Is My Interpretation of the Left Ventricle Blood Acceleration Problem Correct?

AI Thread Summary
The discussion revolves around a physics problem involving the left ventricle's blood acceleration, where an 88-gram mass of blood is accelerated to 4.5 m/s in 0.20 seconds. The calculations for acceleration and force yield 22.5 m/s² and 1.98 Newtons, respectively, but the professor claims these values are incorrect, stating the acceleration should not exceed 4.5 m/s² and the force must be under 1 Newton. Participants express confusion regarding the interpretation of the problem, particularly whether the blood reaches the final speed of 4.5 m/s within the 0.20 seconds or if it starts moving afterward. Despite doubts about the realism of the given velocity, the original poster feels their understanding and calculations are correct. The discussion highlights a potential discrepancy between the problem's parameters and realistic physiological values.
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Homework Statement


The lower chamber of the heart, (the left ventricle) pumps blood into aorta. The left ventricular contraction lasts 0.20 seconds, during which time a mass of 88 grams of blood is accelerated from rest to a speed of about 4.5 m/s. Find the acceleration & Force.

known:
V final - 4.5 m/s
V initial - 0 m/s
Mass - 88 grams or 0.088 kg
Time it takes for contraction - 0.20 s

Homework Equations


a = (vf - vi)/t
Summation of horiontal force (F) = ma

The Attempt at a Solution



a = (4.5 m/s - 0 m/s) / 0.20
= 22.5 m/s^2

F= ma
= (0.088kg)(22.5 m/s^2)

These were my answers but my professor marked it wrong. according to him the acceleration should not exceed than 4.5 m/s^2 and the Force must not be greater than 1 Newton.

are my interpretations to this problem wrong?

Is it correct that I've used 0.20 seconds as a time to get the acceleration?

I am confused about this, "The left ventricular contraction lasts 0.20 seconds, during which time a mass of 88 grams of blood is accelerated from rest to a speed of about 4.5 m/s."

What does this mean? Is it right that the 88 g of blood obtains 4.5 m/s of final speed at 0.20 seconds or not? Or after 0.20 seconds, the blood starts moving?

Please help...

Thanks in advance :)
 
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I don't see anything wrong with your interpretation of the problem or with your solution.

Did the professor provide a complete solution of his own?
 
Yes, my prof has its own solution to this problem but he didn't discuss it in our class. He said this problem may appear in the next test. He just said that no one in his class got it right except his bright student last year.
 
I'm very suspicious about the data given.A blood velocity of 4.5m/s? That seems too high.
 
Yes, you're right, 4.5 m/s as a final velocity doesn't seems to happen in reality. But this is the velocity stated in this problem.
 
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