ffsjoe Posted March 2, 2007 Posted March 2, 2007 I wish to find how how many grams of CO2 are needed to enrich a room to 1500ppm. I've tried to work it out but cannot figure it out completely. The dimensions of the room are 2.9m*1.9m*0.9m which equals 4.959m cubed rounded off to 5 cubic meters. Then to find how many cubic meters of CO2 are needed this is multiplied by 0.0015 5*0.0015 = 0.0075 cubic meters of CO2 needed. At a temperature of 25C and pressure of 100kPa 1 mole of a gas will occupy 24.79L. 1 mole of CO2 has a mass of 44 grams. .0075 (cubic meters) = 7.5 liters 24.79L/7.5L = 3.3053 grams of CO2 needed? This cannot be correct and I must have gone wrong somewhere could someone help put me on the right track?
jackson33 Posted March 2, 2007 Posted March 2, 2007 think BTU's are used in determining heating space and what device to heat determines CO2, if any.
GutZ Posted March 3, 2007 Posted March 3, 2007 Could you take as a ratio of air to CO2? than have 1500(Co2) x (air)/1 mil check that answer out so that you get that = 1500ppm for X grams of CO2.
MilesD Posted March 28, 2007 Posted March 28, 2007 the number of moles of CO2 in the room at 25 deg. C and approximately 1 bar - now multiply by the number of grams in a mole of CO2 By the way if you can't calculate something this simple I HOPE you aren't out there commenting on the effects of CO2 in the atmosphere ...
chemhero Posted March 28, 2007 Posted March 28, 2007 MilesD - lay off it mate! Sometimes when theres lots of steps its a little confusing to do a calculation the first time. I remember I had all sorts of problems with moles calculations when I was studying A-level chemistry! Perhaps it would be good to establish how many moles of gas there are in the room at first? I think this is what GutZ said too Matt
John Cuthber Posted March 28, 2007 Posted March 28, 2007 Don't forget that you don't start from zero ppm CO2.
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