SlideShare a Scribd company logo

Barryalkahfi

β€’Download as DOCX, PDFβ€’
β€’
D
drayertaurus

tugas 3 mtk

Education
1 of 5
MATEMATIKA TUGAS 3 Disusunoleh: Nama : Barry Alkahfi Prodi : TeknikElektronika Kelas : 1E A Semester : 2 (Dua) TAHUN AJARAN 2014/2015 POLITEKNIK MANUFAKTUR NEGERI BANGKA BELITUNG KawasanIndustri Air KantungSungailiat, Bangka 33211 Telp. (0717) 93586, Fax. (0717) 93585 Email :polman@polman-babel.ac.id Website :www.polman-babel.ac.id
1. Hitunglah∫ (π‘₯12 βˆ’ 12 π‘₯5 + √π‘₯103 ) 𝑑π‘₯ ∫(π‘₯12 βˆ’ 12 π‘₯5 + √ π‘₯103 ) 𝑑π‘₯ = ∫ π‘₯12 βˆ’ 12π‘₯βˆ’5 + π‘₯ 10 3 𝑑π‘₯ = 1 13 π‘₯13 βˆ’ 12 βˆ’4 π‘₯βˆ’4 + 1 13 3 π‘₯ 13 3 + 𝐢 = 1 13 π‘₯13 + 3π‘₯βˆ’4 + 3 13 π‘₯ 13 3 + 𝐢 = 1 13 π‘₯13 + 3 π‘₯4 + 3 13 √ π‘₯133 + 𝐢 2. Hitunglah∫[cos(7π‘₯ βˆ’ 12) + 𝑠𝑒𝑐2(9π‘₯ βˆ’ 15)] 𝑑π‘₯ ∫[cos(7π‘₯ βˆ’ 12) + 𝑠𝑒𝑐2(9π‘₯ βˆ’ 15)] 𝑑π‘₯ = 1 7 sin(7π‘₯ βˆ’ 12)+ 1 9 tan(9π‘₯ βˆ’ 15) + 𝐢 3. Denganmenggunakancarasubstitusihitunglah∫ π‘₯2 √3+π‘₯3 𝑑π‘₯ ∫ π‘₯2 √3 + π‘₯3 𝑑π‘₯ = ∫ π‘₯2 .(3 + π‘₯3)βˆ’ 1 2 𝑑π‘₯ 𝑒 = 3 + π‘₯3 β†’ 𝑑𝑒 𝑑π‘₯ = 3π‘₯2 β†’ 𝑑π‘₯ = 𝑑𝑒 3π‘₯2 ∫ π‘₯2 . (3 + π‘₯3)βˆ’ 1 2 𝑑π‘₯ = ∫ π‘₯2 . 𝑒 βˆ’ 1 2 . 𝑑𝑒 3π‘₯2 = 1 3 ∫ 𝑒 βˆ’ 1 2 𝑑𝑒 = 1 3 . 1 1 2 𝑒 1 2 + 𝐢 = 2 3 √ 𝑒 + 𝐢 = 2 3 √3 + π‘₯3 + 𝐢 4. Denganmenggunakancarasubstitusihitunglah∫(2π‘₯ + 2)cos(5π‘₯2 + 10π‘₯ + 8) 𝑑π‘₯ ∫(2π‘₯ + 2)cos(5π‘₯2 + 10π‘₯ + 8) 𝑑π‘₯ 𝑒 = 5π‘₯2 + 10π‘₯ + 8 β†’ 𝑑𝑒 𝑑π‘₯ = 10π‘₯ + 10 β†’ 𝑑π‘₯ = 𝑑𝑒 10π‘₯ + 10 ∫(2π‘₯ + 2)cos(5π‘₯2 + 10π‘₯ + 8) 𝑑π‘₯ = ∫(2π‘₯ + 2).cos 𝑒 . 𝑑𝑒 10π‘₯ + 10 = ∫(2π‘₯ + 2).cos 𝑒 . 𝑑𝑒 5(2π‘₯ + 2) = 1 5 ∫cos 𝑒 𝑑𝑒
= 1 5 sin 𝑒 + 𝐢 = 1 5 sin(5π‘₯2 + 10π‘₯ + 8) + 𝐢 5. Hitunglah integral parsildari∫ 2π‘₯. sin(12π‘₯ + 4) 𝑑π‘₯ ∫2π‘₯. sin(12π‘₯ + 4) 𝑑π‘₯ 𝑒 = 2π‘₯ β†’ 𝑑𝑒 𝑑π‘₯ = 2 β†’ 𝑑𝑒 = 2𝑑π‘₯ 𝑑𝑣 = sin(12π‘₯ + 4) 𝑑π‘₯ β†’ 𝑣 = ∫sin(12π‘₯ + 4) 𝑑π‘₯ = βˆ’ 1 12 cos(12π‘₯ + 4) ∫ 𝑒. 𝑑𝑣 = 𝑒. 𝑣 βˆ’ ∫ 𝑣 𝑑𝑒 ∫2π‘₯. sin(12π‘₯ + 4) 𝑑π‘₯ = 2π‘₯. βˆ’ 1 12 cos(12π‘₯ + 4) βˆ’ ∫ βˆ’ 1 12 cos(12π‘₯ + 4). 2𝑑π‘₯ = βˆ’ 1 6 π‘₯ cos(12π‘₯ + 4) + 2 [ 1 12 12 sin(12π‘₯ + 4)] + 𝐢 = βˆ’ 1 6 π‘₯ cos(12π‘₯ + 4) + 1 72 sin(12π‘₯ + 4) + 𝐢 6. Denganmenggunakanbantuantabelhitunglah integral dari∫ π‘₯3 π‘’βˆ’5π‘₯ 𝑑π‘₯ + π‘₯3 (turunan) π‘’βˆ’5π‘₯ (integral) - 3π‘₯2 βˆ’ 1 5 π‘’βˆ’5π‘₯ + 6π‘₯ 1 25 π‘’βˆ’5π‘₯ - 6 βˆ’ 1 125 π‘’βˆ’5π‘₯ + 0 1 625 π‘’βˆ’5π‘₯ = βˆ’ 1 5 π‘₯3 π‘’βˆ’5π‘₯ βˆ’ 3 25 π‘₯2 π‘’βˆ’5π‘₯ βˆ’ 6 125 π‘₯π‘’βˆ’5π‘₯ βˆ’ 6 625 π‘’βˆ’5π‘₯ + 𝐢
