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The maximum reduction (upto 2 decimal points) in cross-sectional area per pass (R) of a cold wire drawing process is R = 1 - e -(n+1) 
where n represents the strain hardening coefficient. For the case of a perfectly plastic material, R is
    Correct answer is between '0.63,0.64'. Can you explain this answer?
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    The maximum reduction (upto2 decimal points) in cross-sectional area p...
    Perfectly plastic material implies that strain hardening coefficient n is zero.
    Hence
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    The maximum reduction (upto2 decimal points) in cross-sectional area per pass (R) of a cold wire drawing process is R = 1 - e -(n+1)where n represents the strain hardening coefficient. For the case of a perfectly plastic material, RisCorrect answer is between '0.63,0.64'. Can you explain this answer?
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    The maximum reduction (upto2 decimal points) in cross-sectional area per pass (R) of a cold wire drawing process is R = 1 - e -(n+1)where n represents the strain hardening coefficient. For the case of a perfectly plastic material, RisCorrect answer is between '0.63,0.64'. Can you explain this answer? for GATE 2025 is part of GATE preparation. The Question and answers have been prepared according to the GATE exam syllabus. Information about The maximum reduction (upto2 decimal points) in cross-sectional area per pass (R) of a cold wire drawing process is R = 1 - e -(n+1)where n represents the strain hardening coefficient. For the case of a perfectly plastic material, RisCorrect answer is between '0.63,0.64'. Can you explain this answer? covers all topics & solutions for GATE 2025 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for The maximum reduction (upto2 decimal points) in cross-sectional area per pass (R) of a cold wire drawing process is R = 1 - e -(n+1)where n represents the strain hardening coefficient. For the case of a perfectly plastic material, RisCorrect answer is between '0.63,0.64'. Can you explain this answer?.
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