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Chemistry 10 Online
OpenStudy (anonymous):

what is the mass of the H2 obtained?

OpenStudy (anonymous):

i attached the actual problem

OpenStudy (aaronq):

First find the partial pressure of the \(H_2\): subtract the vapour pressure of water from the total. Apply the ideal gas law: PV=nRT expand n=\(\dfrac{m}{M}\) -> PV=\(\dfrac{m}{M}\)RT solve for m.

OpenStudy (anonymous):

thanks!!

OpenStudy (aaronq):

no probs !

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