MATHEMATICAL LITERACY PAPER 1
GRADE 12
NATIONAL SENIOR CERTIFICATE EXAMINATIONS
MEMORANDUM

MAY/JUNE 2019

Symbol Explanation
M Method 
MA Method with accuracy 
CA Consistent accuracy 
A Accuracy 
C Conversion 
S Simplification 
RT Reading from a table/a graph/document/diagram 
SF Correct substitution in a formula
O Opinion/Explanation
P Penalty, e.g. for no units, incorrect rounding off, etc.
R Rounding off
NPR No penalty for rounding
AO Answer only
MCA Method with constant accuracy


NOTE:

  • If a candidate answers a question TWICE, mark only the FIRST attempt.
  • If a candidate has crossed out (cancelled) an attempt to a question and NOT redone the solution mark the crossed out (cancelled) version.
  • Consistent accuracy (CA) applies in ALL aspects of the marking guidelines, however it stops at the second calculation error.
  • No CA mark follows after a breakdown.
  • If the candidate presents any extra solution when reading from a graph, table, layout plan and map, then penalise for every extra item presented

QUESTION 1 [32 MARKS] ANSWER ONLY FULL MARKS

Q/V Solution Explanation T&L 
1.1.1 Susan Visser / Susan / Visser  2RT correct name
Accept: Woolworths Financial
Services
(2) 
F
L1
1.1.2 R548,37 2RT correct amount
(2)
F
L1
1.1.3 12 / twelve 2A correct number of months
(2)
F
L1
1.1.4 Debit order is a way for a third party, that you have given permission, to collect money from your bank account. It's typically used to collect monthly subscriptions, insurance premiums or loan repayments
OR
An instruction to the bank, authorising payment to the other person on a regular basiS
OR
It is an arrangement giving permission to a third party to withdraw money from a bank account on a regular basis
OR
A term used for bank references in order for them to deduct money owed to certain bank accounts on a regular basis
OR
When an individual has to pay a certain person on a regular basis, they set a date and how much should be taken from their account
OR
Pre-arranged monthly payment of a specific amount from your bank (on behalf of borrower) account to settle debt
1A money taken out (deducted) of
bank account
1A regular basis/monthly
1A money taken out of bank
account/salary
1A regular basis/monthly
(2)
F
L1
1.1.5 26 days 2A correct number of days
Accept: 25 days(2)
F
L1
1.1.6 A = R6 859,99 + R144,04 + (– R221,89)
=R6 782,14
OR
A = (R6 859,99 + R144,04) – R221,89
= R7 004,03 – R221,89
= R6 782,14
OR
R38+ R2 559,79 + A + R1 071,70 = R10 451,63
A = R10 451,63 – R3 669,49
= R6 782,14
1MA adding and subtracting the
values
1A simplification
OR
1MA adding and subtracting the
values
1A simplification
OR
1MA adding and subtracting the
values
1A simplification
NPU
(2)
F
L1
1.2.1 26°C 2RT maximum temperature
NPU
(2)
M
L1
1.2.2 8 June 2017
OR
08.06.2017
OR
08 /06 /2017
OR
8 June
2RT correct date
(2)
M
L1
1.2.3 26°C ; 22°C ; 21°C ; 20°C ; 19°C ; 16°C ; 15°C ; 15°C ; 14°C 1A correct values
1A correct order
NPU
(2)
D
L1
1.2.4 6 June 2017
OR
06 / 06 / 2017
OR
6 June/
OR
6th/6de
2RT correct date
(2)
M
L1
1.2.5 15°C - 3°C
= 12°C
1RT both correct values
1A simplification
NPU
(2)
D
L1
1.3.1 Age group: 20 – 29 2RT correct age group
(2)
D
L1
1.3.2 Number of male voters under 40
= 109 224 + 2 443 115 + 3 095 538
= 5 647 877
OR/OF
Number of male voters under 40
= 11 797 561 – 2 553 636 – 1 824 042 –
1 116 525 – 479 711 – 175 770
= 5 647 877
1M adding correct values
1CA answer
1M subtracting correct values
1CA answer
(2)
D
L1
1.3.3 Two million eight hundred and fifty eight thousand nine hundred and ninety six 2A correct number in words (2) D
L1
1.3.4 Discrete 2A discrete
(2)
D
L1
1.3.5 14 442 779 – 11 797 561
= 2 645 218
1MA subtracting correct values
1A correct answer
(2)
D
L1
      [32]


