Question 6 - Area as a sum - Chapter 7 Class 12 Integrals
Last updated at Dec. 16, 2024 by Teachoo
Last updated at Dec. 16, 2024 by Teachoo
Question 6 β«1_0^4β(π₯+π2π₯)ππ₯ Let I = β«1_0^4β(π₯+π2π₯)ππ₯ I = β«1_0^4βγπ₯ . ππ₯γ+β«1_0^4βγ π2π₯ . ππ₯γ Solving I1 and I2 separately Solving I1 β«1_0^4βγπ₯ ππ₯γ Putting π =0 π =4 β=(π β π)/π =(4 β 0)/π =4/π π(π₯)=π₯ We know that β«1_π^πβγπ₯ ππ₯γ =(πβπ) (πππ)β¬(πββ) 1/π (π(π)+π(π+β)+π(π+2β)β¦+π(π+(πβ1)β)) Hence we can write β«1_0^4βγπ₯ ππ₯γ =(4β0) limβ¬(nββ) 1/π (π(0)+π(0+β)+π(0+2β)+β¦ +π(0+(πβ1)β) =4 limβ¬(nββ) 1/π (π(0)+π(β)+π(2β)+β¦ +π((πβ1)β) Here, π(π₯)=π₯ π(0)=0 π(β)=β π (2β)=2β π((πβ1)β)=(πβ1)β Hence, our equation becomes β΄ β«_0^4βπ₯ ππ₯ =4 limβ¬(nββ) 1/π (π(0)+π(β)+π(2β)+β¦ +π((πβ1)β) = 4 (πππ)β¬(πββ) 1/π (0+β+2β+ β¦β¦+(πβ1)β) = 4 (πππ)β¬(πββ) 1/π ( β (1+2+ β¦β¦β¦+(πβ1))) We know that 1+2+3+ β¦β¦+π= (π (π + 1))/2 1+2+3+ β¦β¦+πβ1= ((π β 1) (π β 1 + 1))/2 = (π (π β 1) )/2 = 4 (πππ)β¬(πββ) 1/π ( (β . π(π β 1))/2) = 4 (πππ)β¬(πββ) ( π(π β 1)β/2π) = 4 (πππ)β¬(πββ) ( (π β 1)β/2) = 4 (πππ)β¬(πββ) ( (π β 1)4/(2 . π)) = 4 (πππ)β¬(πββ) ( 2(π/π β 1/π)) = 4 (πππ)β¬(πββ) ( 2(1β 1/π)) = 4( 2(1β 1/β)) [ππ πππ β=4/π] = 4( 2(1β0)) = 4Γ2 = π Solving I2 β«_0^4βπ^2π₯ ππ₯ Putting π = 0 π =4 β = (π β π)/π = (4 β 0)/π = 4/π π(π₯)=π^2π₯ We know that β«1_π^πβγπ₯ ππ₯γ =(πβπ) (πππ)β¬(πββ) 1/π (π(π)+π(π+β)+π(π+2β)β¦+π(π+(πβ1)β)) Hence we can write β«_0^4βπ^2π₯ ππ₯ =(4β0) limβ¬(nββ) 1/π (π(0)+π(0+β)+π(0+2β)+β¦ +π(0+(πβ1)β) =4 limβ¬(nββ) 1/π (π(0)+π(β)+π(2β)β¦β¦+π((πβ1)β) Here, π(π₯)=π^2π₯ π(0)=π^(2(0))=1 π(β)=π^2β π(2β)=π^(2(2β))=π^4β π((πβ1)β)=π^2(πβ1)β Hence we can write β«_0^4βπ^2π₯ ππ₯ =(4β0) limβ¬(nββ) 1/π (π(0)+π(0+β)+π(0+2β)+β¦ +π(0+(πβ1)β) =4 limβ¬(nββ) 1/π (π(0)+π(β)+π(2β)β¦β¦+π((πβ1)β) Here, π(π₯)=π^2π₯ π(0)=π^(2(0))=1 π(β)=π^2β π(2β)=π^(2(2β))=π^4β π((πβ1)β)=π^2(πβ1)β Hence, our equation becomes β΄ β«_0^4βπ^2π₯ ππ₯ =4 limβ¬(nββ) 1/π (π(0)+π(β)+π(2β)β¦β¦+π(πβ1)β) = 4 .limβ¬(nββ) 1/π (1+π^2β+π^4β+ β¦β¦+π^(2(π β 1) β) ) Let S = 1+π^2β+π^4β+ β¦β¦+π^(2(π β 1) β) It is a G.P. with common ratio (r) r = π^2β/1 = π^2β We know Sum of G.P = a((π^π β 1)/(π β 1)) Replacing a by 1 and r by π^2β , we get S = 1(((π^2β )^π β 1)/(π^2β β 1))= (π^2πβ β 1)/(π^2β β 1) Thus β΄ β«_0^4βπ^π₯ ππ₯ = 4 limβ¬(nββ) 1/π (1+π^2β+π^4β+ β¦β¦+π^(2(π β 1) β) ) Putting the value of S, we get = 4 .limβ¬(nββ) 1/π ((π^2πβ β 1)/(π^2β β 1)) = 4 (πππ)β¬(πββ) 1/π ((π^2πβ β 1)/(2β . (π^2β β 1)/2β)) = 4 (πππ)β¬(πββ) (π^2πβ β 1)/2πβ . 1/( (π^2β β 1)/2β) = 4 (πππ)β¬(πββ) (π^2πβ β 1)/2πβ . (πππ)β¬(πββ) 1/( (π^2β β 1)/2β) Solving (π₯π’π¦)β¬(π§ββ) ( π)/(( π^ππ β π)/ππ) As nββ β 2/β ββ β β β0 β΄ limβ¬(nββ) ( 1)/(( π^2β β 1)/2β) = limβ¬(hβ0) ( 1)/(( π^2β β 1)/2β) = 1/1 = 1 Thus, our equation becomes β«1_0^4βγππ₯ ππ₯γ ="4" (πππ)β¬(πββ) (π^2πβ β 1)/2πβ . (πππ)β¬(πββ) 1/( (π^2β β 1)/2β) " " = "4" (πππ)β¬(πββ) (π^2πβ β 1)/2πβ . 1 = 4 (πππ)β¬(πββ) (π^(2π . 4/π) β 1)/(2π (4/π) ) = 4 (πππ)β¬(πββ) (π^8 β 1)/8 (ππ πππ (πππ)β¬(π‘β0) (π^π‘ β 1)/π‘ =1) (ππ πππ β=4/π) = 4 (π^8 β 1)/8 = (π^π β π)/π Putting the values of I1 and I2 in I β΄ I = β«1_0^4βγπ₯ . ππ₯γ+β«1_0^4βγ π2π₯ . ππ₯γ = 8 + (π^8 β 1)/2 = (16 + π^8 β 1)/2 = (ππ + π^π)/π
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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