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A student following the procedure described in this modulecollected
the follwing data:

1. Mass Mg, m= 0.0243, initial syringe volume, ml=1.0, finalsyringe
volume,ml= 26.5, barometric pressure, torr= 754, temperature,k=298.
Calculate the gas law constant. R=pv/nt Find the R value

2. What would be the volume gas produced by the reaction of .243gof
magnesium metal and collected at 750 torr and 298k? Use the value Rin
the previous problem.

3. what would be the effect on the results of mistakenly adding2.43 x 10^-3g Mg to 4.0mL of 0.1M HCl, rather than to 4.0mL of 1.0MHCl as instructed?

4. If temperature and pressure remain constant, how does the volumeof gas sample vary with the number of moles of gas present?

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Collen Von
Collen VonLv2
28 Sep 2019

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