Concept explainers
Discrepancies in the experimental values of the molarmass of nitrogen provided some of the first evidence forthe existence of the noble gases. If pure nitrogen is collectedfrom the decomposition of ammonium nitrite,
its measured molar mass is 28.01. If
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Chemical Principles
- When calcium carbonate is heated strongly, it evolves carbon dioxide gas. CaCO3(s)CaO(s)+CO2(g) 25 g of CaCO3 is heated, what mass of CO2would be produced? What volume would this quantity of CO2 (CU at STP?arrow_forwardA power plant is driven by the combustion of a complex fossil fuel having the formula C11H7S. Assume the air supply is composed of only N2 and O2 with a molar ratio of 3.76:1.00, and the N2 remains unreacted. In addition to the water produced, the fuels C is completely combusted to CO2 and its sulfur content is converted to SO2. In order to evaluate gases emitted at the exhaust stacks for environmental regulation purposes, the nitrogen supplied with the air must also be included in the balanced reactions. a Including the N2 supplied m the air, write a balanced combustion equation for the complex fuel assuming 100% stoichiometric combustion (i.e., when there is no excess oxygen in the products and the only C-containing product is CO2). Except in the case of N2, use only integer coefficients. b Including N2 supplied in the air, write a balanced combustion equation for the complex fuel assuming 120% stoichiometric combustion (i.e., when excess oxygen is present in the products and the only C-containing product is CO2). Except in the case of use only integer coefficients c Calculate the minimum mass (in kg) of air required to completely combust 1700 kg of C11H7S. d Calculate the air/fuel mass ratio, assuming 100% stoichiometric combustion. e Calculate the air/fuel mass ratio, assuming 120% stoichiometric combustion.arrow_forwardThe equation for the oxidation of phosphorus in air is P4(s) + 5 O2(g) P4O10(s). Identify the reactants and products and the stoichiometric coefficients. To what do the designations s and g refer?arrow_forward
- A Boron and hydrogen form an extensive family of compounds, and the diagram below shows how they are related by reaction. The following table gives the weight percent of boron in each of the compounds. Derive the empirical and molecular formulas of compounds A-E.arrow_forwardSulfur hexafluoride, SF6, is an extremely dense gas. How does its density compare with the density of air? Use a molar mass for air of 29.0 g/mol.arrow_forwardWhen atomic phosphorous (P) and oxygen are directly combined and react, P4O10 is produced. Write the balanced chemical equation for this reaction. What is the coefficient of oxygen?arrow_forward
- Silicon tetrachloride (SiC14 ) can be prepared by heating Si in chlorine gas: Si(s) + 2C12(g) -> SiClą(1) In one reaction, 0.507 mole of SICI4 is produced. What mass (grams) of molecular chlorine were used in the reaction? Choose the nearest answer. MW SICI4 = 169.9 %3D g/mol; MW CI = 35.453 g/molarrow_forwardWhat volume of O2 (at 273 K, 1.00 atm) forms when 100 g of KClO3 decomposes according to the following reaction. The molar mass of KClO3 is 122.6 g/mol 2 KClO3(s) → 2 KCl(s) + 3 O2(g)arrow_forwardebixoiC 4 During the production of ammonia, hydrogen is produced from the steam reforming of methane. In the reformer methane gas is reacted with excess water and the resulting mixture is found to contain 12 kg of hydrogen and 15 kg water. Assuming all the methane is reacted calculate the amount of water used.arrow_forward
- Consider the Haber-Bosch process for the synthesis of ammonia from its elements. Calculate the theoretical yield in moles NHs from the complete reaction of 15.6 grams H2 in the presence of excess N2 gas according to the following balanced chemical equation: N:(g) + 3 Hz(g) → 2arrow_forwardConsider the mixture of Cl2 and F2 in a closed container as illustrated below. What will the contents of the container look like if the molecules undergo the reaction:Cl2(g) + 3 F2(g) → 2 ClF3(g)?arrow_forwardAt sea level, there are approximately 2.6 × 1025 molecules m–3 of the atmosphere. There are 1.17 × 1022 molecules m–3 of one of the gases making up the atmosphere. What is the concentration of this gas as a proportion of the total number of molecules in the atmosphere, expressed in parts per million (ppm)?arrow_forward
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