QUESTION  2 [40 MARKS]

Q/V Solution Explanation T&L 
2.1.1 R1140,95
     12
= R95,07916667
= R95,08 per kg
1MA both values correct
1CA simplification
1R unit cost
AO
(3)
F
L1
2.1.2 R11,99 × 6
=R71,94
1MA multiply by 6
1CA total amount
AO
(2)
F
L1
2.1.3 Cost price of an item is the cost of making that item
OR
This is the amount that it costs per unit to either manufacture, purchase the item or to prepare for a service that will be delivered. This amount is pure cost, no markup or profit added yet
OR
Money spent when purchasing products/goods for resell
OR
Original price before profit is added
2A explanation
(2)
F
L1
2.1.4
(a)
A – Cost of milo per cup koppie:
R97,95 × 0,04 kg
= R3,92
OR
R97,95 ÷ 25
= R3,92
1MA multiply by 0,04 kg
1CA simplification
OR
1MA divide by 25
1CA simplification
AO
(2)
F
L1
2.1.4
(b)
B – amount of milk used
R11,99R1,20
= 0,1 ℓ
1MA dividing by R11,99
1A simplification
AO
NPU
(2)
F
L1
2.1.4
(c)
C – cost of 25 foam cups
R1,78 × 25
= R44,50
1MA multiply by 25
1A simplification
AO
(2)
F
L1
2.1.4
(d)
D – cost of one cup of milo:
R3,92 + R1,20 + R0,13 + R1,78 + R0,26
= R7,29
CA from Question 2.1.4(a)
1M adding
1A 5 correct values
(2)
F
L1
2.1.5 Profit/Wins = R7,29 × 10025
Selling price = R1,8225 + R7,29
Selling price = R9,1125
= R9,11 OR R9,10
OR
Selling price = R7,29 ×125
                                    100
= R9,1125
= R9,11 OR/OF R9,10
OR
Profit margin =
  Profit/wins  ×100%
 selling price
x - 7.29 × 100=25%
    x            1 
100%x - 7.29 25%
         x                 1
100%x – 7,29 = 25%x
100% - 25%x = 7,29
75%x = 7,29
=R9,72
OR
25% = SP/VP - CP/KP  × 100%
                cost price
25% = SP/VP - 7.29   × 100%
                   7.29
Selling Price = (0,25 × 7,29) + 7,29
= R9,1125
= R9,11
CA from question 2.1.4(d)
1M 25% of R7,29 only
1M adding
1CA simplification
1R rounding
OR
1A 125% of R7,29 only
1M multiply
1CA simplification
1R rounding
OR
1M creating formula
1M changing the subject of
the formula
1M dividing by 75%
1CA simplification
OR
1M 25% of R7,29 only
1M adding
1CA simplification
1R rounding
Accept R9,15 and R9,20
(4)
F
L2
2.2.1
(a)
P = 40 × R12,50
= R500,00
OR
80 cups = R1 000
½ of 80 cups is 40 cups
∴ ½  of R1 000 is R500.
∴ P = R500
OR
P = R375 + R125
= R500
1MA multiply by R12,50
1CA selling price
OR
1MA trial and error method
1CA selling price
1MA adding
1CA selling price
AO
(2)
F
L1
2.2.1
(b)
Income in rand = R12,50 × number of cups of milo/ n
OR
Income in rand = R12,50 × x = number of cups of milo/aantal koppies milo


2A formula
OR
1A Income in rand =
R12,50 × x (in equation)
1A explaining variable
(2)
F
L2
2.2.1
(c)
Number of cups of milo 2RT independent variable
(2)
F
L1
2.2.2 R612,50 = R90,00 + (R9,50 × n)
R612,50 − R90,00 = R9,50 × n
n = 522.50 
       9.50
Q = 55
OR
R90 + R 9,50 × 55 = R 612,50
Q = 55
1M changing subject of
formula
1S simplification
1CA simplification
OR
1M trial and error
1S simplification
1CA simplification
AO
(3)
F
L2
2.2.3 INCOME AND COST GRAPHS FOR MAKING AND SELLING OF CUPS OF MILO
1
1A start of graph – cost price (0;90)
1A end of graph – cost price (100;1 040)
1A joining the points in a straight line graph (3)
F
L2
2.2.4
(a)
The cost price for the number of cups of Milo sold and the selling price of that number is the same (equal). No profit or loss.
OR
Cost price = Selling price
OR
Income = Expenses 
OR
The profit and loss are equal to 0
2A break-even
(2)
F
L1
2.2.4
(b)
30 cups CA from Question 2.2.3 (graph)
2RT number of cups
(2)
F
L2
2.3.1 1 200 ÷ 0,10976
= 10 932,94 Yen
1RT correct values
1M dividing by exchange rate
1A simplification
AO
NPR
(3)
F
L2
2.3.2 Yen is Weaker
OR
Rand is stronger
CA from Question 2.3.1
2A for stating weaker
OR
2A for stating stronger
(2)
F
L1
      [40]


