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

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SOLUCIONARIO DE ARITMETICA DE BALDOR-20.16 1 4 = 16 × 4 + 14= 654-12.65 7 8065 × 80 + 7= = 5 20780 80-5. 108/12819 = 9EJERCICIO 10118 2 3 = 18 × 3 + 23= 563-13.5 3106 = 5 × 106 + 3106= 533106-6. 125/2510812 = 9Convertir en quebrados:-1.15 3 8 = 15 × 8 + 3 = 1238 8-14.-15.8 1102 = 8 × 102 + 1102= 817102-7. 7/212525 = 5-2.-3.12 3 1112 × 11 + 3= = 13511 1116 7 8 = 16 × 8 + 7 = 1358 8-16.-17.25 7 7390 193125 × 73 + 7= = 1 83273 7390 × 31 + 19= = 2 80931 31-8. 5/272 = 3 1 2-4.-5.19 3 1120 3 1919 × 11 + 3= = 21211 1120 × 19 + 3= = 38319 19-18.-19.90 1937101 131890 × 37 + 19= = 3 34937 37101 × 18 + 13= = 1 8311818-9. 8/552 = 2 1 2-6.-7.17 5 1823 4 2317 × 18 + 5= = 31118 1823 × 23 + 4= = 53323 23-20.102 1517500 8 67EJERCICIO 102102 × 17 + 15= = 1 7491717500 × 67 + 8 33 508= =6767-10. 19/785 = 1 3 5-8.-9.31 5 3142 7 2531 × 31 + 5= = 96631 3142 × 25 + 7= = 1 05725 25Hallar por simple inspección, los enteroscontenidos en:-1. 12/3-2. 21/7123 = 4-11. 25/8197 = 2 5 7-10.-11.53 9 1760 3 1759 × 17 + 9= = 91017 1760 × 17 + 3= = 1 02317 17-3. 32/8-4. 81/9217 = 3328 = 4-12. 31/4258 = 3 1 8LEONARDO F. APALA TITO 134
SOLUCIONARIO DE ARITMETICA DE BALDOR314 = 7 3 410219 = 5 7 19-13. 63/10-20. 112/1135461 = 5 4961-7. 401/836310 = 6 3 1011211 = 10 2 11-14. 80/11EJERCICIO 103Hallar los enteros contenidos en:-1. 115/35-8. 563/5440183 = 4 69838011 = 7 3 11-15. 85/19-2. 174/5311535 = 3 1035-9. 601/217563 23= 1054 548519 = 4 9 19-16. 93/30-3. 195/6317453 = 3 1553-10. 743/165601217 = 2 1672179330 = 3 3 30-17. 95/18-4. 215/7319563 = 3 6 63-11. 815/237743165 = 4 831659518 = 5 5 18-18. 100/11-5. 318/9021573 = 2 6973-12. 1 001/184815237 = 3 10423710011 = 9 1 11-19. 102/19-6. 354/6131890 = 3 4890-13. 1 563/3151 001184 = 5 81184LEONARDO F. APALA TITO 135
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Solucionario completo de Aritmetica de Baldor (Por Leonardo F. Apala T.)

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