The CO2 that builds up in the air of a submerged submarine can be removed by reacting it with sodium peroxide, according to the balanced equation given below. 1. If a sailor exhales 140.0 mL of CO2 per minute at 20.5\deg C and 0.830 atm, what mass of sodium peroxide is needed per sailor in a 24-hour period? Assume that R = 0.0821 L.atm/mol. K and that 09 C = 273.15 K.

Introductory Chemistry: A Foundation
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ISBN:9781285199030
Author:Steven S. Zumdahl, Donald J. DeCoste
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Chapter13: Gases
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The CO2 that builds up in the air of a submerged submarine can be removed by reacting it
with sodium peroxide, according to the balanced equation given below. 1. If a sailor exhales
140.0 mL of CO2 per minute at 20.5\deg C and 0.830 atm, what mass of sodium peroxide is
needed per sailor in a 24-hour period? Assume that R = 0.0821 L.atm/mol. K and that 09
C = 273.15 K.
Transcribed Image Text:The CO2 that builds up in the air of a submerged submarine can be removed by reacting it with sodium peroxide, according to the balanced equation given below. 1. If a sailor exhales 140.0 mL of CO2 per minute at 20.5\deg C and 0.830 atm, what mass of sodium peroxide is needed per sailor in a 24-hour period? Assume that R = 0.0821 L.atm/mol. K and that 09 C = 273.15 K.
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