7. Hitung integral fungsirasionaldari∫ 3π‘₯ π‘₯2βˆ’2π‘₯βˆ’15 𝑑π‘₯ 3π‘₯ π‘₯2 βˆ’ 2π‘₯ βˆ’ 15 = 3π‘₯ (π‘₯ βˆ’ 5)(π‘₯ + 3) = 𝐴 ( π‘₯ βˆ’ 5) + 𝐡 ( π‘₯ + 3) π‘₯ βˆ’ 5 = 0 β†’ π‘₯ = 5 β†’ 𝐴 = 3.5 (5 + 3) = 15 8 π‘₯ + 3 = 0 β†’ π‘₯ = βˆ’3 β†’ 𝐡 = 3. βˆ’3 (βˆ’3 βˆ’ 5) = 9 8 ∫ 3π‘₯ π‘₯2 βˆ’ 2π‘₯ βˆ’ 15 𝑑π‘₯ = ∫ 15 8 ( π‘₯ βˆ’ 5) 𝑑π‘₯ + ∫ 9 8 ( π‘₯ + 3) 𝑑π‘₯ = 15 8 ln| π‘₯ βˆ’ 5| + 9 8 ln| π‘₯ + 3| + 𝐢 8. Hitunglah integral tentudari∫ (π‘₯4 + 5π‘₯ + 1 π‘₯3) 4 1 𝑑π‘₯ ∫(π‘₯4 + 5π‘₯ + 1 π‘₯3 ) 4 1 𝑑π‘₯ = ∫(π‘₯4 + 5π‘₯ + π‘₯βˆ’3 ) 4 1 𝑑π‘₯ = 1 5 π‘₯5 + 5 2 π‘₯2 βˆ’ 1 2 π‘₯βˆ’2 = 1 5 π‘₯5 + 5 2 π‘₯2 βˆ’ 1 2π‘₯2 = ( 1 5 . 45 + 5 2 . 42 βˆ’ 1 2.42 ) βˆ’ ( 1 5 . 15 + 5 2 . 12 βˆ’ 1 2.12 ) = ( 1024 5 + 40 βˆ’ 1 32 ) βˆ’ ( 1 5 + 5 2 βˆ’ 1 2 ) = 1024 5 βˆ’ 1 5 βˆ’ 1 32 βˆ’ 4 2 + 40 = 1023 5 βˆ’ 1 32 + 38 = 32736 βˆ’ 5 + 6080 160 = 38811 160 9. Tentukanluasdaerah yang dibatasiolehkurva𝑦 = π‘₯2 + 4 dan garis 𝑦 = βˆ’π‘₯ + 16 𝑦1 = 𝑦2 β†’ π‘₯2 + 4 = βˆ’π‘₯ + 16 π‘₯2 + π‘₯ βˆ’ 12 = 0 ( π‘₯ + 4)( π‘₯ βˆ’ 3) = 0 π‘₯ = βˆ’4 π‘Žπ‘‘π‘Žπ‘’ π‘₯ = 3 𝐿 = ∫(βˆ’π‘₯ + 16) βˆ’ ( π‘₯2 + 4) 3 βˆ’4 𝑑π‘₯ = ∫(βˆ’π‘₯2 βˆ’ π‘₯ + 12) 3 βˆ’4 𝑑π‘₯ = βˆ’ 1 3 π‘₯3 βˆ’ 1 2 π‘₯2 + 12π‘₯ = (βˆ’ 1 3 . 33 βˆ’ 1 2 . 32 + 12.3) βˆ’ (βˆ’ 1 3 . βˆ’43 βˆ’ 1 2 . βˆ’42 + 12. βˆ’4) = (βˆ’9 βˆ’ 9 2 + 36) βˆ’ ( 64 3 βˆ’ 8 βˆ’ 48) = 27 βˆ’ 9 2 βˆ’ 64 3 + 56 = βˆ’ 64 3 βˆ’ 9 2 + 83
= βˆ’128 βˆ’ 27 + 498 6 = 343 6 π‘ π‘Žπ‘‘π‘’π‘Žπ‘› π‘™π‘’π‘Žπ‘  10. Tentukanlah volume benda yang terbentukdenganmemutarmengelilingisumbu-y daridaerah yang dibatasioleh𝑦 = 3π‘₯, 𝑦 = π‘₯, 𝑦 = 0 dan garis 𝑦 = 3 𝑦 = 3π‘₯ β†’ π‘₯ = 1 3 𝑦 𝑦 = π‘₯ β†’ π‘₯ = 𝑦 𝑉 = πœ‹ ∫( π‘₯1 2 βˆ’ π‘₯2 2) 3 0 𝑑𝑦 = πœ‹ ∫(𝑦2 βˆ’ ( 1 3 𝑦) 2 ) 3 0 𝑑𝑦 = πœ‹ ∫ (𝑦2 βˆ’ 1 9 𝑦2 ) 3 0 𝑑𝑦 = πœ‹ ∫ 8 9 𝑦2 3 0 𝑑𝑦 = πœ‹ [ 8 9 3 𝑦3 ] = πœ‹ [ 8 27 𝑦3 ] = πœ‹ [ 8 27 . 33 βˆ’ 8 27 . 03 ] = πœ‹[8 βˆ’ 0] = 8πœ‹ π‘ π‘Žπ‘‘π‘’π‘Žπ‘› π‘£π‘œπ‘™π‘’π‘šπ‘’

