2019 WAEC MATHEMATICS OBJ & ESSAY QUESTIONS AND ANSWERS NOW AVAILABLE

subscribe for the expo now if you don’t want late answers

MATHS OBJ
1-10: CABDBADCBC
11-20: BCBCBBAACD
21-30: BCCBCCABBA
31-40: AABDDCDDCC
41-50: BBCDCCACCD

(1a)
110x = 40s
Converting both sides to base 10, we have;
(1xX²)+(1xX¹)+(0×X^0) = (4×5¹) + (0×5^0)
X² + X + 0 = 20 + 0
X² + X – 20 = 0
X² + 5x – 4x – 20 = 0
X(x+5)-4(x+5) = 0
(x-4)(x+5) = 0
Since X must be positive
X – 4 = 0
X = 4

(1b)
15/√75 + √108 + √432
= 15/√25×3 + √36×3 + √144×3
=15/5√3 + 6√3 + 12√3
= 3/√3 + 18√3
=3√3/3 + 18√3
= √3 + 18√3
= 19√3

==================================================

(2a)
The equation of the line through the points
A(-2,7) and B(2,-3)
Using the equation Y=mx+b
Where m=slope of the gradient, b=the intercept at the vertical axis
Hence slope=Change in Y/Change in X
=>Y2-Y1/X2-X1=Y-y1/X-x1
=(-3-7)/(2–2)=Y-7/X+2
=-10/4=(Y-7)/(X+2)
=4(y-2)=-10(x+2)
4y-28=-10x-20
4y=-10x+8
5x+2y=4

(2b)
(5b-a)/(8b+3a)=1/5
5(5b-a)=1(8b+3a)
25b-5a=8b+3a
25b-8b=3a+5a
17b=8a
Therefore a/b=17/8

===================================================

(3a)
Ali : Masah : Yusuf = #420,000
3 : 5 : 8
Sum of ratio shared :
3 + 5 + 8 = 16
Therefore
Ali share = 3/16 × 420,000
= #78,750

Musah Share = 5/16 × 420,000
=#131,250

Yusuf share = 8/16 × 420,000
=#210,000

Therefore
Sum of Ali + Yusuf
=#78,750 + #210,000
= #288,750

(3b)
Solve : 2(1/8)^2 = 32^x-1
2^1 × (8^-1)^x = 32^x-1
2^1 × (2^-3(-1))^x = 2^5(x – 1)
2^1 × (2^-3)^x = 2^5x – 5
2^1 × 2^-3x = 2^5x – 5
2^1+(-3x) = 2^5x – 5
2^1-3x = 2^5x – 5
1 – 3x = 5x – 5
-3x – 5x = -5 – 1
-8x/-8 = -6/-8
X = 3/4

==================================================

(4)
Since Using Pythagoras theorem
|PR|² = |PQ|² + |QR|²
|PR|² = 3² + 4²
|PR|² = 9 + 16
|PR|² = 25 PR = √25
|PR| = 5cm
Considering PRS
|PS|² = |PR|²+|SR|²
13² = 5² + |SR|²
169 = 25 + |SR|²
|SR|² = 169 – 25
|SR|² = 144
|SR| = √144 = 12cm

Hence the area of the quadrilateral = Area of triangle PQR + area of PRS
= 1/2bh + 1/2bh
= 1/2×4×3 + 1/2×12×5
= 6+30 = 36cm

===================================================

(5a)
No of red balls = 3
No of green balls = 5
No of blue balls = x
Prob.(red ball) = no of total outcome/no of possible outcome
Pr(red) = 3/3+5+x = 1/6
3/8+x = 1/6
6(3) = 1(8+x)
18 = 8 + x
X = 18 – 8 = 10
Therefore the no of blue ball = 10

(5b)
Probability of picking a green ball
P(g) = no of green balls/no of possible outcome
P(g) = 5/3+5+10 = 5/18
=5/18

=============================================

(6ai)
F α M1M2/d²
F = KM1M2/d²
Given F = 20N, M1= 25kg, M2 = 10kg and d = 5m
20 = k(25)(10)/5²
250k = 500
k = 500/250 = 2
Expression is
F = 2M1M2/d²

(6aii)
Making d subject
d = √2M1M2/F
d = √2 ×7.5×4/30
d = √60/30 = √2
d = √2m or 1.41m

(6b)
Draw the diagram
X+X+60+X+80+X+40+X+20 = 540(sum of angles in a Pentagon)
5x + 200 = 540
5x = 540 – 200
5x = 340
X = 340/5
X = 68

=============================================

(8a)
1/3x – 1/4(x+2)>_ 3x -1⅓
1/3x – 1/4(x+2)>_3x – 4/3
Multiply through by the L. C. M(12), we have
4x – 3(x + 2)>_36x – 16
4x – 3x – 6 >_ 36x – 16
-6+16 >_36x + 3x – 4x
10 >_ 35x
35x _< 10
X = 10/35
X = 2/7

