434 algebra De mystif ieD
- Let r represent the boat’s speed in still water. The average speed down-
stream is r + 4 and the average speed upstream is r − 4. The boat was in
the water a total of 2 hours. The distance traveled in each direction is
15 miles. The time the boat traveled downstream is^15
r + 4
hours, and it
traveled upstream^15
r – 4hours. The time the boat traveled upstream
plus the time it traveled downstream equals 2 hours. The equation to
solve is^15
415
42
rr
+ +
– = . The LCD is (r + 4)(r − 4).()() ()() ()()
(rr
rrr
rrr
r+−
+++ −
−4415 =+−
44415
4244
15 −−+ += +−
−++= −4154244
15 60 15 60 212 6)()[()()]
(rrr
rrr ))() ()30 232
02 30 32
1
20 1
22303202
2
2rr
rr
rrr=−
=−−
=−−=^221516
0161−−
=− +r
()rr()r − 16 = 0 r + 1 = 0 (This does not lead to a solution.)
r = 16
The boat’s average speed in still water is 16 mph.- Let r represent the plane’s average speed without the wind. The plane’s
average speed from Denver to Indianapolis is r + 20, and the plane’s
average speed from Indianapolis to Denver is r − 20. The total time in
flight is 512 hours and the distance between Denver and Indianapolis is
1000 miles. The time in the air from Denver to Indianapolis is^1000
r + 20
hours and the time in the air from Indianapolis to Denver is^1000
r – 20
hours.
The time in the air from Denver to Indianapolis plus the time in the air
from Indianapolis to Denver is 5.5 hours. The equation to solve is
1000
201000
2055
rr .
+ +
– = . The LCD is (r + 20)(r − 20).()rr() ()() (
rrr
r+− r
+++ −
−20 201000 =+
2020 201000
2020 ))( )( .)
() ().[()(r
rrrr−
−+ += −20 55
1000 20 1000 20 55 20 ++ 20 )]^