Nitric acid is often manufactured from the atmospheric gases nitrogen and oxygen, and hydrogen prepared by reforming natural gas, in a two-step process. In the first step, nitrogen and hydrogen react to form ammonia: N₂(g) + 3H₂(g) → 2NH3(g) In the second step, ammonia and oxygen react to form nitric acid (HNO3) and water: NH3(g) + 20₂(g) HNO3(g) + H₂O(g) Suppose the yield of the first step is 95.% and the yield of the second step is 83.%. Calculate the mass of hydrogen required to make 4.0 kg of nitric acid. Be sure your answer has a unit symbol, if needed, and is rounded to 2 significant digits. 0 0 nln X ロ・ロ 3

Chemistry: Principles and Reactions
8th Edition
ISBN:9781305079373
Author:William L. Masterton, Cecile N. Hurley
Publisher:William L. Masterton, Cecile N. Hurley
Chapter8: Thermochemistry
Section: Chapter Questions
Problem 26QAP: Nitroglycerin, C3H5(NO3)3(l), is an explosive most often used in mine or quarry blasting. It is a...
icon
Related questions
icon
Concept explainers
Question
Nitric acid is often manufactured from the atmospheric gases nitrogen and oxygen, and hydrogen prepared by reforming natural gas, in a two-step process. In
the first step, nitrogen and hydrogen react to form ammonia:
N₂(g) + 3H₂(g) 2NH₂ (g)
In the second step, ammonia and oxygen react to form nitric acid (HNO3) and water:
NH3(g) + 20₂(g)
20₂(g) → HNO3(g) + H₂O(g)
Suppose the yield of the first step is 95.% and the yield of the second step is 83.%. Calculate the mass of hydrogen required to make 4.0 kg of nitric acid.
Be sure your answer has a unit symbol, if needed, and is rounded to 2 significant digits.
x10
0|0
×
Transcribed Image Text:Nitric acid is often manufactured from the atmospheric gases nitrogen and oxygen, and hydrogen prepared by reforming natural gas, in a two-step process. In the first step, nitrogen and hydrogen react to form ammonia: N₂(g) + 3H₂(g) 2NH₂ (g) In the second step, ammonia and oxygen react to form nitric acid (HNO3) and water: NH3(g) + 20₂(g) 20₂(g) → HNO3(g) + H₂O(g) Suppose the yield of the first step is 95.% and the yield of the second step is 83.%. Calculate the mass of hydrogen required to make 4.0 kg of nitric acid. Be sure your answer has a unit symbol, if needed, and is rounded to 2 significant digits. x10 0|0 ×
Expert Solution
steps

Step by step

Solved in 3 steps with 3 images

Blurred answer
Knowledge Booster
Thermochemistry
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, chemistry and related others by exploring similar questions and additional content below.
Similar questions
  • SEE MORE QUESTIONS
Recommended textbooks for you
Chemistry: Principles and Reactions
Chemistry: Principles and Reactions
Chemistry
ISBN:
9781305079373
Author:
William L. Masterton, Cecile N. Hurley
Publisher:
Cengage Learning
Chemistry for Engineering Students
Chemistry for Engineering Students
Chemistry
ISBN:
9781337398909
Author:
Lawrence S. Brown, Tom Holme
Publisher:
Cengage Learning
Chemistry: Principles and Practice
Chemistry: Principles and Practice
Chemistry
ISBN:
9780534420123
Author:
Daniel L. Reger, Scott R. Goode, David W. Ball, Edward Mercer
Publisher:
Cengage Learning
Chemistry & Chemical Reactivity
Chemistry & Chemical Reactivity
Chemistry
ISBN:
9781337399074
Author:
John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:
Cengage Learning
Chemistry & Chemical Reactivity
Chemistry & Chemical Reactivity
Chemistry
ISBN:
9781133949640
Author:
John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:
Cengage Learning
Introduction to General, Organic and Biochemistry
Introduction to General, Organic and Biochemistry
Chemistry
ISBN:
9781285869759
Author:
Frederick A. Bettelheim, William H. Brown, Mary K. Campbell, Shawn O. Farrell, Omar Torres
Publisher:
Cengage Learning