Recommended

Tugas 3 MTK2
Tugas 3 MTK2 Tugas 3 MTK2
Tugas 3 MTK2 ramadhani_817
Β 
Tugas 3 mtk2
Tugas 3 mtk2Tugas 3 mtk2
Tugas 3 mtk2Sirilus Oki
Β 
Tugas 3
Tugas 3Tugas 3
Tugas 3yudiansyah1996
Β 
Tugas MTK 3 Kisi-Kisi Tes 2
Tugas MTK 3 Kisi-Kisi Tes 2Tugas MTK 3 Kisi-Kisi Tes 2
Tugas MTK 3 Kisi-Kisi Tes 2harlintokek
Β 
Tugas 2 MTK2
Tugas 2 MTK2Tugas 2 MTK2
Tugas 2 MTK2Polman Negeri Bangka Belitung
Β 
Tugas MTK 2 Kisi-kisi
Tugas MTK 2 Kisi-kisiTugas MTK 2 Kisi-kisi
Tugas MTK 2 Kisi-kisigeriandssp30
Β 
Tugas 3 MTK2
Tugas 3 MTK2Tugas 3 MTK2
Tugas 3 MTK2Polman Negeri Bangka Belitung
Β 
Tugas MTK2 Kisi-Kisi
Tugas MTK2 Kisi-KisiTugas MTK2 Kisi-Kisi
Tugas MTK2 Kisi-KisiINDAH YANTI
Β 

