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

Paper Info

Year :

1978

Title :

Mathematics (Core)

Exam :

JAMB Exam

Paper 1 | Objectives

21 - 30 of 48 Questions

#	Question	Ans
21.	A man runs a distance of 9km at a constant speed for the first 4 km and then 2 km\h faster for the rest of the distance. The whole run takes him one hour. His average speed for the first 4 km is A. 6 km/h B. 8 km/h C. 9 km\h D. 11 km\h E. 13 km\h Show Content Detailed Solution Let the average speed for the first 4 km = x km/h. Hence, the last 5 km, speed = (x + 2) km/h Recall: \(Time = \frac{Distance}{Speed}\) Total time = 1 hour. \(\therefore \frac{4}{x} + \frac{5}{x + 2} = 1\) \(\frac{4(x + 2) + 5x}{x(x + 2)} = 1\) \(9x + 8 = x^{2} + 2x\) \(x^{2} + 2x - 9x - 8 = 0 \implies x^{2} - 7x - 8 = 0\) \(x^{2} - 8x + x - 8 = 0\) \(x(x - 8) + 1(x - 8) = 0\) \(x = -1; x = 8\) Since speed cannot be negative, x = 8km/h.	B
22.	A pyramid is constructed on a cuboid. The figure has A. twelve faces B. thirteen vertices C. fourteen edges D. fifteen edges E. sixteen edges Show Content Detailed Solution The pyramid has 8 edges in itself while the cuboid has 12 edges. When merging the two shapes together, the edge of the base of the pyramid becomes same as the edges of the top of the cuboid. Hence, the new structure will have (12 + 8) - 4 = 16 edges.	E
23.	In a geometric progression, the first term is 153 and the sixth term is \(\frac{17}{27}\). The sum of the first four terms is A. \(\frac{860}{3}\) B. \(\frac{680}{3}\) C. \(\frac{608}{3}\) D. \(\frac{680}{3}\) Show Content Detailed Solution a = 153 - 1st term, 6th term = \(\frac{17}{27}\) nth term = arⁿ S_n = a(1 - rⁿ) where r < 1 6th term = 153\(\frac{1 - 0.4^4}{1 - 0.4}\) = \(\frac{680}{3}\)	B
24.	An arithmetic progression has first term 11 and fourth term 32. The sum of the first nine terms is A. 351 B. 531 C. 135 D. 153 Show Content Detailed Solution 1st term a = 11, 4th term = 32 nth term = a + (n - 1)d 4th term = 11 = (4 - 1)d = 11 + 3d = 32 3d = 21 d = 7 s_n = n(2a + (n - 1)d) s_n = \(\frac{9}{2}\)(2 \times 11) + (9 - 1)7 \(\frac{9}{2}\)(22 + 56) = \(\frac{9}{2}\) x 78 = 351	A
25.	A triangle has angles 30o, 15o and 135o. The side opposite to the angle 30o is length 6cm. The side opposite to the angle 135o is equal to A. 12cm B. 6cm C. 6\(\sqrt{2}\)cm D. 12\(\sqrt{2}\)cm Show Content Detailed Solution \(\frac{6}{\sin 30}\) = \(\frac{x}{\sin 135}\) \(\frac{6}{\sin 30}\) = \(\frac{x}{\sin 45}\) x = \(\frac{6 \times \sin 45}{\sin 30}\) = \(6 \sqrt{2}\)cm	C
26.	A regular hexagon is constructed inside a circle of diameter 12cm. The area of the hexagon is A. 36\(\pi\)cm² B. 54\(\sqrt{3}\)cm² C. \(\sqrt{3}\)cm² D. \(\frac{1}{x - 1}\) Show Content Detailed Solution Sum of interior angle of hexagon = [2(6) - 4]90o = 720o sum of central angle = 360o Each central angle = \(\frac{360}{6}\) = 60o Area of Hexagon = \(\frac{1}{2}\) x 6 x 6 sin 60o \(\frac{36 \times 6\sqrt{3}}{2 \times 2}\) = \(54 \sqrt{3}\)cm2	B
27.	In a soccer competition in one season, a club had scored the following goals: 2, 0, 3, 3, 2, 1, 4, 0, 0, 5, 1, 0, 2, 2, 1, 3, 1, 4, 1 and 1. The mean, median and mode are respectively A. 1, 1.8 and 1.5 B. 1.8, 1.5 and 1 C. 1.8, 1 and 1.5 D. 1.51, 1 and 1.8 E. 1.5, 1.8 and 1 Show Content Detailed Solution By re-arranging the goals in ascending order 0. 0. 0. 0. 0, 1. 1. 1. 1. 1. 1, 2, 2, 2, 2, 3, 3, 3, 4, 4, 5. Mean = \(\frac{36}{20}\) = 1.8 Median = \(\frac{1 + 2}{2}\) = \(\frac{3}{2}\) = 1.5 Mode = 1 = 1.8, 1.5 and 1	B
28.	If sec\(^2\) \(\theta\) + tan\(^2\) \(\theta\) = 3, then the angle \(\theta\) is equal to A. 30^o B. 45^o C. 60^o D. 90^o E. 105^o Show Content Detailed Solution sec\(^2\) \(\theta\) + tan\(^2\) \(\theta\) = 3 Where 1 + tan\(^2\) \(\theta\) = sec\(^2\) \(\theta\) 1 + tan\(^2\) \(\theta\) + tan\(^2\) \(\theta\) = 3 2 tan\(^2\) \(\theta\) = 2 tan\(^2\) \(\theta\) = 1 tan\(\theta\) = √1 where √1 = 1 tan\(\theta\) = 1 And tan 45° = 1 ∴ \(\theta\) = 45°	B
29.	A hollow right prism of equilateral triangular base of side 4cm is filled with water up to a certain height. If a sphere of radius \(\frac{1}{2}\)cm is immersed in the water, then the rise of water is A. 1cm B. \(\sqrt{\frac{3\pi}{24}}\) C. \(\frac{\pi}{24\sqrt{3}}\) D. 24\(\sqrt{3}\) Show Content Detailed Solution The rise of water is equivalent to the volume of the sphere of radius \(\frac{1}{2}\)cm immersed x \(\frac{1}{\text{No. of sides sq. root 3}}\) Vol. of sphere of radius = 4\(\pi\) x \(\frac{1}{8}\) x \(\frac{1}{3}\) - (\(\frac{1}{2}\))³ = \(\frac{1}{8}\) = \(\frac{\pi}{6}\) x \(\frac{1}{4\sqrt{3}}\) = \(\frac{\pi}{24\sqrt{3}}\)	C
30.	The set of value of x and y which satisfies the equations x² - y - 1 = 0 and y - 2x + 2 = 0 is A. 1, 0 B. 1, 1 C. 2, 2 D. 0, 2 E. 1, 2 Show Content Detailed Solution x² - y - 1 = 0.......(i) y - 2x + 2 = 0......(ii) By re-arranging eqn. (ii) y = 2x - 2........(iii) Subst. eqn. (iii) in eqn (i) x² - (2x - 2) - 1 = 0 x² - 2x + 1 = 0 = (x - 1) = 0 When x - 1 = 0 x = 1 Sub. for x = 1 in eqn. (iii) y = 2 - 2 = 0 x = 1, y = 0	A

