Solucionario completo de Aritmetica de Baldor (Por Leonardo F. Apala T.)

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SOLUCIONARIO DE ARITMETICA DE BALDORApotema: a = 5 mÁrea:A =a × ln2= 5 × 7.265 × 52= 90.8125 m 2-21. Expresar en áreas la superficie de unhexágono regular de 3.46 m de lado y 3 mde apotema.Área:A =R. Lado: 3.46 m; Hexágono: n = 6;a × ln2Siendo en áreas:Apotema: a = 3 m= 3 × 3.46 × 62= 31.14 m 231.14 m 2 × 1 a = 0.3114 a100 m2 -22. Expresar en denominado métricodecimal el área de un dodecágono regularcuyo lado mide 3.75 varas cubanas y laapotema 7 varas cubanas.R. Lado: 3.75 varas0.848 m3.75 v × = 3.18 m1 vDodecágono: n = 12Apotema: a = 7 varasÁrea:A =0.848 m7 v × = 5.936 m1 va × ln2=5.936 × 3.18 × 122A = 226.517762A = 113.25888 m 2 = 113.25888 caSiendo en denominado métrico decimal:113.25888 ca= 1 a 13 ca 25 dm 2 88 cm 2 80 mm 2-23. El corral es una medida superficialcubana circular cuyo radio es una leguacubana. ¿Cuántas caballerías hay en uncorral?R. Radio: 1 legua = 4 240 mÁrea: A = π × r 2 = π × 4 240 23.1416 × 17 977 600= 56 478 296.09 m 2Siendo en caballerías:56 478 296.09 m 2 1 cab×134 202 m 2= 420.84 cab-24. ¿Cuánto importa una extensión deterreno circular cuyo radio es 80 varascubanas a razón de $32 el cordelcuadrado?R. Radio: r = 80 varasArea: A = π × r 2A = π × 80 2 = 20 106.19 v 2Siendo en cord. 2 :20 106.19 v 2 × 1 cord.2576 v2 = 34.9 cord.2Entonces importa la extension:$32(34.9) = $1 170-25. ¿Cuál es la superficie de un canterosemicircular de 3 m de radio?R. Radio: 3 mÁrea del semicírculo:A =π × r22π × 32= = 28.272 2= 14.14 m 2-26. Un cantero circular de 4 m dediámetro tiene una cerca que se pagó a$90 el m. ¿Cuánto importo dicha cerca?R. Diametro: D = 4 mLongitud de la circunferencia:C = π × 2r = π × DC = 3.1416 × 4 = 12.57 mLuego importara dicha cerca:$90(12.57) = $1 131-27. Se compra un terreno semicircular de10 m de radio a $200 la ca y además se lapuso a todo el una cerca que se pagó a $50el m. ¿Cuánto se pagó en total por elterreno y su cerca?R. Radio: r = 10 mÁrea:A =π × r22=3.1416 × 1022A = 157.08 m 2 = 157.08 caSiendo lo que importa el terreno:$200(157.08) = $31 416= 314.162Longitud de la semicircunferencia es:C =π × 2r+ D = π × r + 2r2C = r(π + 2)C = 10(3.1416 + 2) = 10 × 5.1416= 51.416 mSiendo lo que importa la cerca:$50 × 51.416 = $2 571Entonces en total pago:$31 416 + $2 571 = $33 987EJERCICIO 274Hallar el área de las figuras que siguen.(Para ello, primero escríbase la fórmula delárea de la figura de que se trate y con ellavera los datos que necesita. Luego fíjeseen cuales datos no se dan en la figura ytrácelos. Después, con una reglitagraduada en mm mida todos los datos quehagan falta para aplicar la formula yaplique está sustituyendo las letras por losdatos que ha medido.)-1.b = 30 mmh = 40 mm-2.A =30 × 402A = b × h2= 1 200 = 600 mm 22LEONARDO F. APALA TITO 358
SOLUCIONARIO DE ARITMETICA DE BALDOR-6.b = 20 mmA = b × h2b + b`A = h (2 )Base menor: b` = 26 mmBase mayor: b = 30 mmApotema: a = 12 mmLado: 10 mma × lnA =2h = 40 mm-3.A =20 × 402= 800 = 400 mm22Altura: h = 25 mm26 + 30A = 25 ( ) = 25 × 282= 700 mm 2-7.Octágono: n = 8-10.A =12 × 10 × 82= 960 = 480 mm22d = 32 mm-4.A =32 × 202A =d × d`2d` = 20 mm= 640 = 320 mm22b + b`A = h (2 )Base menor: b = 15 mmBase mayor: b` = 30 mmAltura: h = 15 mm-8.15 + 30A = 15 ( ) = 15 × 22.52= 337.5 mm 2Radio: r = 15 mmA = π × r 2A = π × 15 2 = 706.86 mm 2EJERCICIO 275-1. Hallar el área de la cuadrilátero ABCD,sabiendo que AC = 40 m; BE = 15 m y DF =20 m.A = l 2Lado: 30 mmA = 30 2 = 900 mm 2-5.A = b × hb = 30 mm h = 25 mmA = 30 × 25 = 750 mm 2Apotema: a = 10 mmLado: 15 mmPentágono: n = 5-9.A =10 × 15 × 52a × lnA =2= 750 = 375 mm22Área: ABCBase: b = AC = 40 mAltura: h = BE = 15 mA 1 = b × h2Área: ACD=40 × 152Base: b = AC = 40 mAltura: h = DF = 20 m= 600 = 300 m22LEONARDO F. APALA TITO 359
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Solucionario completo de Aritmetica de Baldor (Por Leonardo F. Apala T.)

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