Ex 6.4,1 - Class 12
Last updated at Dec. 8, 2016 by Teachoo
Transcript
Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (i) 25.3 Let y = 𝑥 Let x = 25 & △ x = 0.3 Since y = 𝑥 𝑑𝑦𝑑𝑥 = 𝑑( 𝑥)𝑑𝑥 = 12 𝑥 Now, ∆𝑦 = 𝑑𝑦𝑑𝑥 △x = 12 𝑥 (0.3) = 12 25 (0.3) = 12 × 5 × 0.3 = 0.310 = 0.03 Also, ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 Putting values ∆𝑦= 𝑥+∆𝑥− 𝑥 0. 03= 25+0. 3− 25 0. 03= 25. 3−5 0. 03+5= 25. 3 25. 3=5. 03 Hence, approximate value of 25.3 is 5.03 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (ii) 49.5 Let y = 𝑥 Let x = 49 & △ x = 0.5 Since y = 𝑥 𝑑𝑦𝑑𝑥 = 𝑑( 𝑥)𝑑𝑥 = 12 𝑥 Now, ∆𝑦 = 𝑑𝑦𝑑𝑥 △x = 12 𝑥 (0.5) = 12 49 (0.5) = 12 × 7 × 0.5 = 0.514 = 0.036 Also, ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 Putting values ∆𝑦= 𝑥+∆𝑥− 𝑥 0. 036= 49+0. 5− 49 0. 036= 49.5−7 0. 036+7= 49.5 49.5=7. 036 Hence, approximate value of 49.5 is 7.036 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (iii) 0.6 Let y = 𝑥 Let x = 0.64 & △x = –0.04 Since y = 𝑥 𝑑𝑦𝑑𝑥 = 𝑑( 𝑥)𝑑𝑥 = 12 𝑥 Now, ∆𝑦 = 𝑑𝑦𝑑𝑥 △x = 12 0.64 (–0.04) = 12 0.64 (–0.04) = 12 × 0.8 × (–0.04) = −0.041.6 = –0.025 Also, ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 Putting values ∆𝑦= 𝑥+∆𝑥− 𝑥 −0. 025= 0.64−0.04− 0.64 −0.025= 0.60−0.8 0.8 – 0. 025= 0.60 0.60=0.775 Hence, approximate value of 0.60 is 0.775 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (iv) (0.009) 13 Let 𝑦= 𝑥 13 where 𝑥=0. 008 & ∆𝑥=0. 001 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 13𝑑𝑥= 13 𝑥 −23= 13 𝑥 23 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 13 𝑥 23 ×∆𝑥 Putting Values ∆𝑦= 13 0. 008 23 ×0. 001 ∆𝑦= 0. 0013 81000 23 ∆𝑦= 0. 0013 210 3 × 23 ∆𝑦= 0. 0013 2102 ∆𝑦= 0. 0013 0. 22 ∆𝑦= 0. 0010. 12 ∆𝑦=0. 008 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 ∆𝑦= 𝑥+∆𝑥 13− 𝑥 13 Putting Values 0. 008= 0. 008 +0. 001 13− 0. 008 13 0. 008= 0. 009 13− 0. 008 13 0. 008= 0. 009 13− 81000 13 0. 008= 0. 009 13− 210 3 × 13 0. 008= 0. 009 13− 210 0. 008= 0. 009 13−0. 2 0. 008+0. 2= 0. 009 13 0. 009 13=0. 208 Thus , Approximate Value of 0 . 009 13 is 𝟎. 𝟐𝟎𝟖 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (v) (0.999) 110 Let 𝑦= 𝑥 110 where 𝑥=1 , ∆𝑥=−0. 001 Now, 𝑦= 𝑥 110 Differentiating w.r.t. 𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 110𝑑𝑥= 110 𝑥 −910= 110 𝑥 910= 14 𝑥 34 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 Putting Values ∆𝑦= 110 𝑥 910 ∆𝑥 ∆𝑦= 110 1 910 × −0. 