Mathematics (Core), 1978, JAMB Exam, Exam, Paper 1 | Objectives

Paper Info

Year :

1978

Title :

Mathematics (Core)

Exam :

JAMB Exam

Paper 1 | Objectives

1 - 10 of 48 Questions

#	Question	Ans
1.	A rectangular picture 6cm by 8cm is enclosed by a frame \(\frac{1}{2}\)cm wide. Calculate the area of the frame A. 15sq.cm B. 20sq.cm C. 13sq.cm D. 16sq.cm E. 17sq.cm Show Content Detailed Solution Area of the rectangular picture = L x B = 8 x 6 = 48 sq.cm. Area of the whole surface (which is gotten by adding \(\frac{1}{2}\) on every side to the original picture size) is 9 x 7 = 63 sq. cm area of the frame is 63 - 48 = 15 sq. cm	A
2.	The sum of \(3\frac{7}{8}\) and \(1\frac{1}{3}\) is less than the difference between \(\frac{1}{8}\) and \(1\frac{2}{3}\) by: A. 3\(\frac{2}{3}\) B. 5\(\frac{1}{4}\) C. 6\(\frac{1}{2}\) D. 8 E. 8\(\frac{1}{8}\) Show Content Detailed Solution \(3\frac{7}{8} + 1\frac{1}{3} = 4\frac{21 + 8}{24}\) = \(4\frac{29}{24}\) \(\equiv 5\frac{5}{24}\) \(1\frac{2}{3} - \frac{1}{8} = \frac{5}{3} - \frac{1}{8}\) = \(\frac{40 - 3}{24}\) = \(\frac{37}{24}\) \(5\frac{5}{24} - \frac{37}{24} = \frac{125}{24} - \frac{37}{24}\) = \(\frac{88}{24}\) = 3\(\frac{2}{3}\)	A
3.	Multiply (x + 3y + 5) by (2x2 + 5y + 2) A. 2x² + 3yx² + 10xy + 15y² + 13y + 10x² + 2x + 10 B. 2x³ + 6yx² + 5xy + 15y² + 31y + 5x² + 2x + 10 C. 2x³ + 6xy² + 5xy + 15y² + 12y + 10x² + 2x = 10 D. 2x² + 6xy² + 5xy + 15y² + 13y + 10x² + 2x + 10 E. 2x³ + 2yx² + 10xy + 10y² + 31y + 5x² + 10 Show Content Detailed Solution \((x + 3y + 5)(2x^{2} + 5y + 2)\) = \(2x^{3} + 5xy + 2x + 6yx^{2} + 15y^{2} + 6y + 10x^{2} + 25y + 10\) = \(2x^{3} + 5xy + 2x + 6yx^{2} + 15y^{2} + 31y + 10x^{2} + 10\)	B
4.	Arrange \(\frac{3}{5}\),\(\frac{9}{16}\), \(\frac{34}{59}\) and \(\frac{71}{97}\) in ascending order of magnitude. A. \(\frac{3}{5}\), \(\frac{9}{16}\), \(\frac{34}{59}\), \(\frac{71}{97}\) B. \(\frac{9}{16}\), \(\frac{34}{59}\), \(\frac{3}{5}\) , \(\frac{71}{97}\) C. \(\frac{3}{5}\), \(\frac{9}{16}\), \(\frac{71}{97}\), \(\frac{34}{59}\) D. \(\frac{9}{16}\), \(\frac{3}{5}\), \(\frac{71}{97}\), \(\frac{34}{59}\) Show Content Detailed Solution \(\frac{3}{5}\) = 0.60, \(\frac{9}{16}\) = 0.56, \(\frac{34}{59}\) = 0.58, \(\frac{71}{97}\) = 0.73 Hence, \(\frac{9}{16} < \frac{34}{59} < \frac{3}{5} < \frac{71}{97}\)	B
5.	The sum of the progression is 1 + x + x2 + x3 + ...... A. \(\frac{1}{1 - x}\) B. \(\frac{1}{1 + x}\) C. \(\frac{1}{x - 1}\) D. \(\frac{1}{x}\) Show Content Detailed Solution Sum of n terms of Geometric progression is \(S_{n} = \frac{a(1 - r^n)}{1 - r}\) In the given series, a (the first term) = 1 and r (the common ratio) = x. \(S_{n} = \frac{1(1 - x^{n})}{1 - x}\) a = 1, and as n tends to infinity \(S_{n} = \frac{1}{1 - x}\)	A
