1. Chapter 6 Class 12 Application of Derivatives
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  3. Ex 6.3
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Ex 6.3,15 - Chapter 6 Class 12 Application of Derivatives

Last updated at Dec. 16, 2024 by Teachoo

     

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Ex 6.3, 15 (Method 1) Find two positive numbers š‘„ and š‘¦ such that their sum is 35 and the product š‘„2 š‘¦5 is a maximum. Given two number are š‘„ & š‘¦ Such that š‘„ + š‘¦ = 35 š‘¦ = 35 ā€“ š‘„ Let P = š‘„2 š‘¦5 We need to maximize P Finding Pā€™(š’™) P(š‘„)=š‘„^2 š‘¦^5 P(š‘„)=š‘„^2 (35āˆ’š‘„)^5 Pā€™(š‘„)=š‘‘(š‘„^2 (35 āˆ’ š‘„)^5 )/š‘‘š‘„ Pā€™(š‘„)=š‘‘(š‘„^2 )/š‘‘š‘„ . (35āˆ’š‘„)^5+(š‘‘(35 āˆ’ š‘„)^5)/š‘‘š‘„ . š‘„^2 =2š‘„ .(35āˆ’š‘„)^5+怖5(35āˆ’š‘„)怗^4 .š‘‘(35 āˆ’ š‘„)/š‘‘š‘„ . š‘„^2 =2š‘„ .(35āˆ’š‘„)^5+怖5(35āˆ’š‘„)怗^4 . (0āˆ’1)(š‘„^2 ) =2š‘„ .(35āˆ’š‘„)^5+怖5(35āˆ’š‘„)怗^4 (āˆ’š‘„^2 ) =2š‘„ (35āˆ’š‘„)^5āˆ’怖5š‘„^2 (35āˆ’š‘„)怗^4 = 怖 š‘„ (35āˆ’š‘„)怗^4 [2(35āˆ’š‘„)āˆ’5š‘„] = 怖 š‘„ (35āˆ’š‘„)怗^4 (70āˆ’7š‘„) Putting Pā€™(š’™)=šŸŽ 怖 š‘„ (35āˆ’š‘„)怗^4 (70āˆ’7š‘„)=0 Hence š‘„ = 0 , 10 , 35 are Critical Points But, If we Take š‘„ = 0 Product will be 0 So, x = 0 is not possible If x = 35 š‘¦ = 35 ā€“ 35 = 35 ā€“ 35 = 0 So, product will be 0 So, x = 35 is not possible Hence only critical point is š‘„=10 Finding Pā€™ā€™(š’™) Pā€™(š‘„)=š‘„(35āˆ’š‘„)^4 (70āˆ’7š‘„) Pā€™(š‘„)=(35āˆ’š‘„)^4 (70š‘„āˆ’7š‘„^2 ) Pā€™ā€™(š‘„)=(š‘‘(35 āˆ’ š‘„)^4)/š‘‘š‘„. (70š‘„āˆ’7š‘„^2 )+š‘‘(70š‘„ āˆ’ 7š‘„^2 )/š‘‘š‘„ (35āˆ’š‘„)^4 =4(35āˆ’š‘„)^3.š‘‘(35 āˆ’ š‘„)/š‘‘š‘„. (70š‘„āˆ’7š‘„^2 )+(70āˆ’14š‘„) (35āˆ’š‘„)^4 =4(35āˆ’š‘„)^3 (0āˆ’1)(70š‘„āˆ’7š‘„^2 )+(70āˆ’14š‘„) (35āˆ’š‘„)^4 =āˆ’4(35āˆ’š‘„)^3 (70š‘„āˆ’7š‘„^2 )+(70āˆ’14š‘„) (35āˆ’š‘„)^4 Putting š‘„ = 10 in Pā€™ā€™(x) Pā€™ā€™(š‘„) = āˆ’4(35āˆ’š‘„)^3 (70š‘„āˆ’7š‘„^2 )+(70āˆ’14š‘„) (35āˆ’š‘„)^4 =āˆ’4(35āˆ’10)^3 (70(10)āˆ’7(10)^2 )+(70āˆ’14(10)) (35āˆ’10)^4 =āˆ’4(25)^3 (700āˆ’700)+(70āˆ’140) (25)^4 =āˆ’4(25)^3 (0)+(āˆ’70) (25)^4 =0āˆ’70(25)^4 =āˆ’70(25)^4 < 0 Thus, Pā€™ā€™(š‘„)<0 when š‘„ = 10 āˆ“ P is maximum when š‘„ = 10 Thus, when š‘„ = 10 š‘¦ = 35 ā€“ š‘„= 35 āˆ’10=25 Hence š’™ = 10 & š’š = 25 Ex 6.3, 15 (Method 2) Find two positive numbers š‘„ and š‘¦ such that their sum is 35 and the product š‘„2 š‘¦5 is a maximum. Given two number are š‘„ & š‘¦ Such that š‘„ + š‘¦ = 35 š‘¦ = 35 ā€“ š‘„ Let P = š‘„2 š‘¦5 We need to maximise P Finding Pā€™(š’™) P(š‘„)=š‘„^2 š‘¦^5 P(š‘„)=š‘„^2 (35āˆ’š‘„)^5 Pā€™(š‘„)=š‘‘(š‘„^2 (35 āˆ’ š‘„)^5 )/š‘‘š‘„ Pā€™(š‘„)=š‘‘(š‘„^2 )/š‘‘š‘„ . (35āˆ’š‘„)^5+(š‘‘(35 āˆ’ š‘„)^5)/š‘‘š‘„ . š‘„^2 =2š‘„ .(35āˆ’š‘„)^5+怖5(35āˆ’š‘„)怗^4 .š‘‘(35 āˆ’ š‘„)/š‘‘š‘„ . š‘„^2 =2š‘„ .(35āˆ’š‘„)^5+怖5(35āˆ’š‘„)怗^4 . (0āˆ’1)(š‘„^2 ) =2š‘„ .(35āˆ’š‘„)^5+怖5(35āˆ’š‘„)怗^4 (āˆ’š‘„^2 ) =2š‘„ (35āˆ’š‘„)^5āˆ’怖5š‘„^2 (35āˆ’š‘„)怗^4 = 怖 š‘„ (35āˆ’š‘„)怗^4 [2(35āˆ’š‘„)āˆ’5š‘„] = 怖 š‘„ (35āˆ’š‘„)怗^4 (70āˆ’7š‘„) Putting Pā€™(š’™)=šŸŽ 怖š‘„ (35āˆ’š‘„)怗^4 (70āˆ’7š‘„)=0 怖š‘„ (35āˆ’š‘„)怗^4 (70āˆ’7š‘„)=0 Hence š‘„ = 0 , 10 , 35 are Critical Points But, If We Take š‘„ = 0 Product will be 0 So, x = 0 is not possible If x = 35 š‘¦ = 35 ā€“ 35 = 35 ā€“ 35 = 0 So, product will be 0 So, x = 35 is not possible Hence only critical point is š‘„=10 āˆ“ š‘„ = 10 is point of maxima P(š‘„) is maximum at š‘„ = 10 Thus, when š‘„ = 10 š‘¦ = 35 ā€“ š‘„= 35 āˆ’10=25 Hence š’™ = 10 & š’š = 25
  1. Chapter 6 Class 12 Application of Derivatives
  2. Serial order wise

    3. Ex 6.3

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Chapter 6 Class 12 Application of Derivatives
Serial order wise

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Davneet Singh

Davneet Singh has done his B.Tech from Indian Institute of Technology, Kanpur. He has been teaching from the past 14 years. He provides courses for Maths, Science and Computer Science at Teachoo