Recommended

Tugas 3 MTK2
Tugas 3 MTK2 Tugas 3 MTK2
Tugas 3 MTK2 ramadhani_817
Β 
Tugas 3 mtk2
Tugas 3 mtk2Tugas 3 mtk2
Tugas 3 mtk2Sirilus Oki
Β 
Tugas 3
Tugas 3Tugas 3
Tugas 3yudiansyah1996
Β 
Tugas MTK 3 Kisi-Kisi Tes 2
Tugas MTK 3 Kisi-Kisi Tes 2Tugas MTK 3 Kisi-Kisi Tes 2
Tugas MTK 3 Kisi-Kisi Tes 2harlintokek
Β 
Tugas 2 MTK2
Tugas 2 MTK2Tugas 2 MTK2
Tugas 2 MTK2Polman Negeri Bangka Belitung
Β 
Tugas MTK 2 Kisi-kisi
Tugas MTK 2 Kisi-kisiTugas MTK 2 Kisi-kisi
Tugas MTK 2 Kisi-kisigeriandssp30
Β 
Tugas 3 MTK2
Tugas 3 MTK2Tugas 3 MTK2
Tugas 3 MTK2Polman Negeri Bangka Belitung
Β 
Tugas MTK2 Kisi-Kisi
Tugas MTK2 Kisi-KisiTugas MTK2 Kisi-Kisi
Tugas MTK2 Kisi-KisiINDAH YANTI
Β 
Tugas MTK 3
Tugas MTK 3Tugas MTK 3
Tugas MTK 3M Habiburrakhman Habiburrakhman
Β 
Tugas 3 MTK2
Tugas 3 MTK2 Tugas 3 MTK2
Tugas 3 MTK2 andekiorek
Β 
math 3rd t
math 3rd tmath 3rd t
math 3rd tM Habiburrakhman Habiburrakhman
Β 
Tugas mtk 3
Tugas mtk 3Tugas mtk 3
Tugas mtk 3deviyunita01
Β 
Tugas 3
Tugas 3Tugas 3
Tugas 3M Habiburrakhman Habiburrakhman
Β 
Tugas mtk 2
Tugas mtk 2Tugas mtk 2
Tugas mtk 2gustiana_1408
Β 
Tugas Matematika 3
Tugas Matematika 3Tugas Matematika 3
Tugas Matematika 3M Habiburrakhman Habiburrakhman
Β 
Tugas mtk 10
Tugas mtk 10Tugas mtk 10
Tugas mtk 10Lara Sati
Β 
Tugas 3 MTK2
Tugas 3 MTK2Tugas 3 MTK2
Tugas 3 MTK2Toro Jr.
Β 
Tugas 2
Tugas 2Tugas 2
Tugas 2M Habiburrakhman Habiburrakhman
Β 
Kisi2 fery
Kisi2 feryKisi2 fery
Kisi2 ferycara_mau2
Β 
Kisi2 tes 2
Kisi2 tes 2Kisi2 tes 2
Kisi2 tes 2Monica ROselina
Β 
iPAD Italy Treasure Hunt Sunny Way
iPAD Italy Treasure Hunt Sunny WayiPAD Italy Treasure Hunt Sunny Way
iPAD Italy Treasure Hunt Sunny Wayeliozoc
Β 
Potentials of the internet and its resources to academic staff the case of tw...
Potentials of the internet and its resources to academic staff the case of tw...Potentials of the internet and its resources to academic staff the case of tw...
Potentials of the internet and its resources to academic staff the case of tw...IAEME Publication
Β 
Uzay Ajans promosyon 2015_catalouge
Uzay Ajans promosyon 2015_catalougeUzay Ajans promosyon 2015_catalouge
Uzay Ajans promosyon 2015_catalougeBarış GÜMÜŞ
Β 
Trade Intelligence - ITF Indian Case study TJ final
Trade Intelligence - ITF Indian Case study TJ finalTrade Intelligence - ITF Indian Case study TJ final
Trade Intelligence - ITF Indian Case study TJ finalTHANGARAJ JONES
Β 
Los adverbios preposiciones ,conjunciones e interjecciones.
Los adverbios preposiciones ,conjunciones e interjecciones.Los adverbios preposiciones ,conjunciones e interjecciones.
Los adverbios preposiciones ,conjunciones e interjecciones.amendez1987
Β 
Defensa del articulo
Defensa del articuloDefensa del articulo
Defensa del articulomalditos
Β 
Local fare how to
Local fare how toLocal fare how to
Local fare how toilfattoquotidiano.it
Β 
Contaminacion (entrega abril 15)
Contaminacion (entrega abril 15)Contaminacion (entrega abril 15)
Contaminacion (entrega abril 15)Elmer Jaguar
Β 
Ketchum Change - Cracking the Culture Code
Ketchum Change - Cracking the Culture CodeKetchum Change - Cracking the Culture Code
Ketchum Change - Cracking the Culture CodePaul Teuton
Β 
Informatica empresarial 1 trabajo
Informatica empresarial 1 trabajoInformatica empresarial 1 trabajo
Informatica empresarial 1 trabajomileblanko
Β 

More Related Content

What's hot

Tugas 3 MTK2
Tugas 3 MTK2 Tugas 3 MTK2
Tugas 3 MTK2 andekiorek
Β 
Tugas mtk 10
Tugas mtk 10Tugas mtk 10
Tugas mtk 10Lara Sati
Β 
Tugas 3 MTK2
Tugas 3 MTK2Tugas 3 MTK2
Tugas 3 MTK2Toro Jr.
Β 
Kisi2 fery
Kisi2 feryKisi2 fery
Kisi2 ferycara_mau2
Β 

What's hot (12)

Tugas MTK 3
Tugas MTK 3Tugas MTK 3
Tugas MTK 3
Β 
Tugas 3 MTK2
Tugas 3 MTK2 Tugas 3 MTK2
Tugas 3 MTK2
Β 
math 3rd t
math 3rd tmath 3rd t
math 3rd t
Β 
Tugas mtk 3
Tugas mtk 3Tugas mtk 3
Tugas mtk 3
Β 
Tugas 3
Tugas 3Tugas 3
Tugas 3
Β 
Tugas mtk 2
Tugas mtk 2Tugas mtk 2
Tugas mtk 2
Β 
Tugas Matematika 3
Tugas Matematika 3Tugas Matematika 3
Tugas Matematika 3
Β 
Tugas mtk 10
Tugas mtk 10Tugas mtk 10
Tugas mtk 10
Β 
Tugas 3 MTK2
Tugas 3 MTK2Tugas 3 MTK2
Tugas 3 MTK2
Β 
Tugas 2
Tugas 2Tugas 2
Tugas 2
Β 
Kisi2 fery
Kisi2 feryKisi2 fery
Kisi2 fery
Β 
Kisi2 tes 2
Kisi2 tes 2Kisi2 tes 2
Kisi2 tes 2
Β 

