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3 answers

Using the Ideal Gas Law, PV=nRT . . .

R is the Gas Constant, and doesn't change. If you don't change the number of moles of gas (n), and volume is constant (V1 = V2), then you simplify the equation to:

P/T = nR/V = constant

therefore, any increase in temperature, at constant volume and number of moles, must result in a proportional increase in pressure, since the ratio of pressuredivided by temperature is a constant.

2006-11-14 13:15:46 · answer #1 · answered by Dave_Stark 7 · 0 0

it particularly is extra like the concentration gradient. Diffusion is brought about via Brownian action(you do no longer prefer to renowned what number cases I actual have typed that on Yahoo! solutions) it particularly is the place extreme concentration strikes into low concentration. Diffusion would not require cellular ability because's a passive transport(you will probable learn later). The kinetic molecular concept is probable what I in simple terms reported.

2016-10-22 02:45:16 · answer #2 · answered by Anonymous · 0 0

This would increase the amount of pressure exerted by the gas.

2006-11-14 13:12:49 · answer #3 · answered by nazzyonenine 3 · 1 0

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