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Chemistry 8 Online
OpenStudy (x3_drummerchick):

will give medals! can someone help me calculate the theoretical and experimental moles of H2? 1:1 molar ratio of Mg to H2 Mass Mg=0.010 Temp(K): 298.9 Volume(mL):137 Initial pressure (atm): 0.9894 Final pressure(atm): 1.1021

OpenStudy (x3_drummerchick):

@jfraser @coolor

OpenStudy (x3_drummerchick):

@.sam. @Awolflover1

OpenStudy (x3_drummerchick):

@welshfella @Elsa213

OpenStudy (welshfella):

sorry can't help with this one

OpenStudy (x3_drummerchick):

for theoretical, dont I just divide the grams of Mg by the molar mass of Mg?

OpenStudy (x3_drummerchick):

@EclipsedStar

OpenStudy (x3_drummerchick):

@sshayer

OpenStudy (x3_drummerchick):

@just_one_last_goodbye

OpenStudy (x3_drummerchick):

@inkyvoyd

OpenStudy (x3_drummerchick):

@Summersnow8

OpenStudy (x3_drummerchick):

@Zarkon

OpenStudy (x3_drummerchick):

@mathstudent55 @mathmate

OpenStudy (x3_drummerchick):

so i've got theoretical, how would i go about the experimental moles?

OpenStudy (mathmate):

Try @sweetburger

OpenStudy (jfraser):

is the volume the volume of \(H_2\) gas that was \(made\)?

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