Angular Acceleration of a sprinter

AI Thread Summary
The discussion revolves around calculating the average angular acceleration of a sprinter running a semicircular curve during a 200 m race. The sprinter's speeds at various times are provided, but there is confusion regarding the interpretation of the question, particularly the term "after 12.96 s." Some participants argue that the average angular acceleration should be calculated during the curve, while others point out that the question is poorly worded. The key point is that without knowing the velocity at the end of the curve, determining the average angular acceleration is problematic. Ultimately, the conversation highlights the ambiguity in the question and the need for clear definitions in physics problems.
Goalie29
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Homework Statement


A sprinter runs the curve of this 200 m in 12.96 s. Assume he ran in a lane which makes a semicircle (r = 36.8 m) for the first part of the race. At 3.36 s into the race his speed is 5.1 m/s. At 7.6 s into the race his speed is 9.6 m/s. His speed after the curve was 11.1 m/s.

What was the sprinter's average angular acceleration after 12.96 s? Answer in deg/s2. I.e., what was his average acceleration while running the curve?

Homework Equations


This is for a biomechanics class. It's just a practice question to study but I am not in a physics program and this is my only math related course and i literally know very little about this. I have tried all of the formulas I know and I still can't get the right answer. Please help lol.

The Attempt at a Solution

 
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Goalie29 said:
What was the sprinter's average angular acceleration after 12.96 s? Answer in deg/s2. I.e., what was his average acceleration while running the curve?
To find the average acceleration, or average angular acceleration, we would need to know the velocity at the end of the curve, but we are not given that or any way to find it.
E.g., suppose he stopped running after 12.95s and walked at 1.296m/s for 0.02s. His average acceleration over the first 12.96s would be (1.296m/s)/(12.96s)=0.1m/s2.
 
Welcome to PF;
A sprinter runs the curve of this 200 m in 12.96 s. Assume he ran in a lane which makes a semicircle (r = 36.8 m) for the first part of the race. At 3.36 s into the race his speed is 5.1 m/s. At 7.6 s into the race his speed is 9.6 m/s. His speed after the curve was 11.1 m/s.

What was the sprinter's average angular acceleration after 12.96 s?
I notice the question also explicitly asks for the acceleration after 12.96s ... but that is after the curve has been run.
Is this exactly how the question is written in front of you?

Niggle: the units go hard against the quantity ... so 12.96s and 200m not 12.96 s and 200 m.
 
Goalie29 said:

Homework Statement


A sprinter runs the curve of this 200 m in 12.96 s. Assume he ran in a lane which makes a semicircle (r = 36.8 m) for the first part of the race. At 3.36 s into the race his speed is 5.1 m/s. At 7.6 s into the race his speed is 9.6 m/s. His speed after the curve was 11.1 m/s.

What was the sprinter's average angular acceleration after 12.96 s? Answer in deg/s2. I.e., what was his average acceleration while running the curve?

I don't understand the question.

"Average angular acceleration after 12.96s", ie after the curve, is 0. No curve, no angle. No angle, no angular acceleration.

"Average angular acceleration while running the curve", ie during the curve, is easily calculated by time and angle. (12.96s, semicircle).

"During" isn't "after".

And you've still got all that extra data laying around doing nothing.
 
Last edited:
I agree the question is confusing. Can you check its posted word for word. Is the "ie" something you added?
 
hmmm27 said:
"Average angular acceleration while running the curve", ie: during the curve, is easily calculated by time and angle. (12.96s, semicircle).
No, you can calculate average angular velocity that way, but not average acceleration, angular or otherwise. See my post #2.
hmmm27 said:
"Average angular acceleration after 12.96s", ie: after the curve is 0
It is poorly worded, but I think it is clear they are using "after" in the sense of "average so far after 12.96s have elapsed."
Also, whether there is angular acceleration on the straight depends on the reference axis. If we take it to be fixed at the centre of curvature of the curved portion of track, and the runner continues in a straight line at constant speed thereafter, the angular veocity diminishes, so the angular acceleration goes negative.
 
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haruspex said:
To find the average acceleration, or average angular acceleration, we would need to know the velocity at the end of the curve,
Given a redefinition of "after" as "at", then
Goalie29 said:
His speed after the curve was 11.1 m/s.
becomes relevant.
 
Perhaps British English is different, but this is a perfectly value use of the word "after":

"After half an hour, I was still no further forward with the problem."

Means, precisely, "during the first half hour I made no progress."

And, in this context:

After 12s his average speed was 6.6m/s makes perfect sense to me. That's his average speed during the 12s.
 
Goalie29 said:
At 3.36 s into the race his speed is 5.1 m/s. At 7.6 s into the race his speed is 9.6 m/s. His speed after the curve was 11.1 m/s.

What was the sprinter's average angular acceleration after 12.96 s? Answer in deg/s2. I.e., what was his average acceleration while running the curve?
 
  • #10

That's the thing about English. It isn't as simple as that! I would never have doubted what "after 12.96s" meant in this context. For example:

After two hours our average speed was 50mph.

After we stopped, we had a coffee.

That's the way English is.
 
  • #11
PeroK said:
After 12s his average speed was 6.6m/s makes perfect sense to me. That's his average speed during the 12s.
That is certainly a reasonable interpretation, and of course the right one here, but it is at the least ambiguous.
"A runner ran two laps. Her average speed for the first lap was 15kmh. Her average after the first lap was 14kmh."
 
  • #12
Sorry, I know it is not a very well worded question. I haven't changed anything and that is word-for-word what the question is. I'm pretty sure it is asking the average angular acceleration for the whole curve.
I've managed to find the average velocity which is 13.88 degrees, but I can't find the forumla anywhere for average acceleration. I've tried taking the acceleration at each time interval and averaging that. I've tried taking the average velocity and using that divided by the time to find it, and I've tried a bunch of random formulas and I still can't get the right answer.
 
  • #13
13.88 degrees/second***
 
  • #14
Goalie29 said:
i've tried a bunch of random formulas
As I demonstrated in post #2, you do not have enough information to find the average acceleration.
 
  • #15
My notes say that Average Acceleration = the change in angular velocity divided by time?
So would the change in angular velocity be 13.88 deg/s because that's what the velocity is at the end of the curve and he would have started at zero?
 
  • #16
Goalie29 said:
13.88 deg/s because that's what the velocity is at the end of the curve
How do you know that is the angular velocity as the runner leaves the curve? As I wrote in post #4, his velocity at that particular point can be anything at all. We have no information on it. If he reached the end of the curve and stopped, his average acceleration would be zero.
Do not confuse the instantaneous velocity at a given point with the average velocity up to that point.
 
  • #17
Sorry, the question is asking about his acceleration during the curve. Like throughout the whole 12.96 seconds. The previous question asked what the average velocity of the curve was so i took the time, displacement (180 degrees) and radius and found it was 13.88 degrees/s (which was the right answer). I am sorry this question is silly and not worded well. I feel like there is a simple way to find the answer but i just seem to be overlooking it
 
  • #18
Goalie29 said:
the question is asking about his acceleration during the curve.
I understand that.
I may have been a bit unfair to the question earlier. Look at the last piece of information, that the runner runs at 11.1m/s after exiting the curve. Let's assume that means also that the runner is running at that speed as he exits the curve. What does that give you for the angular velocity at that point? What then is the net change in angular velocity from to start to finish of the curve?
 
  • #19
Got it. Thanks!
 
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