MATHEMATICAL LITERACY PAPER 2
GRADE 12
NATIONAL SENIOR CERTIFICATE
JUNE 2018
MEMORANDUM

Symbol  Explanation 
M Method 
MA Method with accuracy 
CA Consistent accuracy 
A Accuracy 
C Conversion 
S Simplification 
RT/RG/RM Reading from a table/Reading from a graph/Read from map
F Choosing the correct formula
SF Substitution in a formula
J Justification
P Penalty, e.g. for no units, incorrect rounding off etc.
R Rounding Off/Reason
AO Answer only
NPR No penalty for rounding


QUESTION 1 [36]

Ques.  Solution  Explanation  Level 
1.1.1   Total actual expenditure value for 2017
= R62 459,75 + R125 000,05 + R63 241,20 +R200 541,65
= R451 243,10 ✓✓
OR
Total actual expenditure value for 2017
= R461 864,70 – R10 621,60✓✓
= R451 243,10 
1RT Correct values
1M Addition
1RT Correct values
1M Subtraction (2)
L2
F
1.1.2 Actual value is the amount of money that was either received or spent.✓✓
Budgeted value is the amount of money that is predicted to be either received or spent✓✓
OR
Amount of money planned to cover all expenses.
Accept any logical explanation.
2A Explain actual value
2A Explain budgeted value
(4)
L4
F
1.1.3 Teaching resources✓
School bought most of the teaching resources the previous year✓✓
OR
They received teaching resources from donors✓✓
Accept any other valid reason.
1RT
2R Reason
(3)
L2 &
L4
F
1.1.4 Disagree, because the schools budget for 2018 shows a negative balance✓✓
OR
From 2016, the balance decreased.✓✓
Accept any other explanation.
2A Explanation
(2)
L4
F
1.1.5 Percentage increase for 2017
= R164 535,70 − R149 567,00 x 100%✓✓
              R149 567,00
= 10%✓
Percentage increase for 2018
= R180 976,00 − R164 535,70 x 100%✓
              R164 535,70
= 9,99% ≈ 10%✓
Statement is valid✓
1F Correct formula
1SF Correct values
1CA Percentage
1SF Correct values
1CA Percentage
1O Valid
(6)
L4
F
1.1.6

School fee amount in 2015
= R149 567,00
          1,1
= R135 970,00 ✓
OR
School fee amount in 2015
= R149 567,00
         110%
= R135 970,00✓

1MA 2016 value divided by 1,1
1A 2015 School fee
1MA 2016 value divided by 1,1
1A 2015 School fee (2)
L2
F
1.2.1 Mean of Excelsior
= 15+ 50 + 43 + 34 +19 + 67+ 29 + 87 + 94 + 79 + 96 + 99 + 43
                                               13 ✓
= 755
    13
= 58,08% OR 58,1% OR 58%✓
Mean of Whittlesea
= 25 + 27 + 32 + 38 + 40 + 45 + 53 + 59 + 60 + 67 + 75 + 78 + 84 + 89 + 91 + 97
                                                          16 ✓
= 960
    16
= 60%✓
Statement is valid ✓
1M Concept of mean
1M Divide by 13
1CA Mean
1MA Add and divide by 16
1CA Mean
1O Valid
NPR (6)
L3 & L4
DH
1.2.2 IQR for Excelsior
15; 19; 29; 34; 43; 43; 50; 67; 79; 87; 94; 96; 99
Quartile 2 (Median) = 50%✓
Quartile 1 (Lower) = 29+34
                                    2
= 31,5%
Quartile 3 (Upper)= 87 + 94
                                    2
= 90,5%
IQR = 90,5% – 31,5%✓
= 59%✓
Learner’s solution is incorrect✓
1M Arrange
1A Concept of median
1MA Correct values divided by 2
1CA Q1
1CA Q3
1M Concept of IQR
1CA IQR
1O Incorrect
(8)
L2, L3 & L4
DH
1.2.3 P( at least 75%) = 14 
                             29 ✓✓
= 0,35897…
= 0,359✓
1A Numerator
1A Denominator
1CA Rounding (3)
L2
P


QUESTION 2 [19]