Viewers also liked

iPAD Italy Treasure Hunt Sunny Way
iPAD Italy Treasure Hunt Sunny WayiPAD Italy Treasure Hunt Sunny Way
iPAD Italy Treasure Hunt Sunny Wayeliozoc
Β 
Potentials of the internet and its resources to academic staff the case of tw...
Potentials of the internet and its resources to academic staff the case of tw...Potentials of the internet and its resources to academic staff the case of tw...
Potentials of the internet and its resources to academic staff the case of tw...IAEME Publication
Β 
Trade Intelligence - ITF Indian Case study TJ final
Trade Intelligence - ITF Indian Case study TJ finalTrade Intelligence - ITF Indian Case study TJ final
Trade Intelligence - ITF Indian Case study TJ finalTHANGARAJ JONES
Β 
Los adverbios preposiciones ,conjunciones e interjecciones.
Los adverbios preposiciones ,conjunciones e interjecciones.Los adverbios preposiciones ,conjunciones e interjecciones.
Los adverbios preposiciones ,conjunciones e interjecciones.amendez1987
Β 
Defensa del articulo
Defensa del articuloDefensa del articulo
Defensa del articulomalditos
Β 
Contaminacion (entrega abril 15)
Contaminacion (entrega abril 15)Contaminacion (entrega abril 15)
Contaminacion (entrega abril 15)Elmer Jaguar
Β 
Ketchum Change - Cracking the Culture Code
Ketchum Change - Cracking the Culture CodeKetchum Change - Cracking the Culture Code
Ketchum Change - Cracking the Culture CodePaul Teuton
Β 
Informatica empresarial 1 trabajo
Informatica empresarial 1 trabajoInformatica empresarial 1 trabajo
Informatica empresarial 1 trabajomileblanko
Β 
Tia maria marycielo oscco guillen
Tia maria marycielo oscco guillenTia maria marycielo oscco guillen
Tia maria marycielo oscco guillenMarycielo1901
Β 
Paradigmas educativos
Paradigmas educativosParadigmas educativos
Paradigmas educativosThalii TR D PA
Β 
Airflow and patient perceived improvement following rhinoplastic correction o...
Airflow and patient perceived improvement following rhinoplastic correction o...Airflow and patient perceived improvement following rhinoplastic correction o...
Airflow and patient perceived improvement following rhinoplastic correction o...Angel Castro Urquizo
Β 

Viewers also liked (14)

iPAD Italy Treasure Hunt Sunny Way
iPAD Italy Treasure Hunt Sunny WayiPAD Italy Treasure Hunt Sunny Way
iPAD Italy Treasure Hunt Sunny Way
Β 
Potentials of the internet and its resources to academic staff the case of tw...
Potentials of the internet and its resources to academic staff the case of tw...Potentials of the internet and its resources to academic staff the case of tw...
Potentials of the internet and its resources to academic staff the case of tw...
Β 
Uzay Ajans promosyon 2015_catalouge
Uzay Ajans promosyon 2015_catalougeUzay Ajans promosyon 2015_catalouge
Uzay Ajans promosyon 2015_catalouge
Β 
Trade Intelligence - ITF Indian Case study TJ final
Trade Intelligence - ITF Indian Case study TJ finalTrade Intelligence - ITF Indian Case study TJ final
Trade Intelligence - ITF Indian Case study TJ final
Β 
Los adverbios preposiciones ,conjunciones e interjecciones.
Los adverbios preposiciones ,conjunciones e interjecciones.Los adverbios preposiciones ,conjunciones e interjecciones.
Los adverbios preposiciones ,conjunciones e interjecciones.
Β 
Defensa del articulo
Defensa del articuloDefensa del articulo
Defensa del articulo
Β 
Local fare how to
Local fare how toLocal fare how to
Local fare how to
Β 
Contaminacion (entrega abril 15)
Contaminacion (entrega abril 15)Contaminacion (entrega abril 15)
Contaminacion (entrega abril 15)
Β 
Ketchum Change - Cracking the Culture Code
Ketchum Change - Cracking the Culture CodeKetchum Change - Cracking the Culture Code
Ketchum Change - Cracking the Culture Code
Β 
Informatica empresarial 1 trabajo
Informatica empresarial 1 trabajoInformatica empresarial 1 trabajo
Informatica empresarial 1 trabajo
Β 
Tia maria marycielo oscco guillen
Tia maria marycielo oscco guillenTia maria marycielo oscco guillen
Tia maria marycielo oscco guillen
Β 
Paradigmas educativos
Paradigmas educativosParadigmas educativos
Paradigmas educativos
Β 
Review of network diagram
Review of network diagramReview of network diagram
Review of network diagram
Β 
Airflow and patient perceived improvement following rhinoplastic correction o...
Airflow and patient perceived improvement following rhinoplastic correction o...Airflow and patient perceived improvement following rhinoplastic correction o...
Airflow and patient perceived improvement following rhinoplastic correction o...
Β 

