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Group : 1 ( Page 1-8 Kalkulus) Name : 1. Azhari Rahman 2. MuhammadPachroni Suryana 3. Yudiansyah Latihan1.1 Hitunglahhasil dari f(X),jikax menyatakannilai adanb. untukc, buatlahsebuahobservasi dari hasil a dan b. 1. f(x)= 𝑥+2 𝑥−5 a. x= 3.001 Solutions: f(3.001)= 𝑥+2 𝑥−5 f(x) = 3.001+2 3.001−5 =− 5.001 1.999 = - 2.501 b. x= 2.99 Solutions: f(2.99)= 𝑥+2 𝑥−5 f(x)= 2.99+2 2.99−5 =− 4.99 2.01 = - 2.482 c. observasi ? Terlepasdari ituketikax mendekati hasil 3,ketikaf(x) mendekati hasil dari -2.5 2. f(x)= 𝑥−5 4𝑥 a. x= 1.002 f(1.002)= 𝑥−5 4𝑥 f(x)= 1.002−5 4(1.002) =− 3.998 4.008 = - 0.997 b. x= .993 f(.993)= 𝑥−5 4𝑥 f(x)= .993−5 4(.993) =− 4.007 3.972 = - 1.008 c. observasi ? terlepasdari ituketikax mendekati hasil 1,ketikaf(x) mendekatihasil dari -1. 3. f(x)= 3𝑥 𝑥 2
a. x= .001 f(.001)= 3𝑥 𝑥 2 f(x)= 3(.001) .001 2 = 0.000003 .001 = 0.003 b. x= -.001 f(-.001)= 3𝑥 𝑥 2 f(x)= 3(−.001) −.001 2 =− 0.000003 .001 = - 0.003 c. observasi ? terlepasdari ituketikax mendekati hasil 0,berarti f(x) tidakmendekati hasil tetap latihan1.2 Carilahpersamaandari limitberikutataumenunjukkankeberadaanbebas 1. lim 𝑥→3 𝑥2−4 𝑥+1 Solusi : lim 𝑥→3 𝑥2−4 𝑥+1 = lim 𝑥→3 𝑥2−4 lim 𝑥→3 𝑥+1 = 5 4 2. lim 𝑥→2 𝑥2−9 𝑥−2 Solusi : lim 𝑥→2 𝑥2−9 𝑥−2 = −5 0 = ~ 3. lim 𝑥→1 √𝑥3 + 7 Solusi : lim 𝑥→1 √𝑥3 + 7 = √8 = 2√2 4. lim 𝑥→𝜋 (5𝑥2 + 9) Solusi : lim 𝑥→𝜋 ( 5𝑥2 + 9) = 5𝜋2 + 9
