If the temperature is held constant during this process and the final pressure is 671 torr , what is the volume of the bulb that was originally filled with gas

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Complete Question

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Answer:

Explanation:

From the question we are told that

   The initial pressure of the gas is  [tex]P_1 = 1.50 \ atm[/tex]

   The volume of the second bulb is  [tex]V_2 = 0.800 \ L[/tex]

   The  final pressure of the gas is  [tex]P_2 = 671 \ torr = \frac{671 }{ 760} = 0.883 \ atm[/tex]

Let the unknown volume be represented as [tex]V_1 = V \ L[/tex]

Generally from Boyle's law we have that

      [tex]P_1 * V_1 = P_2 * V_2[/tex]

=>   [tex]1.50 * V = 0.883 * 0.800[/tex]

=>   [tex]V = 0.479 \ L[/tex]

         

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