6.	The number of telephone calls N between two cities A and B varies directly as the population P\(_{A}\), P\(_B\) respectively and inversely as the square of the distance D between A and B. Which of the following equations represents this relation? A. N = \(\frac{kp_A}{D^2} + {cp_B}{D^2}\) B. N = \(\frac{k P_{A} P_{B} }{D^2}\) C. N = \(\frac{kD_AP_D}{B^2}\) D. N = \(\frac{kD^2_AP_D}{B}\) Show Content Detailed Solution \(N \propto P_{A}\); \(N \propto P_{B}\); \(N \propto \frac{1}{D^{2}}\) \(\therefore N \propto \frac{P_{A} P_{B}}{D^{2}}\) \(N = \frac{k P_{A} P_{B}}{D^{2}}\)	B
7.	Find the square root of 170 - 20\(\sqrt{30}\) A. 2 \(\sqrt{10}\) - 5\(\sqrt{3}\) B. 2 \(\sqrt{5}\) - 5\(\sqrt{6}\) C. 5 \(\sqrt{10}\) - 2\(\sqrt{3}\) D. 3 \(\sqrt{5}\) - 8\(\sqrt{6}\) Show Content Detailed Solution \(\sqrt{170 - 20 \sqrt{30}} = \sqrt{a} - \sqrt{b}\) Squaring both sides, \(170 - 20\sqrt{30} = a + b - 2\sqrt{ab}\) Equating the rational and irrational parts, we have \(a + b = 170 ... (1)\) \(2 \sqrt{ab} = 20 \sqrt{30}\) \(2 \sqrt{ab} = 2 \sqrt{30 \times 100} = 2 \sqrt{3000} \) \(ab = 3000 ... (2)\) From (2), \(b = \frac{3000}{a}\) \(a + \frac{3000}{a} = 170 \implies a^{2} + 3000 = 170a\) \(a^{2} - 170a + 3000 = 0\) \(a^{2} - 20a - 150a + 3000 = 0\) \(a(a - 20) - 150(a - 20) = 0\) \(\text{a = 20 or a = 150}\) \(\therefore b = \frac{3000}{20} = 150 ; b = \frac{3000}{150} = 20\) \(\sqrt{170 - 20\sqrt{30}} =	B
8.	If x\(^2\) + 4 = 0, then x ? A. 4 B. -4 C. 2 D. -2 E. None of the above Show Content Detailed Solution x\(^2\) + 4 = 0 x\(^2\) = -4 You can't apply a square root to a negative number. So the answer is None of the above.	E
9.	What is the number whose logarithm to base 10 is 2.3482? A. 223 B. 2228 C. 2.235 D. 22.37 E. 0.2229 Show Content Detailed Solution \(\begin{array}{c\|c} Nos. & log \\ \hline 222.9 & 2.3482\end{array}\) N : b Look for the antilog of .3482 which gives 222.9	A
10.	Five years ago, a father was 3 times as old as his son, now their combined ages amount to 110years. thus, the present age of the father is A. 75 years B. 60 years C. 98 years D. 80 years E. 105 years Show Content Detailed Solution Let the present ages of father be x and son = y five years ago, father = x - 5 son = y - 5 x - 5 = 3(y - 5) x - 5 = 3y - 15 x - 3y = -15 + 5 = -10 ......(i) x + y = 110......(ii) eqn(ii) - eqn(i) 4y = 120 y = 30 sub for y = 30 in eqn(i) x -10 = 3(30) x -10 = 90 x = 80	D

