Sample Exercise 10.1 Converting Pressure Units
pressure of the gas in the flask (a) in atmospheres, (b) ... and (3) the number of moles of gas in the cylinder. Plan We will use the gas laws and the general properties of gases to analyze each situation. Solve (a) ... Tennis balls are usually filled with either air or N 2 gas to a pressure above atmospheric pressure to increase
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Sample Exercise 14.1 Calculating an Average Rate of Reaction
www.centrallyon.orgSample Exercise 14.1 Calculating an Average Rate of Reaction Solution Analyze We are given the concentration of A at 20 s (0.54 M ) and at 40 s (0.30 M ) and asked to calculate the
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Sample Exercise 12.1 Calculating Packing Efficiency
www.centrallyon.orgmost solids fall between the density of lithium (0.5 g/cm 3) and that of iridium (22.6 g/cm ), so this value is reasonable. Practice Exercise Estimate the length of the cubic unit cell edge and the density of CsCl (Figure 12.26) from the ionic radii of cesium, 1.81 Å, and chloride, 1.67 Å. Answer: a = 4.02 Å and ρ= 4.31 g/cm3
Sample Exercise 15.1 Writing Equilibrium-Constant Expressions
www.centrallyon.orgn by comparing the number of moles of product with the number of moles of reactants (Equation 15.15). Solve With 2 mol of gaseous products (2 NH 3) and 4 mol of gaseous reactants, (1 N 2 + 3 H 2), n = 2 –4 =2. (Remember that functions are always based on products minus reactants.) The temperature is 273 + 300 = 573 K.
Sample Exercise 13.1 Predicting Solubility Patterns
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Sample Exercise 14.1 Calculating an Average Rate of Reaction
www.centrallyon.orgThe rate law is therefore zero order in B (that is, n = 0). Rate = k[A]2[B]0 = k[A]2 Rate = k[A]2 = (4.0 10 3 M 1 s 1)(0.050 M)2 = 1.0 10 5 M/s Because [B] is not part of the rate law, it is irrelevant to the rate if there is at least some B present to react with A. Sample Exercise 14.6 Determining a Rate Law from Initial Rate Data
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