At STP, P = 1 atm, and T = 0 C
Thus, PV = nRT => V = nR(273). We will use this later...
if you have 35.4 Ca, and the molar mass of Ca is 40.08, you get .883 moles Ca. Thus, since it takes 2 moles of Ca to form a reaction, you only need half the moles of Ca of O2. Thus, n(O2) = .883/2
Tie this back to the first equation and you get
V = .442 * <span>0.082057(which is R) * 273 = 9.9 L</span>
The answer is A. Hope this helps
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Tyres (or tires, as spelt in the USA).
Foam cushioning in the seats.
Paintwork.
Oil in the engine - to simply make the bus / car work!
All and every plastic part
Answer:
1.34L
Explanation:
1 torr = 0.00132atm
P2= 2584torr = 3.41atm
T2= 37°C = 273+37 = 310K
Using combined gas law
P1V1/T1 = P2V2/T2
(1.1×4.0)/298 = (3.41 × V2)/310
V2= (1.1×4×310)/(298×3.41)
V2= 1.34L