QUESTION IMAGE
Question
- what is the total pressure of a gas mixture containing partial pressures of 0.23 atm, 0.42 atm, and 0.89 atm?
a. 0.18 atm
b. 0.51 atm
c. 1.54 atm
d. 0.42 atm
Step1: Recall Dalton's Law of Partial Pressures
Dalton's Law states that the total pressure \(P_{total}\) of a gas mixture is the sum of the partial pressures \(P_i\) of each component gas. Mathematically, \(P_{total}=\sum_{i = 1}^{n}P_i\).
Step2: Substitute the given partial pressures
Here, \(P_1 = 0.23\ \text{atm}\), \(P_2=0.42\ \text{atm}\), and \(P_3 = 0.89\ \text{atm}\). Then \(P_{total}=0.23 + 0.42+0.89\).
Step3: Perform the addition
First, \(0.23+0.42 = 0.65\), then \(0.65 + 0.89=1.54\).
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C. \(1.54\ \text{atm}\)