06:STATES OF MATTER

314157 According to Graham's law at a given temperature the ratio of diffusion \(\mathrm{r_{A} / r_{B}}\) of gases \(\mathrm{\mathrm{A}}\) and \(\mathrm{\mathrm{B}}\) is given by

1 \(\mathrm{\left(\dfrac{P_{A}}{P_{B}}\right)\left(\dfrac{M_{A}}{M_{B}}\right)^{\dfrac{1}{2}}}\)
2 \(\mathrm{\left(\dfrac{M_{A}}{M_{B}}\right)\left(\dfrac{P_{A}}{P_{B}}\right)^{\dfrac{1}{2}}}\)
3 \(\mathrm{\left(\dfrac{P_{A}}{P_{B}}\right)\left(\dfrac{M_{B}}{M_{A}}\right)^{\dfrac{1}{2}}}\)
4 \(\mathrm{\left(\dfrac{M_{A}}{M_{B}}\right)\left(\dfrac{P_{B}}{P_{A}}\right)^{\dfrac{1}{2}}}\)
CHXI06:STATES OF MATTER

314158 Assuming that at S.T.P. gas A has a density of 0.09 gram per litre and gas B has a density of 1.43 gram per litre, the ratio between the rates of diffusion of \(\mathrm{\mathrm{A}}\) and \(\mathrm{\mathrm{B}}\) is

1 \(\mathrm{1: 16}\)
2 \(\mathrm{16: 1}\)
3 \(\mathrm{2: 1}\)
4 \(\mathrm{4: 1}\)
CHXI06:STATES OF MATTER

314155 A rubber balloon permeable to all isotopic forms of hydrogen is filled with heavy hydrogen and placed in tank of pure hydrogen. After some time, the balloon will

1 Shrink in size
2 Expand
3 Remain as such
4 Shrink to half of the size
CHXI06:STATES OF MATTER

314156 The densities of \(\mathrm{\mathrm{CH}_{4}}\) and \(\mathrm{\mathrm{O}_{2}}\) are in the ratio \(\mathrm{1: 2}\). The ratio of rates of diffusion of oxygen and methane is

1 \(\mathrm{1.414: 1}\)
2 \(\mathrm{1: 1.414}\)
3 \(\mathrm{1.732: 1}\)
4 \(\mathrm{1: 1.732}\)
CHXI06:STATES OF MATTER

314157 According to Graham's law at a given temperature the ratio of diffusion \(\mathrm{r_{A} / r_{B}}\) of gases \(\mathrm{\mathrm{A}}\) and \(\mathrm{\mathrm{B}}\) is given by

1 \(\mathrm{\left(\dfrac{P_{A}}{P_{B}}\right)\left(\dfrac{M_{A}}{M_{B}}\right)^{\dfrac{1}{2}}}\)
2 \(\mathrm{\left(\dfrac{M_{A}}{M_{B}}\right)\left(\dfrac{P_{A}}{P_{B}}\right)^{\dfrac{1}{2}}}\)
3 \(\mathrm{\left(\dfrac{P_{A}}{P_{B}}\right)\left(\dfrac{M_{B}}{M_{A}}\right)^{\dfrac{1}{2}}}\)
4 \(\mathrm{\left(\dfrac{M_{A}}{M_{B}}\right)\left(\dfrac{P_{B}}{P_{A}}\right)^{\dfrac{1}{2}}}\)
CHXI06:STATES OF MATTER

314158 Assuming that at S.T.P. gas A has a density of 0.09 gram per litre and gas B has a density of 1.43 gram per litre, the ratio between the rates of diffusion of \(\mathrm{\mathrm{A}}\) and \(\mathrm{\mathrm{B}}\) is

1 \(\mathrm{1: 16}\)
2 \(\mathrm{16: 1}\)
3 \(\mathrm{2: 1}\)
4 \(\mathrm{4: 1}\)
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CHXI06:STATES OF MATTER

314155 A rubber balloon permeable to all isotopic forms of hydrogen is filled with heavy hydrogen and placed in tank of pure hydrogen. After some time, the balloon will

1 Shrink in size
2 Expand
3 Remain as such
4 Shrink to half of the size
CHXI06:STATES OF MATTER

314156 The densities of \(\mathrm{\mathrm{CH}_{4}}\) and \(\mathrm{\mathrm{O}_{2}}\) are in the ratio \(\mathrm{1: 2}\). The ratio of rates of diffusion of oxygen and methane is