QUESTION 3 [26 MARKS]

Q/V Solution Explanation T&L 
3.1.1(a) Area of a face without a circular hole
= side × side
= 45cm × 45cm
= 2 025 cm2
 1SF substituting correct value
1A correct area
1A correct unit
(3)
M
L2
3.1.1(b) Area of hole
= π × radius2
= 3,142 × 9,5 cm × 9,5 cm
= 283,5655cm2
Area of sides
= 2 025 cm2 × 6 – 2 (283,5655 cm2 )
= 11 582,869 cm2
OR
Area of hole
= π × radius2
= 3,142 × (9,5cm)2
= 283,5655cm2
Area of faces without holes + area with faces with holes
= (4 × 2 025cm2) + [ 2 × (2 025 – 283,5655)]
= 8 100cm2 + 2 × 1 741,4345
= 8 100cm2 + 3 482,869cm2
= 11 582,869cm2
OR
Area of hole/Oppervlakte van die gat
= π × radius2
= 3,142 × (9,5cm)2
= 283,5655cm2
2 025 cm² × 6 = 12 150 cm²
3,142 × 9,5 cm²
283,5655 × 2
= 567,131 cm²
12 150 cm² − 567,131 cm²
=11 582,869 cm²
CA from Question 3.1.1 (a)
1SF substituting correct value
1A correct area
1MA multiply by 6
1MA multiply by 2
1M subtracting the values
OR
1SF substituting correct value
1A correct area
1CA total area without holes
1CA total area with holes
1M adding both values
OR
1SF substituting correct value
1A correct area
1MA multiply by 6
1MA multiply by 2
1M subtracting the values
(5)
M
L3
3.1.1 (c) Total surface area of 12 chairs:
= 11 582, 869 cm2 × 12
= 138 994,428 cm2
Amount of paint
= 138 994,428 mℓ ÷ 15 × 1,8
= (16 679,33136 ÷ 1 000) ℓ
≈ 17 ℓ
OR
Amount of paint per chair
= 11 582,869cm² ÷ 15 × 1,8
= 1 389,94428 ml ÷ 1 000
= 1,38994428 ℓ
Total surface area of 12 chairs:
= 1,38994428 l × 12
= 16,67933136 ℓ
≈ 17 ℓ
1M multiplying by 12
1MA ÷ 15 × 1,8
1C converting mℓ to ℓ
1R rounding up
OR
1MA ÷ 15 × 1,8
1C converting mℓ to ℓ
1M multiply by 12
1R rounding up
(4)
M
L3
3.1.2
(a)
Diameter = 2 × r
= 2 × 7 cm
= 14 cm
OR
Diameter = 7 cm + 7 cm
= 14 cm

1MA multiplying by 2
1A simplifying
OR
1MA adding correct values
1A simplifying
AO
NPU
(2)
M
L1
3.1.2
(b)
Volume of a cylinder = π × (radius)2 × height
Volume silinder = π × (radius)2 × hoogte
5 000 cm3 = 3,142 × (7)2 × height
Height =     5000       
              3142 x (7)2
= 32,476… cm
≈ 32,48 cm
1SF substitution – 5 000 cmand 7
1M changing the subject of the
Formula
1CA correct height
NPR
(3)
M
L2
3.2.1 High Risk 2RT correct answer
(2)
M
L1
3.2.2 Waist-to-hip ratio =  waist measurement 
                                 hip measurement
= 92105
= 1,141…
1SF substituting correct values
1CA answer
NPR
(2)
M
L2
3.2.3
(a)
40 to 49 years of age
OR
50 to 59 years of age
OR
60 to 69 years of age
2RT correct age
(2)
M
L1
3.2.3
(b)
Waist-to-hip ratio =  waist measurement 
                                 hip measurement
0,7826 =            72            
              hip measurement
Hip measurement =     72    
                                0,7826
= 91,5797507
≈ 92 cm
1SF substituting correct values
in correct formula
1M changing the subject of the
formula
1R rounding
AO
(3)
M
L2
      [26]