More from drayertaurus

Tugasmatematikakelompok 150715235527-lva1-app6892
Tugasmatematikakelompok 150715235527-lva1-app6892Tugasmatematikakelompok 150715235527-lva1-app6892
Tugasmatematikakelompok 150715235527-lva1-app6892drayertaurus
Β 
Tugas2 matematika
Tugas2 matematikaTugas2 matematika
Tugas2 matematikadrayertaurus
Β 
Tugas1 matematika
Tugas1 matematikaTugas1 matematika
Tugas1 matematikadrayertaurus
Β 
Tugas matematika
Tugas matematikaTugas matematika
Tugas matematikadrayertaurus
Β 
Tugas matematika 1
Tugas matematika 1Tugas matematika 1
Tugas matematika 1drayertaurus
Β 

More from drayertaurus (17)

Bab 4 mtk
Bab 4 mtkBab 4 mtk
Bab 4 mtk
Β 
Bab 3 mtk
Bab 3 mtkBab 3 mtk
Bab 3 mtk
Β 
Bab 2 mtk
Bab 2 mtkBab 2 mtk
Bab 2 mtk
Β 
Bab 4 mtk
Bab 4 mtkBab 4 mtk
Bab 4 mtk
Β 
Bab 3 mtk
Bab 3 mtkBab 3 mtk
Bab 3 mtk
Β 
Bab 2 mtk
Bab 2 mtkBab 2 mtk
Bab 2 mtk
Β 
Tugas5
Tugas5Tugas5
Tugas5
Β 
Tugas4
Tugas4Tugas4
Tugas4
Β 
Tugas3
Tugas3Tugas3
Tugas3
Β 
Tugas2b
Tugas2bTugas2b
Tugas2b
Β 
Tugas1b
Tugas1bTugas1b
Tugas1b
Β 
Tugasmatematikakelompok 150715235527-lva1-app6892
Tugasmatematikakelompok 150715235527-lva1-app6892Tugasmatematikakelompok 150715235527-lva1-app6892
Tugasmatematikakelompok 150715235527-lva1-app6892
Β 
Kelompok 13
Kelompok 13Kelompok 13
Kelompok 13
Β 
Tugas2 matematika
Tugas2 matematikaTugas2 matematika
Tugas2 matematika
Β 
Tugas1 matematika
Tugas1 matematikaTugas1 matematika
Tugas1 matematika
Β 
Tugas matematika
Tugas matematikaTugas matematika
Tugas matematika
Β 
Tugas matematika 1
Tugas matematika 1Tugas matematika 1
Tugas matematika 1
Β 