Ques.  Solution  Explanation  Level 
2.1
2.1.1 
To see whether they have a market for the super-sized tuna tin.
Accept any other logical explanation
2A Reason (2)  L4
2.1.2 Volume of the original tin = ? x radius2 x height ✓
= 3,142 x 6 cm x 6 cm x 7 cm✓
= 791,784 cm3
Volume of the super-sized tin = ? x radius2 x height✓
= 3,142 x 12 cm x 12 cm x 7 cm
= 3 167,136 cm3
Not valid✓
The volume of the super-sized tin is not double the volume of the original tin.✓
1A Radius
1SF Substitution
1CA Volume
1A Radius
1CA Volume
1O Not valid
1O Explanation
(7)
L3 &
L4
M
2.1.3 Super-sized tuna tin
= 3 167,136
    791,784 ✓
= 4 times bigger✓
Suggested price for the super-sized tuna tin
= R11,99 x 4✓
= R47,96✓
CA from 2.1.2
1M Dividing
1CA Times bigger
1M Multiplication
1CA Price (4)
L4
M &
F
2.2 Box A
Across the length = 1 000 ??
                                 240 ?? ✓✓
= 4,16…
≈ 4 tins✓
Across the width = 500 ??
                               240 ??
= 2,08
≈ 2 tins✓
Height = 200 ??
               70 ??
= 2,85
≈ 2 tins✓
Number of tins in Box A = 4 x 2 x 2
= 16 tins✓
CA from 2.1.2
1C Diameter cm to mm
1M Dividing
1CA Number of tins across length
1CA Number of tins across width
1CA Number of tins on top of each other
1CA Number of tins in box (6)
L3
M


QUESTION 3 [26]

Ques.  Solution  Explanation  Level 
3.1
3.1.1
The strip chart is not drawn to scale ✓✓ 2A Reason
(2)
L4
M&P 
3.1.2 Distance = 203 + 180
= 383 km ✓
OR
Distance = (662 – 459) + 180 ✓
= 203 + 180
= 273 km ✓
1RM Correct distances
1CA Distance
1RM Correct values
1CA Distance
(2)
L2
M&P
3.1.3 ‘R’ stands for Regional Routes,✓
‘N’ stands for National Routes or freeways.✓
1A Regional route
1A National route
(2)
L2
M&P
3.1.4 Distance from Aliwal North to Harrismith, including Colesberg
= 74 + 56 + 69 + 36 + 36 + 69 + 56 + 247 + 131 + 102✓✓✓✓
= 876 km✓
3RM Correct distances
1M Adding
1CA Distance (5)
L3
M&P
3.1.5 Time spent on the Regional route
???? = ????????
              ?????
???? = 322✓✓
             80 ✓
= 4,025 hrs
Time spent on the national routes
???? = ????????
              ?????
???? = 554
            100
= 5,54 hrs ✓
Time spent for travelling and pitstops
= 4,025 hrs + 5,54 hrs + 1,5 hrs✓✓
= 11,065 hrs✓
Statement not valid
CA from 3.1.4
1M Changing subject of formula
1SF Correct values
1CA Hours
1SF Correct values
1CA Hours
1A Time for pit stops
1M Adding
1CA Total time
1O Not valid (9)
L2 &
L3 &
L4
M&
M&
P
3.2 Total operating costs
= [Fixed cost + (Petrol factor x petrol price + Service and
Repair cost + Tyre cost)] x distance travelled
= [526 + (8,03 x 12,87 + 22,73 + 16,70) x 876✓
= (526 + 103,3461 + 22,73 + 16,70) x 876✓✓
= 668,7761 c x 876✓
= 585 847,8636 c✓
= R5 858,48✓
CA from 3.1.4
1SF Correct values
1S Fuel
1M Adding
1M Multiply
1S Answer in cents
1CA Answer in Rand (6)
 


QUESTION 4 [19]

Ques.  Solution  Explanation  Level 
4.1.1 Amount for Student Service
= 18,9 - (5,6 + 2,5 + 2,4 + 1,1 + 1,9 + 2,4)✓
= 18,9 – 15,9✓
= $3 000 000 OR $3 million✓
1RG Correct values
1M Subtract from 18,9
1CA Amount
NB Penalise with 1 mark if not written in millions and 1 mark for incorrect unit (3)
L2
DH
4.1.2 Salaries and Benefits 2014/2015
= 18,8 x 100%✓
    70,7
= 26,59123055%✓
Salaries and Benefits 2015/2016
= 16,6 x 100%
   43,4
= 38,24884793%✓
Difference in % = 38,24884793% – 26,59123055%✓
= 11,65761738✓
= 11,7%✓
1MA Correct values
1CA Percentage
1CA Percentage
1M Subtracting
1CA Difference
1CA % to 1 decimal place
(6)
NB Penalise with 1 mark if not written in millions and 1 mark for incorrect unit
L2
F
4.1.3 Financial Aid does not appear in the 2014/2015 pie chart✓✓ 2A Explanation L4
P
4.1.4 Amounts do add up to $70,7 million OR $43,4 million✓✓ 2A Explanation L4
DH
4.2  First year = 35 000 x 1,075
= R37 625✓
Second year = 37 625 x 1,075
= R40 446,88✓
Third year = 40 446,88 x 1,0775
= R43 581,51✓
Statement is not valid✓
OR
Final Amount = 35 000 x 1,075 x 1,075 x 1,0775✓✓✓✓
= R43 581,51✓
Statement not valid✓
1M Correct %
1CA Amount
1CA Amount
1M Correct %
1CA Amount
1O Not valid
(6)
L3 &
L4
F

TOTAL: 100

Last modified on Monday, 16 August 2021 08:26