Warren had 2 coins and Bryan had 17 coins. Their coins consisted of ten-cent coins and fifty-cent coins. When all their fifty-cent coins were exchanged for ten-cent coins, they had a total of 31 coins. How many ten-cent coins did they have at first?
|
Ten-cent coins |
Fifty-cent coins |
Total |
Before |
31 - 5 u |
1 u |
19 |
Change |
+ 5 u |
- 1 u |
+ 4 u |
After |
31 |
0 |
31 |
Number of coins at first
= 2 + 17
= 19
1 fifty-cent coin can be exchanged for 5 ten-cent coins.
Increase in the number of coins after all the fifty-cent coins were exchanged for ten-cent coins
= 5 u - 1 u
= 4 u
4 u = 31 - 19
4 u = 12
1 u = 12 ÷ 4 = 3
Number of ten-cent coins at first
= 31 - 5 u
= 31 - 5 x 3
= 31 - 15
= 16
Answer(s): 16