001 ∆𝑦= 110 × −0. 001 ∆𝑦=−0. 0001 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 ∆𝑦= 𝑥+∆𝑥 110− 𝑥 110 Putting Values ∆𝑦= 1+ −0. 001 110− 1 110 −0. 0001= 0. 999 110−1 −0. 0001+1= 0. 999 110 0. 9999= 0. 999 110 Thus, the Approximate Value of 0. 999 110 is 𝟎. 𝟗𝟗𝟗𝟗 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (vi) (15) 14 Let 𝑦= 𝑥 14 where 𝑥=16 , ∆𝑥=−1 Now, 𝑦= 𝑥 14 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 14𝑑𝑥= 14 𝑥 1 − 44 = 14 𝑥 −3 4 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 14 𝑥 34 ∆𝑥 Putting Values ∆𝑦= 14 16 34 . −1 ∆𝑦= 14 24 34 −1 ∆𝑦= −14 × 23 ∆𝑦= −14 × 8 ∆𝑦= −132 ∆𝑦=−0. 03125 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 ∆𝑦= 𝑥+∆𝑥 14− 𝑥 14 Putting Values −0. 03125= 16+ −1 14− 16 14 −0. 03125= 16−1 14− 2 4 × 14 −0. 03125= 15 14−2 −0. 03125+2= 15 14 −0. 03125+2= 15 14 1. 969= 15 14 Thus, Approximate Value of 15 14 is 𝟏. 𝟗𝟔𝟗 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (vii) (26) 13 Let 𝑦= 𝑥 13 where 𝑥=27 & ∆𝑥=−1 Now, 𝑦= 𝑥 13 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 13𝑑𝑥= 13 𝑥 13 − 1 = 13 𝑥 − 2 3 = 13 𝑥 2 3 Using ∆𝑦= 𝑑𝑦𝑑𝑥∆𝑥 ∆𝑦= 13 𝑥 2 3 ∆𝑥 Putting Values ∆𝑦= 13 27 23 × −1 ∆𝑦= 13 33 23 × −1 ∆𝑦= −13 × 32 ∆𝑦= −13 × 9 ∆𝑦= −127 ∆𝑦=−0. 037037 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 ∆𝑦= 𝑥+∆𝑥 13− 𝑥 13 Putting Values −0. 037037= 27+ −1 13− 27 13 −0. 037037= 26 13− 3 3 × 13 −0. 037037= 26 13−3 −0. 037037+3= 26 13 2. 9629= 26 13 Thus, Approximate Value of 26 13 is 𝟐. 𝟗𝟔𝟐𝟗 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (viii) (255) 14 Let 𝑦= 𝑥 14 where 𝑥=256 & ∆𝑥=−1 Now, 𝑦= 𝑥 14 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 14𝑑𝑥= 14 𝑥 14 − 1 = 14 𝑥 −3 4= 14 𝑥 3 4 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 14 𝑥 3 4 ×∆𝑥 Putting Values ∆𝑦= 14 256 34 × −1 ∆𝑦= − 14 44 34 ∆𝑦= − 14 × 43 ∆𝑦= − 14 × 64 ∆𝑦= − 1256 ∆𝑦=−0. 0039 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 ∆𝑦= 𝑥+∆𝑥 14− 𝑥 14 Putting Values −0. 0039= 256+ −1 14− 256 14 −0. 0039= 255 14− 44 14 −0. 0039= 255 14−4 −0. 0039= 255 14−4 −0. 0039+4= 255 14 3. 9961= 255 14 Thus, the Approximate Values of 255 14 is 𝟑. 