Calculating Angle Between Cube Ribs

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The discussion centers on calculating the angle between two ribs of a cube, specifically from the cube's vertices to its center. Participants clarify terminology, with "ribs" referring to diagonals and "heads" to vertices, noting that the angle between two diagonals is a right angle. The law of cosines is discussed as a method to find the angle BOA, with emphasis on symmetry simplifying the calculation. Corrections are made regarding the cosine law formula, ensuring accurate application. Overall, the conversation highlights the importance of understanding geometric relationships in 3D space.
sky08
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hello , How are you all?
look at this question
what the magnitude of the angle that between two ribs from the heads of the cube to its center ?
I attempted by using cosine law [look at the pecture in attachment]
but, Hwo to apply this law on the cube (3D)?
any one help me >>and thank you anyway
 

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I am afraid that I don't understand what you mean by "ribs" or "heads" of a cube. Are the "ribs" diagonals and the "heads" vertices? In that case, the angle between two diagonals is a right angle. You don't need the cosine law to see that.
 
yes ,,
look at attachment the picture is clear that explanation
I calculat it by using simple way but How to use cosine law to giveangle theta in pecture
an thanks Mr.HallsofIvy
 

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Hmm in the drawing is theta the same as angle BOA? Well either way it's BOA or half of BOA due to symmetry so you can find BOA easily and divide if you have to.

Angle BOA has two \frac{\sqrt{3}r}{2} sides that make up Angle BOA. The law of cosines tells us that (AB)^2 = (OA)^2 + (OB)^2 + 2(OA)(OB)cos(Angle BOA). Then just solve for Angle BOA.

Although really you shouldn't need the law of cosines.
 
Hmm in the drawing is theta the same as angle BOA? Well either way it's BOA or half of BOA due to symmetry so you can find BOA easily and divide if you have to.

sorry , my explanation not clearly anyway


now I understand

used cosine law directly and I don't need analysis all angles because I can find it from symmetry considerations .
thank you very much
 
snipez90 said:
Hmm in the drawing is theta the same as angle BOA? Well either way it's BOA or half of BOA due to symmetry so you can find BOA easily and divide if you have to.

Angle BOA has two \frac{\sqrt{3}r}{2} sides that make up Angle BOA. The law of cosines tells us that (AB)^2 = (OA)^2 + (OB)^2 + 2(OA)(OB)cos(Angle BOA). Then just solve for Angle BOA.

Although really you shouldn't need the law of cosines.

Err, the formula is (AB)^2 = (OA)^2 + (OB)^2 - 2(OA)(OB)cos(Angle BOA).
 
thanks Mr. BoundByAxioms for your correcting :>
I hope the best for all
 

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