Mechanical Engineering Exam  >  Mechanical Engineering Questions  >  A high pressure cylinder consists of a steel ... Start Learning for Free
 A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.
  • a)
    +3.04[1-(15/r) ²]
  • b)
    -3.04[1-(15/r) ²]
  • c)
    -3.04[1-(10/r) ²]
  • d)
    +3.04[1-(10/r) ²]
Correct answer is option 'B'. Can you explain this answer?
Verified Answer
A high pressure cylinder consists of a steel tube with inner and outer...
Explanation: σ(r)= σ(r)=-PD₂²[1-D₁²/4r² ]/ [D₂²-D₁²].
View all questions of this test
Explore Courses for Mechanical Engineering exam

Top Courses for Mechanical Engineering

A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer?
Question Description
A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer? for Mechanical Engineering 2024 is part of Mechanical Engineering preparation. The Question and answers have been prepared according to the Mechanical Engineering exam syllabus. Information about A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer? covers all topics & solutions for Mechanical Engineering 2024 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer?.
Solutions for A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer? in English & in Hindi are available as part of our courses for Mechanical Engineering. Download more important topics, notes, lectures and mock test series for Mechanical Engineering Exam by signing up for free.
Here you can find the meaning of A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer? defined & explained in the simplest way possible. Besides giving the explanation of A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer?, a detailed solution for A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer? has been provided alongside types of A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer? theory, EduRev gives you an ample number of questions to practice A high pressure cylinder consists of a steel tube with inner and outer diameters 30 and 60mm respectively. It is jacketed by an outer steel tube, having an outer diameter of 90mm. Maximum principal stress induced is 80N/mm². Calculate the radial stress due to shrink shift in inner tube.a)+3.04[1-(15/r) ²]b)-3.04[1-(15/r) ²]c)-3.04[1-(10/r) ²]d)+3.04[1-(10/r) ²]Correct answer is option 'B'. Can you explain this answer? tests, examples and also practice Mechanical Engineering tests.
Explore Courses for Mechanical Engineering exam

Top Courses for Mechanical Engineering

Explore Courses
Signup for Free!
Signup to see your scores go up within 7 days! Learn & Practice with 1000+ FREE Notes, Videos & Tests.
10M+ students study on EduRev