𝟗𝟗𝟔𝟏 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (ix) (82) 14 Let 𝑦= 𝑥 14 where 𝑥=81 ∆𝑥=1 Now, 𝑦= 𝑥 14 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 14𝑑𝑥= 14 𝑥 14 − 1= 14 𝑥 −3 4= 14 𝑥 34 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 14 𝑥 34 ∆𝑦 Putting Values ∆𝑦= 14 81 34 × 1 ∆𝑦= 14 × 34 × 34 × 1 ∆𝑦= 14 × 33 ∆𝑦= 14 ×27 ∆𝑦= 1108 ∆𝑦=0. 009 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 So, ∆𝑦= 𝑥+∆𝑥 14 − 𝑥 14 Putting Values 0. 009= 81+1 14− 81 14 0. 009= 82 14− 34 × 14 0. 009= 82 14−3 0. 009+3= 82 14 3. 009= 82 14 Thus, the Approximate Value of 82 14 is 𝟑. 𝟎𝟎𝟗 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (x) (401) 12 Let 𝑦= 𝑥 12 where 𝑥=400 & ∆𝑥=1 Now, 𝑑𝑦𝑑𝑥= 12 𝑥 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 𝑑𝑦2 𝑥 ∆𝑥 Putting Values ∆𝑦= 12 400 × 1 ∆𝑦= 12 400 × 1 ∆𝑦= 12 202 ∆𝑦= 12 × 20 ∆𝑦= 140 ∆𝑦=0. 025 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 So, ∆𝑦= 𝑥+∆𝑥 12− 𝑥 12 Putting Values 0. 025= 400+1 12 − 400 12 0. 025= 401 12− 20 2 × 12 0. 025= 401 12−20 0. 025+20= 401 12 20. 025= 401 12 401 12=20. 025 Thus, the Approximate Value of 401 12 is 𝟐𝟎. 𝟎𝟐𝟓 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (xi) (0.0037) 12 Let y = 𝑥 Let x = 0.0036 & △ x = 0.0001 Since y = 𝑥 𝑑𝑦𝑑𝑥 = 𝑑( 𝑥)𝑑𝑥 = 12 𝑥 Now, ∆𝑦 = 𝑑𝑦𝑑𝑥 △x = 12 𝑥 (0.0001) = 12 0.0036 (0.0001) = 12 × 0.06 × (0.0001) = 0.00010.12 = 11200 = 0.000833 Also, ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 So, ∆𝑦= 𝑥+∆𝑥 12− 𝑥 12 Putting Values 0. 000833= 0. 0036+0. 0001 12− 0. 0036 12 0. 000833= 0. 0037 12− 3610000 12 0. 000833= 0. 0037 12− 6100 2 × 12 0. 000833= 0. 0037 12− 0. 062 × 12 0. 000833= 0. 0037 12− 0. 06 0. 000833+0. 06= 0. 0037 12 0. 060833= 0. 0037 12 0. 0037 12=0. 060833 Thus, the Approximate Value of 0. 0037 12=𝟎. 𝟎𝟔𝟎𝟖𝟑𝟑 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (xii) (26.57) 13 Let 𝑦= 𝑥 13 where 𝑥=27 & ∆ 𝑥=−0. 43 Now, 𝑦= 𝑥 13 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 13𝑑𝑥= 13 𝑥 13 − 1= 13 𝑥 − 2 3= 13 𝑥 2 3 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 13 𝑥 2 3 × ∆𝑥 Putting Values ∆𝑦= 13 27 2 3 × −0. 43 ∆𝑦= −0. 433 × 33 × 2 3 ∆𝑦= −0. 433 × 32 ∆𝑦= −0. 433 × 9 ∆𝑦= −0. 4327 ∆𝑦=−0. 015926 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 So, ∆𝑦= 𝑥+∆𝑥 13− 𝑥 13 Putting Values −0. 015926= 27+ −0. 43 13− 27 13 −0. 015926= 26. 57 13− 27 3 × 13 −0. 015926= 26. 57 13−3 −0. 015926+3= 26. 53 13 2. 9843= 26. 53 13 Thus, the Approximate Values of 26. 