A and B ran, at their respective rates, a race of 480m. In the first heat, A gives B a head start of 48m and beats him by 1/10th of a minute. In the second heat, A gives B a head start of 144m and is beaten by 1/30th of a minute. What is B's speed in m/s?
A. 12
B. 14
C. 16
D. 18
E. 20
The OA is A.
I'm confused by this PS question. Experts, any suggestion about how can I solve it? Thanks in advance.
5-Day Free Trial
5-day free, full-access trial TTP
Available with Beat the GMAT members only code
MORE DETAILS
A and B ran, at their respective rates, a race of 480m...
This topic has expert replies
-
BTGmoderatorLU
- Moderator
- Posts: 2207
- Joined: Sun Oct 15, 2017 1:50 pm
- Followed by:6 members
-
mbawisdom
- Senior | Next Rank: 100 Posts
- Posts: 94
- Joined: Tue Dec 16, 2014 9:50 am
- Location: London, UK
- Thanked: 2 times
- Followed by:4 members
- GMAT Score:770
Luandato, what are you confused about? Do let me know how you approached the question and I'd be happy to help you improve your logic. The question looks pretty similar to the other S = D/T questions you have posted before. I'll let you come back to me with your working/process and if you still need help I'll show you how I would approach the question.LUANDATO wrote:A and B ran, at their respective rates, a race of 480m. In the first heat, A gives B a head start of 48m and beats him by 1/10th of a minute. In the second heat, A gives B a head start of 144m and is beaten by 1/30th of a minute. What is B's speed in m/s?
A. 12
B. 14
C. 16
D. 18
E. 20
The OA is A.
I'm confused by this PS question. Experts, any suggestion about how can I solve it? Thanks in advance.
Cheers,
Dan
GMAT/MBA Expert
-
Brent@GMATPrepNow
- GMAT Instructor
- Posts: 16207
- Joined: Mon Dec 08, 2008 6:26 pm
- Location: Vancouver, BC
- Thanked: 5254 times
- Followed by:1268 members
- GMAT Score:770
Here's one approach. . .LUANDATO wrote:A and B ran, at their respective rates, a race of 480m. In the first heat, A gives B a head start of 48m and beats him by 1/10th of a minute. In the second heat, A gives B a head start of 144m and is beaten by 1/30th of a minute. What is B's speed in m/s?
A. 12
B. 14
C. 16
D. 18
E. 20
Let A = A's speed in meters per second
Let B = B's speed in meters per second
A gives B a head start of 48 m and beats him by 1/10th of a minute.
1/10th of a minute = 6 seconds
A's travel time is 6 seconds less than B's travel time
So, (A's travel time) = (B's travel time) - 6
A traveled 480 meters and B traveled 432 meters.
Travel time = distance/speed, so . . .
(480/A) = (432/B) - 6
A gives B a head start of 144 m and is beaten by 1/30th of a minute.
1/30th of a minute = 2 seconds
A's travel time is 2 seconds more than B's travel time
So, (A's travel time) = (B's travel time) + 2
A traveled 480 meters and B traveled 336 meters.
Travel time = distance/speed, so . . .
(480/A) = (336/B) + 2
IMPORTANT: Since both equations are set equal to 480/A, we can set them equal to each other.