1.	A rectangular picture 6cm by 8cm is enclosed by a frame \(\frac{1}{2}\)cm wide. Calculate the area of the frame A. 15sq.cm B. 20sq.cm C. 13sq.cm D. 16sq.cm E. 17sq.cm Show Content Detailed Solution Area of the rectangular picture = L x B = 8 x 6 = 48 sq.cm. Area of the whole surface (which is gotten by adding \(\frac{1}{2}\) on every side to the original picture size) is 9 x 7 = 63 sq. cm area of the frame is 63 - 48 = 15 sq. cm	A
2.	The sum of \(3\frac{7}{8}\) and \(1\frac{1}{3}\) is less than the difference between \(\frac{1}{8}\) and \(1\frac{2}{3}\) by: A. 3\(\frac{2}{3}\) B. 5\(\frac{1}{4}\) C. 6\(\frac{1}{2}\) D. 8 E. 8\(\frac{1}{8}\) Show Content Detailed Solution \(3\frac{7}{8} + 1\frac{1}{3} = 4\frac{21 + 8}{24}\) = \(4\frac{29}{24}\) \(\equiv 5\frac{5}{24}\) \(1\frac{2}{3} - \frac{1}{8} = \frac{5}{3} - \frac{1}{8}\) = \(\frac{40 - 3}{24}\) = \(\frac{37}{24}\) \(5\frac{5}{24} - \frac{37}{24} = \frac{125}{24} - \frac{37}{24}\) = \(\frac{88}{24}\) = 3\(\frac{2}{3}\)	A
3.	Multiply (x + 3y + 5) by (2x2 + 5y + 2) A. 2x² + 3yx² + 10xy + 15y² + 13y + 10x² + 2x + 10 B. 2x³ + 6yx² + 5xy + 15y² + 31y + 5x² + 2x + 10 C. 2x³ + 6xy² + 5xy + 15y² + 12y + 10x² + 2x = 10 D. 2x² + 6xy² + 5xy + 15y² + 13y + 10x² + 2x + 10 E. 2x³ + 2yx² + 10xy + 10y² + 31y + 5x² + 10 Show Content Detailed Solution \((x + 3y + 5)(2x^{2} + 5y + 2)\) = \(2x^{3} + 5xy + 2x + 6yx^{2} + 15y^{2} + 6y + 10x^{2} + 25y + 10\) = \(2x^{3} + 5xy + 2x + 6yx^{2} + 15y^{2} + 31y + 10x^{2} + 10\)	B
4.	Arrange \(\frac{3}{5}\),\(\frac{9}{16}\), \(\frac{34}{59}\) and \(\frac{71}{97}\) in ascending order of magnitude. A. \(\frac{3}{5}\), \(\frac{9}{16}\), \(\frac{34}{59}\), \(\frac{71}{97}\) B. \(\frac{9}{16}\), \(\frac{34}{59}\), \(\frac{3}{5}\) , \(\frac{71}{97}\) C. \(\frac{3}{5}\), \(\frac{9}{16}\), \(\frac{71}{97}\), \(\frac{34}{59}\) D. \(\frac{9}{16}\), \(\frac{3}{5}\), \(\frac{71}{97}\), \(\frac{34}{59}\) Show Content Detailed Solution \(\frac{3}{5}\) = 0.60, \(\frac{9}{16}\) = 0.56, \(\frac{34}{59}\) = 0.58, \(\frac{71}{97}\) = 0.73 Hence, \(\frac{9}{16} < \frac{34}{59} < \frac{3}{5} < \frac{71}{97}\)	B
5.	The sum of the progression is 1 + x + x2 + x3 + ...... A. \(\frac{1}{1 - x}\) B. \(\frac{1}{1 + x}\) C. \(\frac{1}{x - 1}\) D. \(\frac{1}{x}\) Show Content Detailed Solution Sum of n terms of Geometric progression is \(S_{n} = \frac{a(1 - r^n)}{1 - r}\) In the given series, a (the first term) = 1 and r (the common ratio) = x. \(S_{n} = \frac{1(1 - x^{n})}{1 - x}\) a = 1, and as n tends to infinity \(S_{n} = \frac{1}{1 - x}\)	A