53 13 is 𝟐. 𝟗𝟖𝟒𝟑 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (xiii) (81.5) 14 Let 𝑦= 𝑥 14 where 𝑥=81 & ∆𝑥=0. 5 Now, 𝑦= 𝑥 14 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 14𝑑𝑥= 14 𝑥 14 − 1= 14 𝑥 − 3 4 = 14 𝑥 34 ∆ 𝑥 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 𝑑𝑦4 𝑥 34 ∆𝑥 Putting Values ∆𝑦= 14 81 34 × 0. 5 ∆𝑦= 0. 54 × 3 4 34 ∆𝑦= 0. 54 × 3 3 ∆𝑦= 0. 54 × 27 ∆𝑦= 0. 5108 ∆𝑦=0. 0046 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 So, ∆𝑦= 𝑥+∆𝑥 14− 𝑥 14 Putting Values 0. 0046= 81+0. 5 14− 81 14 0. 0046= 81. 5 14− 34 14 0. 0046= 81. 5 14−3 0. 0046+3= 81. 5 14 3. 0046= 81. 5 14 Thus, Approximate Value of 81. 5 14 is 𝟑. 𝟎𝟎𝟒𝟔 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (xiv) (3.968) 32 Let 𝑦= 𝑥 32 where 𝑥=4 & ∆𝑥=−0. 032 Now, 𝑦= 𝑥 32 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 32𝑑𝑥 𝑑𝑦𝑑𝑥= 32 𝑥 12 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 32 𝑥 12 ∆𝑥 Putting Values ∆𝑦= 32 4 12 . −0. 032 ∆𝑦= 32 22 12 . −0. 032 ∆𝑦= 32 ×2 × −0. 032 ∆𝑦=3 × −0. 032 ∆𝑦=−0. 096 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 So, ∆𝑦= 𝑥+∆𝑥 32− 𝑥 32 Putting Values −0. 096= 4+ −0. 032 32− 4 32 −0. 096= 4−0. 032 32− 22 × 32 −0. 096= 3. 968 32− 23 −0. 096= 3. 968 32−8 −0. 096+8= 3. 968 32 7. 904= 3. 968 32 3. 968 32=7.904 Thus, Approximate Values of 3. 968 32 is 𝟕. 𝟗𝟎𝟒 Ex 6.4,1 Using differentials, find the approximate value of each of the following up to 3 places of decimal. (xv) (32.15) 15 Let 𝑦= 𝑥 15 where 𝑥=32 & ∆𝑥=0. 15 Now, 𝑦= 𝑥 15 Differentiating w.r.t.𝑥 𝑑𝑦𝑑𝑥= 𝑑 𝑥 15𝑑𝑥= 15 𝑥 15 − 1 = 15 𝑥 − 4 5 = 15 𝑥 45 Using ∆𝑦= 𝑑𝑦𝑑𝑥 ∆𝑥 ∆𝑦= 15 𝑥 45 ∆𝑥 Putting Values ∆𝑦= 15 32 45 × 0. 15 ∆𝑦= 15 2 5 × 45 × 0. 15 ∆𝑦= 15 2 4 × 0. 15 ∆𝑦= 15 2 4 × 0. 15 ∆𝑦= 15 ×16 ×0. 15 ∆𝑦= 0. 15 80 ∆𝑦=0. 00187 We know that ∆𝑦=𝑓 𝑥+∆𝑥−𝑓 𝑥 So, ∆𝑦= 𝑥+∆𝑥 15− 𝑥 15 Putting Values 0. 00187= 32+0. 15 15− 32 15 0. 00187= 32. 15 15− 25 × 15 0. 00187= 32. 15 15−2 0. 00187+2= 32. 15 15 2. 00187= 32. 15 15 32. 15 15=2. 00187 Hence Approximate Values of 32. 15 15 is 𝟐. 𝟎𝟎𝟏𝟖𝟕
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Davneet Singh
Davneet Singh is a graduate from Indian Institute of Technology, Kanpur. He has been teaching from the past 8 years. He provides courses for Maths and Science at Teachoo. You can check his NCERT Solutions from Class 6 to 12.