QUESTION 4 [21 MARKS]

Q/V Solution Explanation T&L 
4.1.1 Number of passengers:
= 60 / sixty/sestig 
2A number of passengers
(2)
Map
L1
4.1.2 Row: K
Number: 1 OR 6
1RT row K
1RT seat 1 OR 6
(2)
Map
L1
4.1.3 SE/South-east

2A SE (2)

Map
L2
4.1.4 P =  9  × 100%
      60
= 15%
CA from Question 4.1.1
1A numerator
1A denominator
1A probability as a percentage
(3)
P
L2
4.1.5 A5 / 5A 1A row A
1A seat number 5
(2)
Map
L2
4.2.1 8/eight 2RT correct number of airports
(2)
Map
L1
4.2.2 1 Unit on the map is equal to 10 000 000 units in real life
OR
1 cm/mm on the map is equal to 10 000 000 cm/mm in real life
OR
The real one is 10 000 000 times bigger
OR
The drawing is 10 000 000 times smaller
2A explanation
(2)
Map
L1
4.2.3 Actual distance
= 60 mm × 10 000 000
= 600 000 000 mm ÷ 1 000 000
= 600 km
1M concept of scale
1M conversion
1CA distance
AO
(3)
Map
L2
4.2.4 Speed = Distance
                 Time
=   597  
    736/60
= 80,314 km/h
1A substitution - 597
1A time calculation
1A correct average speed
NPR
(3)
Map
L2
      [21]


QUESTION 5 [31 MARKS]

Q/V Solution Explanation T&L 
5.1.1 Survey / Questionnaire / Interviews  2A correct instrument
(2)
D
L1
5.1.2 KwaZulu-Natal/KZN 2RT correct province
(2)
D
L1
5.1.3 Mean number of voting stations
22612
      9
= 2 512,4444444
≈ 2 512 OR 2 513
1A numerator
1MA dividing by 9
1R to the nearest whole number
(3)
D
L2
5.1.4 0 2RT for mode = 0
(2)
D
L2
5.1.5 Percentage = 1228  × 100 %
                      22612
= 5,43 %
1RT correct values
1M percentage calculation
1A simplification
NPR
AO
(3)
D
L1
5.1.6 P(Gauteng VD) = 0% OR 0 OR no chance
OR impossible
OR   0   
      2716
2A stating 0% or impossible
(2)
P
L2
5.1.7 3 111 – 2 966
= 145
OR
1 228 – (161+189+327+133+82+115+26+50)
= 145
OR
1 228 – 1 083
= 145
1RT reading correct values
1M subtracting values in correct
order
OR
1M adding all the values
1M subtracting from 1 228
OR
1M adding all the values
1M subtracting from 1 228
(2)
D
L1
5.1.8 2
1A for each correctly plotted bar × 6 (6)
D
L2
5.2.1 Sport
= 100% – (42,9 + 2,8 + 11 + 20,7 + 2,4 + 18,4 +0,7)%
= 1,1%
OR
= 100% – 98,9%
= 1,1%
1MA subtract values
1CA correct percentage
OR
1MA subtract values
1CA correct percentage
AO (2)
D
L1
5.2.2 Car/Motorcar 1RT correct modus
(2)
D
L1
5.2.3 P(people travelling by bus) = 7,8%
= 7.8 
   100
= 39 
  500
OR
P(bus)=  7.8   10    
              100     10
= 7.8 
 1000
= 39 
  500
1RT correct percentage
(7,8%)
1M out of 100
1A fraction form
OR/OF
1RT correct percentage
(7,8%)
1M out of 100
1A fraction form
(3)
P
L2
5.2.4 Number of people/Aantal mense
= 542 267 × 42,9%
= 232 632,543
≈ 232 632 OR/OF 232 633
1M multiplying correct values
1CA number of people
NPR – whole number
(2)
D
L1
      [31]

TOTAL:150

Last modified on Friday, 24 September 2021 09:39