21.	A man runs a distance of 9km at a constant speed for the first 4 km and then 2 km\h faster for the rest of the distance. The whole run takes him one hour. His average speed for the first 4 km is A. 6 km/h B. 8 km/h C. 9 km\h D. 11 km\h E. 13 km\h Show Content Detailed Solution Let the average speed for the first 4 km = x km/h. Hence, the last 5 km, speed = (x + 2) km/h Recall: \(Time = \frac{Distance}{Speed}\) Total time = 1 hour. \(\therefore \frac{4}{x} + \frac{5}{x + 2} = 1\) \(\frac{4(x + 2) + 5x}{x(x + 2)} = 1\) \(9x + 8 = x^{2} + 2x\) \(x^{2} + 2x - 9x - 8 = 0 \implies x^{2} - 7x - 8 = 0\) \(x^{2} - 8x + x - 8 = 0\) \(x(x - 8) + 1(x - 8) = 0\) \(x = -1; x = 8\) Since speed cannot be negative, x = 8km/h.	B
22.	A pyramid is constructed on a cuboid. The figure has A. twelve faces B. thirteen vertices C. fourteen edges D. fifteen edges E. sixteen edges Show Content Detailed Solution The pyramid has 8 edges in itself while the cuboid has 12 edges. When merging the two shapes together, the edge of the base of the pyramid becomes same as the edges of the top of the cuboid. Hence, the new structure will have (12 + 8) - 4 = 16 edges.	E
23.	In a geometric progression, the first term is 153 and the sixth term is \(\frac{17}{27}\). The sum of the first four terms is A. \(\frac{860}{3}\) B. \(\frac{680}{3}\) C. \(\frac{608}{3}\) D. \(\frac{680}{3}\) Show Content Detailed Solution a = 153 - 1st term, 6th term = \(\frac{17}{27}\) nth term = arⁿ S_n = a(1 - rⁿ) where r < 1 6th term = 153\(\frac{1 - 0.4^4}{1 - 0.4}\) = \(\frac{680}{3}\)	B
24.	An arithmetic progression has first term 11 and fourth term 32. The sum of the first nine terms is A. 351 B. 531 C. 135 D. 153 Show Content Detailed Solution 1st term a = 11, 4th term = 32 nth term = a + (n - 1)d 4th term = 11 = (4 - 1)d = 11 + 3d = 32 3d = 21 d = 7 s_n = n(2a + (n - 1)d) s_n = \(\frac{9}{2}\)(2 \times 11) + (9 - 1)7 \(\frac{9}{2}\)(22 + 56) = \(\frac{9}{2}\) x 78 = 351	A
25.	A triangle has angles 30o, 15o and 135o. The side opposite to the angle 30o is length 6cm. The side opposite to the angle 135o is equal to A. 12cm B. 6cm C. 6\(\sqrt{2}\)cm D. 12\(\sqrt{2}\)cm Show Content Detailed Solution \(\frac{6}{\sin 30}\) = \(\frac{x}{\sin 135}\) \(\frac{6}{\sin 30}\) = \(\frac{x}{\sin 45}\) x = \(\frac{6 \times \sin 45}{\sin 30}\) = \(6 \sqrt{2}\)cm	C