Barryalkahfi

  • 1. MATEMATIKA TUGAS 3 Disusunoleh: Nama : Barry Alkahfi Prodi : TeknikElektronika Kelas : 1E A Semester : 2 (Dua) TAHUN AJARAN 2014/2015 POLITEKNIK MANUFAKTUR NEGERI BANGKA BELITUNG KawasanIndustri Air KantungSungailiat, Bangka 33211 Telp. (0717) 93586, Fax. (0717) 93585 Email :polman@polman-babel.ac.id Website :www.polman-babel.ac.id
  • 2. 1. Hitunglah∫ (π‘₯12 βˆ’ 12 π‘₯5 + √π‘₯103 ) 𝑑π‘₯ ∫(π‘₯12 βˆ’ 12 π‘₯5 + √ π‘₯103 ) 𝑑π‘₯ = ∫ π‘₯12 βˆ’ 12π‘₯βˆ’5 + π‘₯ 10 3 𝑑π‘₯ = 1 13 π‘₯13 βˆ’ 12 βˆ’4 π‘₯βˆ’4 + 1 13 3 π‘₯ 13 3 + 𝐢 = 1 13 π‘₯13 + 3π‘₯βˆ’4 + 3 13 π‘₯ 13 3 + 𝐢 = 1 13 π‘₯13 + 3 π‘₯4 + 3 13 √ π‘₯133 + 𝐢 2. Hitunglah∫[cos(7π‘₯ βˆ’ 12) + 𝑠𝑒𝑐2(9π‘₯ βˆ’ 15)] 𝑑π‘₯ ∫[cos(7π‘₯ βˆ’ 12) + 𝑠𝑒𝑐2(9π‘₯ βˆ’ 15)] 𝑑π‘₯ = 1 7 sin(7π‘₯ βˆ’ 12)+ 1 9 tan(9π‘₯ βˆ’ 15) + 𝐢 3. Denganmenggunakancarasubstitusihitunglah∫ π‘₯2 √3+π‘₯3 𝑑π‘₯ ∫ π‘₯2 √3 + π‘₯3 𝑑π‘₯ = ∫ π‘₯2 .(3 + π‘₯3)βˆ’ 1 2 𝑑π‘₯ 𝑒 = 3 + π‘₯3 β†’ 𝑑𝑒 𝑑π‘₯ = 3π‘₯2 β†’ 𝑑π‘₯ = 𝑑𝑒 3π‘₯2 ∫ π‘₯2 . (3 + π‘₯3)βˆ’ 1 2 𝑑π‘₯ = ∫ π‘₯2 . 𝑒 βˆ’ 1 2 . 𝑑𝑒 3π‘₯2 = 1 3 ∫ 𝑒 βˆ’ 1 2 𝑑𝑒 = 1 3 . 1 1 2 𝑒 1 2 + 𝐢 = 2 3 √ 𝑒 + 𝐢 = 2 3 √3 + π‘₯3 + 𝐢 4. Denganmenggunakancarasubstitusihitunglah∫(2π‘₯ + 2)cos(5π‘₯2 + 10π‘₯ + 8) 𝑑π‘₯ ∫(2π‘₯ + 2)cos(5π‘₯2 + 10π‘₯ + 8) 𝑑π‘₯ 𝑒 = 5π‘₯2 + 10π‘₯ + 8 β†’ 𝑑𝑒 𝑑π‘₯ = 10π‘₯ + 10 β†’ 𝑑π‘₯ = 𝑑𝑒 10π‘₯ + 10 ∫(2π‘₯ + 2)cos(5π‘₯2 + 10π‘₯ + 8) 𝑑π‘₯ = ∫(2π‘₯ + 2).cos 𝑒 . 𝑑𝑒 10π‘₯ + 10 = ∫(2π‘₯ + 2).cos 𝑒 . 𝑑𝑒 5(2π‘₯ + 2) = 1 5 ∫cos 𝑒 𝑑𝑒
  • 3. = 1 5 sin 𝑒 + 𝐢 = 1 5 sin(5π‘₯2 + 10π‘₯ + 8) + 𝐢 5. Hitunglah integral parsildari∫ 2π‘₯. sin(12π‘₯ + 4) 𝑑π‘₯ ∫2π‘₯. sin(12π‘₯ + 4) 𝑑π‘₯ 𝑒 = 2π‘₯ β†’ 𝑑𝑒 𝑑π‘₯ = 2 β†’ 𝑑𝑒 = 2𝑑π‘₯ 𝑑𝑣 = sin(12π‘₯ + 4) 𝑑π‘₯ β†’ 𝑣 = ∫sin(12π‘₯ + 4) 𝑑π‘₯ = βˆ’ 1 12 cos(12π‘₯ + 4) ∫ 𝑒. 𝑑𝑣 = 𝑒. 𝑣 βˆ’ ∫ 𝑣 𝑑𝑒 ∫2π‘₯. sin(12π‘₯ + 4) 𝑑π‘₯ = 2π‘₯. βˆ’ 1 12 cos(12π‘₯ + 4) βˆ’ ∫ βˆ’ 1 12 cos(12π‘₯ + 4). 2𝑑π‘₯ = βˆ’ 1 6 π‘₯ cos(12π‘₯ + 4) + 2 [ 1 12 12 sin(12π‘₯ + 4)] + 𝐢 = βˆ’ 1 6 π‘₯ cos(12π‘₯ + 4) + 1 72 sin(12π‘₯ + 4) + 𝐢 6. Denganmenggunakanbantuantabelhitunglah integral dari∫ π‘₯3 π‘’βˆ’5π‘₯ 𝑑π‘₯ + π‘₯3 (turunan) π‘’βˆ’5π‘₯ (integral) - 3π‘₯2 βˆ’ 1 5 π‘’βˆ’5π‘₯ + 6π‘₯ 1 25 π‘’βˆ’5π‘₯ - 6 βˆ’ 1 125 π‘’βˆ’5π‘₯ + 0 1 625 π‘’βˆ’5π‘₯ = βˆ’ 1 5 π‘₯3 π‘’βˆ’5π‘₯ βˆ’ 3 25 π‘₯2 π‘’βˆ’5π‘₯ βˆ’ 6 125 π‘₯π‘’βˆ’5π‘₯ βˆ’ 6 625 π‘’βˆ’5π‘₯ + 𝐢