5. lim 𝑥→0 5−3𝑥 𝑥+11 Solusi : lim 𝑥→0 5−3𝑥 𝑥+11 = lim 𝑥→0 5−3𝑥 lim 𝑥→0 𝑥+11 = 5 11 6. lim 𝑥→0 9+3𝑥2 𝑥3+11 Solusi : lim 𝑥→0 9+3𝑥2 𝑥3+11 = lim 𝑥→0 9+3𝑥2 lim 𝑥→0 𝑥3+11 = 9 11 7. lim 𝑥→1 𝑥2−2𝑥+1 𝑥2−1 Solusi: lim 𝑥→1 𝑥2−2𝑥+1 𝑥2−1 = lim 𝑥→1 (𝑥−1)(𝑥−1) ( 𝑥−1)(𝑥+1) = lim 𝑥→1 𝑥−1 𝑥+1 = 0 2 = 0 8. lim 𝑥→4 6−3𝑥 𝑥2−16 Solusi : lim 𝑥→4 6−3𝑥 𝑥2−16 = lim 𝑥→4 6−3𝑥 (𝑥−4)(𝑥+4) = − 6 0 = ~ 9. lim 𝑥→−2 √4𝑥3 + 11 Solusi : lim 𝑥→−2 √4𝑥3 + 11= √−32 + 11 = √21 10. lim 𝑥→−6 8−3𝑥 𝑥−6 Solusi : lim 𝑥→−6 8−3𝑥 𝑥−6 = lim 𝑥→−6 8−3𝑥 lim 𝑥→−6 𝑥−6 = − 26 12 = − 13 6
Latihan2.1 Tentukanlahlimitberikut: 1. lim 𝑥→3 𝑥−3 𝑥2+𝑥−12 Solusi : lim 𝑥→3 𝑥−3 𝑥2+𝑥−12 = lim 𝑥→3 𝑥−3 ( 𝑥−3)(𝑥+4) = lim 𝑥→3 1 (𝑥+4) = 1 7 2. lim ℎ→0 (𝑥+ℎ)2−𝑥2 ℎ Solusi : lim ℎ→0 (𝑥+ℎ)2−𝑥2 ℎ = lim ℎ→0 𝑥2+2ℎ𝑥+ℎ2−𝑥2 ℎ = lim ℎ→0 2ℎ𝑥+ℎ2 ℎ = lim ℎ→0 ℎ(2𝑥+ℎ) ℎ = lim ℎ→0 2𝑥 + ℎ = 2x 3. lim 𝑥→4 𝑥3−64 𝑥2−16 Solusi : lim 𝑥→4 𝑥3−64 𝑥2−16 = lim 𝑥→4 𝑥3−64 𝑥2−16 = lim 𝑥→4 (𝑥−4)(𝑥2+4𝑥+16) ( 𝑥−4)(𝑥+4) = lim 𝑥→4 𝑥2+4𝑥+16 𝑥+4 = 48 8 = 6 4. If f(x) = 5x+8, find lim ℎ→0 𝑓( 𝑥+ℎ)−𝑓(𝑥) ℎ Solusi : lim ℎ→0 𝑓( 𝑥+ℎ)−𝑓(𝑥) ℎ = lim ℎ→0 (5( 𝑥+ℎ)+8)−(5x+8) ℎ = lim ℎ→0 (5𝑥+5ℎ+8)−(5x+8) ℎ
= lim ℎ→0 5ℎ ℎ = ~ 5. lim 𝑥→−3 5𝑥+7 𝑥2−3 Solusi : lim 𝑥→−3 5𝑥+7 𝑥2−3 = lim 𝑥→3 5𝑥+7 lim 𝑥→3 𝑥2−3 = − 8 6 = - 4 3 6. lim 𝑥→25 √ 𝑥−5 𝑥−25 Solusi : lim 𝑥→25 √ 𝑥−5 𝑥−25 = lim 𝑥→25 (√ 𝑥−5) (𝑥−25) (√ 𝑥+5) (√ 𝑥+5) = lim 𝑥→25 𝑥−25 𝑥√ 𝑥+ 5𝑥−25√ 𝑥−125 = 0 0 = ~ 7. If g(x) =𝑥2 , find lim 𝑥→2 𝑔( 𝑥)−𝑔(2) 𝑥−2 Solusi : lim 𝑥→2 𝑔( 𝑥)−𝑔(2) 𝑥−2 = lim 𝑥→2 𝑥2−4 𝑥−2 = lim 𝑥→2 (𝑥+2)(𝑥−2) 𝑥−2 = lim 𝑥→2 𝑥 + 2 = 4 8. lim 𝑥→0 2𝑥2− 4𝑥 𝑥 Solusi : lim 𝑥→0 2𝑥2− 4𝑥 𝑥 = lim 𝑥→0 (2𝑥− 4)𝑥 𝑥 = lim 𝑥→0 (2𝑥 − 4) = -4 9. lim 𝑟→0 √ 𝑥+𝑟−√ 𝑥 𝑟 Solusi :lim 𝑟→0 √ 𝑥+𝑟−√ 𝑥 𝑟 = lim 𝑟→0 (√ 𝑥+𝑟−√𝑥) 𝑟 (√ 𝑥+𝑟+√𝑥) √ 𝑥+𝑟+√ 𝑥 = lim 𝑟→0 𝑥+𝑟−𝑥 𝑟(√ 𝑥+𝑟+√ 𝑥) = 0 0 = ~
10. lim 𝑥→4 𝑥3+6 𝑥−4 Solusi : lim 𝑥→4 𝑥3+6 𝑥−4 = lim 𝑥→4 𝑥3+6 𝑥−4 𝑥+4 𝑥+4 = 𝑥4+4𝑥3+6𝑥+24 (𝑥−4)(𝑥+4) = 70 0 = ~