(8bi)
Draw the triangle
|AB|/66 = sin35
|AB| = 66sin35 = 66×0.5736 = 37.8576

Draw the right angled triangle
|AD|/|AB| = Tan52
|AD| = 37.8576 × Tan52° = 37.8576 × 1.2799 = 48.45m
Height of tower = 48.45m

(8bii)
|AC|/66 = Cos35°
|AC| = 66 x cos35°
= 66 x 0.8192
= 54.0672

Tan = 41.86°
Angle of elevation of top of tower from c = 41.85°

==============================================

(10)
130kg of tomatoes for #52,000
Half of the tomatoes
130/2 = 65kg sold at 30%
Profit = #52,000/2 = 26,000
#26,000 = 100%
X = 130%
X = 26000 × 130/100
= #33,800

Then 65kg was then sold at reduction of 12% per kg
Recall that the initial cost price = 52000/130
=400kg
65kg sold at = 33,000/65
=#520/kg
Then for 12% reduction
520 × 88/100 = 457.6/kg
(a)
The new selling price per kg = #457.6/kg

(b) 65kg – 5kg = 60kg
(60kg×457.6kg)+33,800
= #61,256.00

#profit = selling price /cost price × 1000/1
=61256/52000×100/1= 117.8
= 17.8%

=============================================

(11ai)
ar² = 1/4 ……(1)
ar^5= 1/32 …..(2)
Divide eqn (2) by eqn(1)
ar^5/ar² = 1/32÷1/4
r³ = 1/32 × 4/1
r³= 1/8
r³ = 2-³
r = 2-¹
r = 1/2
Common ratio = 1/2
Put this into eqn (1)
a(1/2)² = 1/4
a(1/4) = 1/4
a = (1/4)/(1/4) = 1
First term, a = 1

(11aii)
Seventh term, T7 = ar^6
=(1)(1/2)^6
=1/64

(11b)
Given : X = 2 and X = -3
(X – 2)(X + 3) = 0
X² + 3x – 2x – 6 , 0
X² + x – 6 = 0
Comparing with ax²+bx+c = 0
a = 1
b = 1
C = -6

=============================================

(12a)
Given : siny = 8/17
Draw the right angle
From Pythagorean triple, third side is 15
Draw the right angle triangle
tan y = 8/15

tan y/1+2tany = 8/15/1+2(8/15) = 8/15/1+16/15

tany /1+2tan y = 8/31

(12b)
Amount shared = #300,000
Otobo’s share = #60,000
Ade’s share = 5/12 × #(300,000-60,000)
= 5/12 × #240,000
=#100,000

Adeobi’s share = #300,000 – (#60,000 + #100,000)
= 300,000 – 160,000
=#140,000

Ratio : Otobo : Ade : Adeola
60,000 : 100,000 : 140,000
60 : 100 : 140
6 : 10 : 14
3 : 5 : 7

READ BELOW MESSAGES TO LEARN HOW TO SUBSCRIBE .

===================================

CLICK HERE TO VIEW THE ANSWERS

===================================

ANSWERS WILL BE SENT TO OUR SUBSCRIBERS 3hrs BEFORE THE EXAM TIME

EXPOLORD.CO TEAM ASSURE YOU NOTHING LESS THAN B2 IN THIS SUBJECT..ALL YOU NEED TO DO IS TO SUBSCRIBE.

Read below carefully to know how to subscribe for it.

-=-=-=-=-=-=-=HOW TO SUBSCRIBE=-=-=-=-=-=-=

DIRECT TO MOBILE AS SMS: On this Direct mobile package we will send the Obj & Essay directly to your submitted phone number as a text message as early as we can…

>>Send 1000 MTN CARD to 08160277754+ Subject name + phone number + i paid for direct sms.

DIRECT TO WHATSAPP: On this whatsapp answers package we will send the Obj & Essay directly to your whatsapp line you submitted

>>>Send 700 MTN CARD to 08160277754 + Subject name + whatsapp phone number + i paid for whatsapp answers.

PASSWORD PAYMENT: On this package of subscription, We will send a Password directly to your phone number, which will be Used to access the Answers Online. on our ANSWER PORTAL.

>>>>Send N500 MTN CARD to 08160277754+ Subject name + phone number with message i paid for online passwordOur Online/Link Subscribers Will Get There answers on WWW.EXPOLORD.CO/ANSWERS-PAGE

WARNING:-Please Don’t Even Come for Free Answers, because it Would’nt be Posted. Take me Serious This Time. Make Sure you Subscribe if you Don’t Want to be on Hot Seat

2019 WAEC MATHEMATICS OBJ & ESSAY QUESTIONS AND ANSWERS NOW AVAILABLE

CONTACT FOR JAMB EXPO
+2347068492504 || 07068492504

2019 WAEC MATHEMATICS OBJ & ESSAY QUESTIONS AND ANSWERS NOW AVAILABLE