  • 4. 7. Hitung integral fungsirasionaldari∫ 3π‘₯ π‘₯2βˆ’2π‘₯βˆ’15 𝑑π‘₯ 3π‘₯ π‘₯2 βˆ’ 2π‘₯ βˆ’ 15 = 3π‘₯ (π‘₯ βˆ’ 5)(π‘₯ + 3) = 𝐴 ( π‘₯ βˆ’ 5) + 𝐡 ( π‘₯ + 3) π‘₯ βˆ’ 5 = 0 β†’ π‘₯ = 5 β†’ 𝐴 = 3.5 (5 + 3) = 15 8 π‘₯ + 3 = 0 β†’ π‘₯ = βˆ’3 β†’ 𝐡 = 3. βˆ’3 (βˆ’3 βˆ’ 5) = 9 8 ∫ 3π‘₯ π‘₯2 βˆ’ 2π‘₯ βˆ’ 15 𝑑π‘₯ = ∫ 15 8 ( π‘₯ βˆ’ 5) 𝑑π‘₯ + ∫ 9 8 ( π‘₯ + 3) 𝑑π‘₯ = 15 8 ln| π‘₯ βˆ’ 5| + 9 8 ln| π‘₯ + 3| + 𝐢 8. Hitunglah integral tentudari∫ (π‘₯4 + 5π‘₯ + 1 π‘₯3) 4 1 𝑑π‘₯ ∫(π‘₯4 + 5π‘₯ + 1 π‘₯3 ) 4 1 𝑑π‘₯ = ∫(π‘₯4 + 5π‘₯ + π‘₯βˆ’3 ) 4 1 𝑑π‘₯ = 1 5 π‘₯5 + 5 2 π‘₯2 βˆ’ 1 2 π‘₯βˆ’2 = 1 5 π‘₯5 + 5 2 π‘₯2 βˆ’ 1 2π‘₯2 = ( 1 5 . 45 + 5 2 . 42 βˆ’ 1 2.42 ) βˆ’ ( 1 5 . 15 + 5 2 . 12 βˆ’ 1 2.12 ) = ( 1024 5 + 40 βˆ’ 1 32 ) βˆ’ ( 1 5 + 5 2 βˆ’ 1 2 ) = 1024 5 βˆ’ 1 5 βˆ’ 1 32 βˆ’ 4 2 + 40 = 1023 5 βˆ’ 1 32 + 38 = 32736 βˆ’ 5 + 6080 160 = 38811 160 9. Tentukanluasdaerah yang dibatasiolehkurva𝑦 = π‘₯2 + 4 dan garis 𝑦 = βˆ’π‘₯ + 16 𝑦1 = 𝑦2 β†’ π‘₯2 + 4 = βˆ’π‘₯ + 16 π‘₯2 + π‘₯ βˆ’ 12 = 0 ( π‘₯ + 4)( π‘₯ βˆ’ 3) = 0 π‘₯ = βˆ’4 π‘Žπ‘‘π‘Žπ‘’ π‘₯ = 3 𝐿 = ∫(βˆ’π‘₯ + 16) βˆ’ ( π‘₯2 + 4) 3 βˆ’4 𝑑π‘₯ = ∫(βˆ’π‘₯2 βˆ’ π‘₯ + 12) 3 βˆ’4 𝑑π‘₯ = βˆ’ 1 3 π‘₯3 βˆ’ 1 2 π‘₯2 + 12π‘₯ = (βˆ’ 1 3 . 33 βˆ’ 1 2 . 32 + 12.3) βˆ’ (βˆ’ 1 3 . βˆ’43 βˆ’ 1 2 . βˆ’42 + 12. βˆ’4) = (βˆ’9 βˆ’ 9 2 + 36) βˆ’ ( 64 3 βˆ’ 8 βˆ’ 48) = 27 βˆ’ 9 2 βˆ’ 64 3 + 56 = βˆ’ 64 3 βˆ’ 9 2 + 83
  • 5. = βˆ’128 βˆ’ 27 + 498 6 = 343 6 π‘ π‘Žπ‘‘π‘’π‘Žπ‘› π‘™π‘’π‘Žπ‘  10. Tentukanlah volume benda yang terbentukdenganmemutarmengelilingisumbu-y daridaerah yang dibatasioleh𝑦 = 3π‘₯, 𝑦 = π‘₯, 𝑦 = 0 dan garis 𝑦 = 3 𝑦 = 3π‘₯ β†’ π‘₯ = 1 3 𝑦 𝑦 = π‘₯ β†’ π‘₯ = 𝑦 𝑉 = πœ‹ ∫( π‘₯1 2 βˆ’ π‘₯2 2) 3 0 𝑑𝑦 = πœ‹ ∫(𝑦2 βˆ’ ( 1 3 𝑦) 2 ) 3 0 𝑑𝑦 = πœ‹ ∫ (𝑦2 βˆ’ 1 9 𝑦2 ) 3 0 𝑑𝑦 = πœ‹ ∫ 8 9 𝑦2 3 0 𝑑𝑦 = πœ‹ [ 8 9 3 𝑦3 ] = πœ‹ [ 8 27 𝑦3 ] = πœ‹ [ 8 27 . 33 βˆ’ 8 27 . 03 ] = πœ‹[8 βˆ’ 0] = 8πœ‹ π‘ π‘Žπ‘‘π‘’π‘Žπ‘› π‘£π‘œπ‘™π‘’π‘šπ‘’