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Matematika kalkulus1

  • 1. Group : 1 ( Page 1-8 Kalkulus) Name : 1. Azhari Rahman 2. MuhammadPachroni Suryana 3. Yudiansyah Latihan1.1 Hitunglahhasil dari f(X),jikax menyatakannilai adanb. untukc, buatlahsebuahobservasi dari hasil a dan b. 1. f(x)= 𝑥+2 𝑥−5 a. x= 3.001 Solutions: f(3.001)= 𝑥+2 𝑥−5 f(x) = 3.001+2 3.001−5 =− 5.001 1.999 = - 2.501 b. x= 2.99 Solutions: f(2.99)= 𝑥+2 𝑥−5 f(x)= 2.99+2 2.99−5 =− 4.99 2.01 = - 2.482 c. observasi ? Terlepasdari ituketikax mendekati hasil 3,ketikaf(x) mendekati hasil dari -2.5 2. f(x)= 𝑥−5 4𝑥 a. x= 1.002 f(1.002)= 𝑥−5 4𝑥 f(x)= 1.002−5 4(1.002) =− 3.998 4.008 = - 0.997 b. x= .993 f(.993)= 𝑥−5 4𝑥 f(x)= .993−5 4(.993) =− 4.007 3.972 = - 1.008 c. observasi ? terlepasdari ituketikax mendekati hasil 1,ketikaf(x) mendekatihasil dari -1. 3. f(x)= 3𝑥 𝑥 2
  • 2. a. x= .001 f(.001)= 3𝑥 𝑥 2 f(x)= 3(.001) .001 2 = 0.000003 .001 = 0.003 b. x= -.001 f(-.001)= 3𝑥 𝑥 2 f(x)= 3(−.001) −.001 2 =− 0.000003 .001 = - 0.003 c. observasi ? terlepasdari ituketikax mendekati hasil 0,berarti f(x) tidakmendekati hasil tetap latihan1.2 Carilahpersamaandari limitberikutataumenunjukkankeberadaanbebas 1. lim 𝑥→3 𝑥2−4 𝑥+1 Solusi : lim 𝑥→3 𝑥2−4 𝑥+1 = lim 𝑥→3 𝑥2−4 lim 𝑥→3 𝑥+1 = 5 4 2. lim 𝑥→2 𝑥2−9 𝑥−2 Solusi : lim 𝑥→2 𝑥2−9 𝑥−2 = −5 0 = ~ 3. lim 𝑥→1 √𝑥3 + 7 Solusi : lim 𝑥→1 √𝑥3 + 7 = √8 = 2√2 4. lim 𝑥→𝜋 (5𝑥2 + 9) Solusi : lim 𝑥→𝜋 ( 5𝑥2 + 9) = 5𝜋2 + 9