6.	The number of telephone calls N between two cities A and B varies directly as the population P\(_{A}\), P\(_B\) respectively and inversely as the square of the distance D between A and B. Which of the following equations represents this relation? A. N = \(\frac{kp_A}{D^2} + {cp_B}{D^2}\) B. N = \(\frac{k P_{A} P_{B} }{D^2}\) C. N = \(\frac{kD_AP_D}{B^2}\) D. N = \(\frac{kD^2_AP_D}{B}\) Show Content Detailed Solution \(N \propto P_{A}\); \(N \propto P_{B}\); \(N \propto \frac{1}{D^{2}}\) \(\therefore N \propto \frac{P_{A} P_{B}}{D^{2}}\) \(N = \frac{k P_{A} P_{B}}{D^{2}}\)	B
7.	Find the square root of 170 - 20\(\sqrt{30}\) A. 2 \(\sqrt{10}\) - 5\(\sqrt{3}\) B. 2 \(\sqrt{5}\) - 5\(\sqrt{6}\) C. 5 \(\sqrt{10}\) - 2\(\sqrt{3}\) D. 3 \(\sqrt{5}\) - 8\(\sqrt{6}\) Show Content Detailed Solution \(\sqrt{170 - 20 \sqrt{30}} = \sqrt{a} - \sqrt{b}\) Squaring both sides, \(170 - 20\sqrt{30} = a + b - 2\sqrt{ab}\) Equating the rational and irrational parts, we have \(a + b = 170 ... (1)\) \(2 \sqrt{ab} = 20 \sqrt{30}\) \(2 \sqrt{ab} = 2 \sqrt{30 \times 100} = 2 \sqrt{3000} \) \(ab = 3000 ... (2)\) From (2), \(b = \frac{3000}{a}\) \(a + \frac{3000}{a} = 170 \implies a^{2} + 3000 = 170a\) \(a^{2} - 170a + 3000 = 0\) \(a^{2} - 20a - 150a + 3000 = 0\) \(a(a - 20) - 150(a - 20) = 0\) \(\text{a = 20 or a = 150}\) \(\therefore b = \frac{3000}{20} = 150 ; b = \frac{3000}{150} = 20\) \(\sqrt{170 - 20\sqrt{30}} =	B
8.	If x\(^2\) + 4 = 0, then x ? A. 4 B. -4 C. 2 D. -2 E. None of the above Show Content Detailed Solution x\(^2\) + 4 = 0 x\(^2\) = -4 You can't apply a square root to a negative number. So the answer is None of the above.	E
9.	What is the number whose logarithm to base 10 is 2.3482? A. 223 B. 2228 C. 2.235 D. 22.37 E. 0.2229 Show Content Detailed Solution \(\begin{array}{c\|c} Nos. & log \\ \hline 222.9 & 2.3482\end{array}\) N : b Look for the antilog of .3482 which gives 222.9	A
10.	Five years ago, a father was 3 times as old as his son, now their combined ages amount to 110years. thus, the present age of the father is A. 75 years B. 60 years C. 98 years D. 80 years E. 105 years Show Content Detailed Solution Let the present ages of father be x and son = y five years ago, father = x - 5 son = y - 5 x - 5 = 3(y - 5) x - 5 = 3y - 15 x - 3y = -15 + 5 = -10 ......(i) x + y = 110......(ii) eqn(ii) - eqn(i) 4y = 120 y = 30 sub for y = 30 in eqn(i) x -10 = 3(30) x -10 = 90 x = 80	D