Moment of Inertia of a grouping of pennies

AI Thread Summary
The discussion centers on calculating the moment of inertia of seven pennies arranged in a hexagon with one at the center, focusing on an axis through the center penny. The challenge lies in accounting for the different positions of each penny and whether integration is necessary. Participants clarify that the parallel axis theorem can be used to find the moment of inertia for each penny not rotating around its center of mass. By applying this theorem and summing the individual moments, the correct total moment of inertia is derived as 55mr/2. Understanding the parallel axis theorem is crucial for solving this problem efficiently.
EventHorizon4
Messages
7
Reaction score
0
Hi,

An old GRE problem asks what the moment of inertia of seven pennies, arranged in a hexagon with one in the center, all touching each others' edges is, about the axis that passes through the center of the central penny and is normal to the plane of the pennies.

Each penny is a uniform disc of mass m and radius r, and the answer is apparently 55mr/2.

Can anyone help with this?

Thanks
 
Physics news on Phys.org
Where are you stuck?
 
I obviously know how to calculate the moment of inertia of a disc, but I just don't understand how to account for multiple discs all centered at different places in a plane. It doesn't seem like it can be one integration...that would be really ugly. So is there some sort of way to "add" the moments of each disc together? That's what I don't understand.

Sorry I haven't gotten very far...
 
Hint: All that matters is how far each disk is from the axis. No integration needed.
 
EventHorizon4 said:
I obviously know how to calculate the moment of inertia of a disc, but I just don't understand how to account for multiple discs all centered at different places in a plane. It doesn't seem like it can be one integration...that would be really ugly. So is there some sort of way to "add" the moments of each disc together? That's what I don't understand.

Sorry I haven't gotten very far...

Do you know how to find the moment of inertia of two pennies whos centers are a distance r away from each other and the axis of rotation is right between them? hint assume the center of mass of each penny is a point in the middle of the penny...

oopss I see I interposted, nevermind.
 
Wasn't familiar until now with the "parallel axis theorem," but that seems to have been the ticket here. Using that to calculate the moment of inertia for the pennies NOT rotating on their center of mass, then adding all seven together, gets the answer. Thanks.
 
Yep, the parallel axis theorem is what you need.
 

Similar threads

Moment of inertia of a cuboid parallel to one of its faces (repost with diagram)
Replies
25
Views
2K
The moment of inertia of a group of seven pennies
Replies
1
Views
2K
Calculating Moment of Inertia for a Curved Rod with Respect to a Specific Axis
Replies
1
Views
1K
Calculate the moment of inertia of this body
Replies
4
Views
1K
Proving generality of moment of inertia
Replies
4
Views
2K
Deriving the moment of inertia of a sphere
Replies
6
Views
2K
Two-Disk Pendulum Oscillation: Find Period w/ Mass M & Radius R
Replies
7
Views
2K
Angular acceleration of plank hanging off edge with a weight
Replies
7
Views
1K
Moment of inertia of a system of masses
Replies
10
Views
2K
Finding the Moment of Inertia for a Rectangular Sheet
Replies
1
Views
4K

Hot Threads

Recent Insights

Back
Top