  • 3. 5. lim 𝑥→0 5−3𝑥 𝑥+11 Solusi : lim 𝑥→0 5−3𝑥 𝑥+11 = lim 𝑥→0 5−3𝑥 lim 𝑥→0 𝑥+11 = 5 11 6. lim 𝑥→0 9+3𝑥2 𝑥3+11 Solusi : lim 𝑥→0 9+3𝑥2 𝑥3+11 = lim 𝑥→0 9+3𝑥2 lim 𝑥→0 𝑥3+11 = 9 11 7. lim 𝑥→1 𝑥2−2𝑥+1 𝑥2−1 Solusi: lim 𝑥→1 𝑥2−2𝑥+1 𝑥2−1 = lim 𝑥→1 (𝑥−1)(𝑥−1) ( 𝑥−1)(𝑥+1) = lim 𝑥→1 𝑥−1 𝑥+1 = 0 2 = 0 8. lim 𝑥→4 6−3𝑥 𝑥2−16 Solusi : lim 𝑥→4 6−3𝑥 𝑥2−16 = lim 𝑥→4 6−3𝑥 (𝑥−4)(𝑥+4) = − 6 0 = ~ 9. lim 𝑥→−2 √4𝑥3 + 11 Solusi : lim 𝑥→−2 √4𝑥3 + 11= √−32 + 11 = √21 10. lim 𝑥→−6 8−3𝑥 𝑥−6 Solusi : lim 𝑥→−6 8−3𝑥 𝑥−6 = lim 𝑥→−6 8−3𝑥 lim 𝑥→−6 𝑥−6 = − 26 12 = − 13 6
  • 4. Latihan2.1 Tentukanlahlimitberikut: 1. lim 𝑥→3 𝑥−3 𝑥2+𝑥−12 Solusi : lim 𝑥→3 𝑥−3 𝑥2+𝑥−12 = lim 𝑥→3 𝑥−3 ( 𝑥−3)(𝑥+4) = lim 𝑥→3 1 (𝑥+4) = 1 7 2. lim ℎ→0 (𝑥+ℎ)2−𝑥2 ℎ Solusi : lim ℎ→0 (𝑥+ℎ)2−𝑥2 ℎ = lim ℎ→0 𝑥2+2ℎ𝑥+ℎ2−𝑥2 ℎ = lim ℎ→0 2ℎ𝑥+ℎ2 ℎ = lim ℎ→0 ℎ(2𝑥+ℎ) ℎ = lim ℎ→0 2𝑥 + ℎ = 2x 3. lim 𝑥→4 𝑥3−64 𝑥2−16 Solusi : lim 𝑥→4 𝑥3−64 𝑥2−16 = lim 𝑥→4 𝑥3−64 𝑥2−16 = lim 𝑥→4 (𝑥−4)(𝑥2+4𝑥+16) ( 𝑥−4)(𝑥+4) = lim 𝑥→4 𝑥2+4𝑥+16 𝑥+4 = 48 8 = 6 4. If f(x) = 5x+8, find lim ℎ→0 𝑓( 𝑥+ℎ)−𝑓(𝑥) ℎ Solusi : lim ℎ→0 𝑓( 𝑥+ℎ)−𝑓(𝑥) ℎ = lim ℎ→0 (5( 𝑥+ℎ)+8)−(5x+8) ℎ = lim ℎ→0 (5𝑥+5ℎ+8)−(5x+8) ℎ
  • 5. = lim ℎ→0 5ℎ ℎ = ~ 5. lim 𝑥→−3 5𝑥+7 𝑥2−3 Solusi : lim 𝑥→−3 5𝑥+7 𝑥2−3 = lim 𝑥→3 5𝑥+7 lim 𝑥→3 𝑥2−3 = − 8 6 = - 4 3 6. lim 𝑥→25 √ 𝑥−5 𝑥−25 Solusi : lim 𝑥→25 √ 𝑥−5 𝑥−25 = lim 𝑥→25 (√ 𝑥−5) (𝑥−25) (√ 𝑥+5) (√ 𝑥+5) = lim 𝑥→25 𝑥−25 𝑥√ 𝑥+ 5𝑥−25√ 𝑥−125 = 0 0 = ~ 7. If g(x) =𝑥2 , find lim 𝑥→2 𝑔( 𝑥)−𝑔(2) 𝑥−2 Solusi : lim 𝑥→2 𝑔( 𝑥)−𝑔(2) 𝑥−2 = lim 𝑥→2 𝑥2−4 𝑥−2 = lim 𝑥→2 (𝑥+2)(𝑥−2) 𝑥−2 = lim 𝑥→2 𝑥 + 2 = 4 8. lim 𝑥→0 2𝑥2− 4𝑥 𝑥 Solusi : lim 𝑥→0 2𝑥2− 4𝑥 𝑥 = lim 𝑥→0 (2𝑥− 4)𝑥 𝑥 = lim 𝑥→0 (2𝑥 − 4) = -4 9. lim 𝑟→0 √ 𝑥+𝑟−√ 𝑥 𝑟 Solusi :lim 𝑟→0 √ 𝑥+𝑟−√ 𝑥 𝑟 = lim 𝑟→0 (√ 𝑥+𝑟−√𝑥) 𝑟 (√ 𝑥+𝑟+√𝑥) √ 𝑥+𝑟+√ 𝑥 = lim 𝑟→0 𝑥+𝑟−𝑥 𝑟(√ 𝑥+𝑟+√ 𝑥) = 0 0 = ~
  • 6. 10. lim 𝑥→4 𝑥3+6 𝑥−4 Solusi : lim 𝑥→4 𝑥3+6 𝑥−4 = lim 𝑥→4 𝑥3+6 𝑥−4 𝑥+4 𝑥+4 = 𝑥4+4𝑥3+6𝑥+24 (𝑥−4)(𝑥+4) = 70 0 = ~