1 \(\mathrm{1.414: 1}\)
2 \(\mathrm{1: 1.414}\)
3 \(\mathrm{1.732: 1}\)
4 \(\mathrm{1: 1.732}\)
CHXI06:STATES OF MATTER

314157 According to Graham's law at a given temperature the ratio of diffusion \(\mathrm{r_{A} / r_{B}}\) of gases \(\mathrm{\mathrm{A}}\) and \(\mathrm{\mathrm{B}}\) is given by

1 \(\mathrm{\left(\dfrac{P_{A}}{P_{B}}\right)\left(\dfrac{M_{A}}{M_{B}}\right)^{\dfrac{1}{2}}}\)
2 \(\mathrm{\left(\dfrac{M_{A}}{M_{B}}\right)\left(\dfrac{P_{A}}{P_{B}}\right)^{\dfrac{1}{2}}}\)
3 \(\mathrm{\left(\dfrac{P_{A}}{P_{B}}\right)\left(\dfrac{M_{B}}{M_{A}}\right)^{\dfrac{1}{2}}}\)
4 \(\mathrm{\left(\dfrac{M_{A}}{M_{B}}\right)\left(\dfrac{P_{B}}{P_{A}}\right)^{\dfrac{1}{2}}}\)
CHXI06:STATES OF MATTER

314158 Assuming that at S.T.P. gas A has a density of 0.09 gram per litre and gas B has a density of 1.43 gram per litre, the ratio between the rates of diffusion of \(\mathrm{\mathrm{A}}\) and \(\mathrm{\mathrm{B}}\) is

1 \(\mathrm{1: 16}\)
2 \(\mathrm{16: 1}\)
3 \(\mathrm{2: 1}\)
4 \(\mathrm{4: 1}\)
CHXI06:STATES OF MATTER

314155 A rubber balloon permeable to all isotopic forms of hydrogen is filled with heavy hydrogen and placed in tank of pure hydrogen. After some time, the balloon will

1 Shrink in size
2 Expand
3 Remain as such
4 Shrink to half of the size
CHXI06:STATES OF MATTER

314156 The densities of \(\mathrm{\mathrm{CH}_{4}}\) and \(\mathrm{\mathrm{O}_{2}}\) are in the ratio \(\mathrm{1: 2}\). The ratio of rates of diffusion of oxygen and methane is

1 \(\mathrm{1.414: 1}\)
2 \(\mathrm{1: 1.414}\)
3 \(\mathrm{1.732: 1}\)
4 \(\mathrm{1: 1.732}\)
CHXI06:STATES OF MATTER

314157 According to Graham's law at a given temperature the ratio of diffusion \(\mathrm{r_{A} / r_{B}}\) of gases \(\mathrm{\mathrm{A}}\) and \(\mathrm{\mathrm{B}}\) is given by

1 \(\mathrm{\left(\dfrac{P_{A}}{P_{B}}\right)\left(\dfrac{M_{A}}{M_{B}}\right)^{\dfrac{1}{2}}}\)
2 \(\mathrm{\left(\dfrac{M_{A}}{M_{B}}\right)\left(\dfrac{P_{A}}{P_{B}}\right)^{\dfrac{1}{2}}}\)
3 \(\mathrm{\left(\dfrac{P_{A}}{P_{B}}\right)\left(\dfrac{M_{B}}{M_{A}}\right)^{\dfrac{1}{2}}}\)
4 \(\mathrm{\left(\dfrac{M_{A}}{M_{B}}\right)\left(\dfrac{P_{B}}{P_{A}}\right)^{\dfrac{1}{2}}}\)
CHXI06:STATES OF MATTER

314158 Assuming that at S.T.P. gas A has a density of 0.09 gram per litre and gas B has a density of 1.43 gram per litre, the ratio between the rates of diffusion of \(\mathrm{\mathrm{A}}\) and \(\mathrm{\mathrm{B}}\) is

1 \(\mathrm{1: 16}\)
2 \(\mathrm{16: 1}\)
3 \(\mathrm{2: 1}\)
4 \(\mathrm{4: 1}\)