Calculate the terminal velocity for a pollen grain

AI Thread Summary
The discussion focuses on calculating the terminal velocity of a pollen grain with a diameter of 7 µm and a density of 0.3 g/cm³. The user attempts to apply the drag force equation but struggles with the calculations, particularly regarding the cross-sectional area and the mass of the pollen grain. Clarifications are made about the correct formula for volume, which should use the radius cubed rather than squared. The importance of the drag coefficient is also highlighted, with a suggestion that it is approximately 0.5 for spherical objects. Ultimately, the user is encouraged to correct their calculations to arrive at the expected terminal velocity of 0.145 m/s.
sarmar
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Homework Statement



Calculate the terminal velocity for a pollen grain falling through the air using the drag force equation. Assume the pollen grain has a diameter of 7 µm and a density of 0.3 g/cm3.


Homework Equations



Vterm= sq.rt of 2mg/pA
Volume= 4/3pi*r^2
Density = m/v

The Attempt at a Solution



I am given the answer but need to show how to get there.
Here is what I have, can someone point out where exactly I am going wrong?
Thank you!

Vterm= sq.rt of 2mg/pA

p= air density of 1.3kg and

A = cross section of the pollen grain
A= 7µm = 0.000007m

To find mass of pollen grain:
radius= 1/2diameter
= 1/2(0.000007)
= 0.0000035m
Volume= 4/3pi*r^2
= 4/3pi(0.0000035)^2
= 5.13x10^-11 m^3
Density = m/v
m=DV
=0.3g/m^2 (5.13x10^-11 m^3)
= 1.54 x10^-11g
to kg = 1.54 x10^-14 kg

So, Vterm= sq.rt of 2mg/pA
Vterm = sq.rt. of 2(1.54 x10^-14 kg)(9.8m/s^2) / (1.3kg/m^2)(0.000007m)
=0.0018m/s

But I know this is wrong since I am given the final answer, which is 0.145m/s
I've worked it out so many times and I'm stuck. Please help.
 
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sarmar said:
Vterm= sq.rt of 2mg/pA
Are you assuming a drag coefficient = 1?

A = cross section of the pollen grain
A= 7µm = 0.000007m
7µm is the diameter of the pollen grain.
 
Doc Al said:
Are you assuming a drag coefficient = 1?


7µm is the diameter of the pollen grain.


I am not given any information for drag coefficient. So I suppose I was assuming 1. I found online the drag coefficient of a spherical object is approx. 0.5

I thought the diameter was the same as the cross-section.
Area of a circle? A=p*r^2
=pi*0.0000035^2
=3.85x10^-11 so,
A=cross-section=3.85x10^-11

so then I just re-figure the mass ?
 
sarmar said:
I am not given any information for drag coefficient. So I suppose I was assuming 1. I found online the drag coefficient of a spherical object is approx. 0.5
That sounds OK.
I thought the diameter was the same as the cross-section.
No, A is the cross-sectional area.
Area of a circle? A=p*r^2
=pi*0.0000035^2
=3.85x10^-11 so,
A=cross-section=3.85x10^-11
Looks OK.

so then I just re-figure the mass ?
Why would you re-figure the mass?
 
Doc Al said:
Why would you re-figure the mass?


Well because I'm still not getting the right answer...
 
sarmar said:
To find mass of pollen grain:
radius= 1/2diameter
= 1/2(0.000007)
= 0.0000035m
Volume= 4/3pi*r^2
That should be: 4/3pi*r^3.
 
Thank you!
 

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