26.	A regular hexagon is constructed inside a circle of diameter 12cm. The area of the hexagon is A. 36\(\pi\)cm² B. 54\(\sqrt{3}\)cm² C. \(\sqrt{3}\)cm² D. \(\frac{1}{x - 1}\) Show Content Detailed Solution Sum of interior angle of hexagon = [2(6) - 4]90o = 720o sum of central angle = 360o Each central angle = \(\frac{360}{6}\) = 60o Area of Hexagon = \(\frac{1}{2}\) x 6 x 6 sin 60o \(\frac{36 \times 6\sqrt{3}}{2 \times 2}\) = \(54 \sqrt{3}\)cm2	B
27.	In a soccer competition in one season, a club had scored the following goals: 2, 0, 3, 3, 2, 1, 4, 0, 0, 5, 1, 0, 2, 2, 1, 3, 1, 4, 1 and 1. The mean, median and mode are respectively A. 1, 1.8 and 1.5 B. 1.8, 1.5 and 1 C. 1.8, 1 and 1.5 D. 1.51, 1 and 1.8 E. 1.5, 1.8 and 1 Show Content Detailed Solution By re-arranging the goals in ascending order 0. 0. 0. 0. 0, 1. 1. 1. 1. 1. 1, 2, 2, 2, 2, 3, 3, 3, 4, 4, 5. Mean = \(\frac{36}{20}\) = 1.8 Median = \(\frac{1 + 2}{2}\) = \(\frac{3}{2}\) = 1.5 Mode = 1 = 1.8, 1.5 and 1	B
28.	If sec\(^2\) \(\theta\) + tan\(^2\) \(\theta\) = 3, then the angle \(\theta\) is equal to A. 30^o B. 45^o C. 60^o D. 90^o E. 105^o Show Content Detailed Solution sec\(^2\) \(\theta\) + tan\(^2\) \(\theta\) = 3 Where 1 + tan\(^2\) \(\theta\) = sec\(^2\) \(\theta\) 1 + tan\(^2\) \(\theta\) + tan\(^2\) \(\theta\) = 3 2 tan\(^2\) \(\theta\) = 2 tan\(^2\) \(\theta\) = 1 tan\(\theta\) = √1 where √1 = 1 tan\(\theta\) = 1 And tan 45° = 1 ∴ \(\theta\) = 45°	B
29.	A hollow right prism of equilateral triangular base of side 4cm is filled with water up to a certain height. If a sphere of radius \(\frac{1}{2}\)cm is immersed in the water, then the rise of water is A. 1cm B. \(\sqrt{\frac{3\pi}{24}}\) C. \(\frac{\pi}{24\sqrt{3}}\) D. 24\(\sqrt{3}\) Show Content Detailed Solution The rise of water is equivalent to the volume of the sphere of radius \(\frac{1}{2}\)cm immersed x \(\frac{1}{\text{No. of sides sq. root 3}}\) Vol. of sphere of radius = 4\(\pi\) x \(\frac{1}{8}\) x \(\frac{1}{3}\) - (\(\frac{1}{2}\))³ = \(\frac{1}{8}\) = \(\frac{\pi}{6}\) x \(\frac{1}{4\sqrt{3}}\) = \(\frac{\pi}{24\sqrt{3}}\)	C
30.	The set of value of x and y which satisfies the equations x² - y - 1 = 0 and y - 2x + 2 = 0 is A. 1, 0 B. 1, 1 C. 2, 2 D. 0, 2 E. 1, 2 Show Content Detailed Solution x² - y - 1 = 0.......(i) y - 2x + 2 = 0......(ii) By re-arranging eqn. (ii) y = 2x - 2........(iii) Subst. eqn. (iii) in eqn (i) x² - (2x - 2) - 1 = 0 x² - 2x + 1 = 0 = (x - 1) = 0 When x - 1 = 0 x = 1 Sub. for x = 1 in eqn. (iii) y = 2 - 2 = 0 x = 1, y = 0	A