(432/B) - 6 = (336/B) + 2
Multiply both sides by B: 432 - 6B = 336 + 2B
Rearrange: 96 = 8B
Solve: B = 12
Answer: A
Cheers,
Brent
Brent Hanneson - Creator of GMATPrepNow.com
-
deloitte247
- Legendary Member
- Posts: 2214
- Joined: Fri Mar 02, 2018 2:22 pm
- Followed by:5 members
when A gives B a head set of 48m, A ran 480m in, say, x seconds and
B ran (480-48)m =432m in
$$x+\frac{60}{10}=\left(x+6\right)\sec$$
$$B's\ rate\ can\ thus\ be\ \exp ressed\ as\ 432m\ in\ \left(x+6\right)s=\left(\frac{432}{x+6}\right)\ \frac{m}{s}$$
$$when\ A\ gives\ B\ a\ head\ start\ of\ 144m,$$
$$A\ ran\ 480m\ in\ the\ same\ x\ \sec onds,$$
$$and\ B\ ran\ 480-144m\ =\left(336m\right)\ in\ x-\frac{60}{30}=\left(x-2\right)\sec onds$$
$$B's\ rate\ can\ be\ \exp ressed\ as\ \left(\frac{336}{x-2}\right)\ \frac{m}{s}$$
$$Equating\ B's\ rate:\ i.e\ \frac{432}{x+6}=\frac{336}{x-2}$$
$$432\left(x-2\right)=336\left(x+6\right)\ \ ;\ dividing\ through\ by\ 48,\ we\ have$$
$$9\left(x-2\right)=7\left(x+6\right)=\ 9x-18=7x+42\ $$
$$or\ 9x-7x=60$$
$$x=\frac{60}{2}=30s$$
$$Therefore,\ B's\ rate=\frac{436}{30+6}\ \frac{m}{s}\ =12\ \frac{m}{s\ }\ \left[option\ A\right]$$
B ran (480-48)m =432m in
$$x+\frac{60}{10}=\left(x+6\right)\sec$$
$$B's\ rate\ can\ thus\ be\ \exp ressed\ as\ 432m\ in\ \left(x+6\right)s=\left(\frac{432}{x+6}\right)\ \frac{m}{s}$$
$$when\ A\ gives\ B\ a\ head\ start\ of\ 144m,$$
$$A\ ran\ 480m\ in\ the\ same\ x\ \sec onds,$$
$$and\ B\ ran\ 480-144m\ =\left(336m\right)\ in\ x-\frac{60}{30}=\left(x-2\right)\sec onds$$
$$B's\ rate\ can\ be\ \exp ressed\ as\ \left(\frac{336}{x-2}\right)\ \frac{m}{s}$$
$$Equating\ B's\ rate:\ i.e\ \frac{432}{x+6}=\frac{336}{x-2}$$
$$432\left(x-2\right)=336\left(x+6\right)\ \ ;\ dividing\ through\ by\ 48,\ we\ have$$
$$9\left(x-2\right)=7\left(x+6\right)=\ 9x-18=7x+42\ $$
$$or\ 9x-7x=60$$
$$x=\frac{60}{2}=30s$$
$$Therefore,\ B's\ rate=\frac{436}{30+6}\ \frac{m}{s}\ =12\ \frac{m}{s\ }\ \left[option\ A\right]$$
GMAT/MBA Expert
-
Jeff@TargetTestPrep
- GMAT Instructor
- Posts: 1462
- Joined: Thu Apr 09, 2015 9:34 am
- Location: New York, NY
- Thanked: 39 times
- Followed by:22 members
We can let a = A's speed in m/s and b = B's speed in m/s. Notice that 1/10th of a minute = 6 seconds and 1/30th of a minute = 2 seconds. Since time = distance/rate, we have:LUANDATO wrote:A and B ran, at their respective rates, a race of 480m. In the first heat, A gives B a head start of 48m and beats him by 1/10th of a minute. In the second heat, A gives B a head start of 144m and is beaten by 1/30th of a minute. What is B's speed in m/s?
A. 12
B. 14
C. 16
D. 18
E. 20
480/a = (480 - 48)/b - 6
and
480/a = (480 - 144)/b + 2
Setting them equal to each other, we have:
(480 - 48)/b - 6 = (480 - 144)/b + 2
432/b - 6 = 336/b + 2
Multiplying both sides by b, we have:
432 - 6b = 336 + 2b
96 = 8b
12 = b
Answer: A
Jeffrey Miller
Head of GMAT Instruction
[email protected]
See why Target Test Prep is rated 5 out of 5 stars on BEAT the GMAT. Read our reviews
