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Sect 5.4: Eigenvalues of I & Principal Axis Transformation. Definition of inertia tensor (continuous body): I jk ∫ V ρ (r)[r 2 δ jk - x j x k ]dV Clearly, I jk is symmetric: I jk = I kj Out of the 9 elements I jk only 6 are independent.
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Sect 5.4: Eigenvalues of I & Principal Axis Transformation • Definition of inertia tensor (continuous body): Ijk ∫Vρ(r)[r2δjk - xjxk]dV • Clearly, Ijk is symmetric: Ijk = Ikj Out of the 9 elements Ijk only 6 are independent. Ijk depend on the location of the origin of the body axes set & on the orientation of the body axes with respect to the body. • Symmetry There exists a set of coordinates Principal Axesin which the tensor Ijk is diagonalwith 3 Principal Values I1, I2, I3.In this system, the angular momentum: L = Iω becomes: L1 = I1ω1, L2 = I2ω2, L3 = I3ω3. the KE T = (½)ωIωbecomes: T = (½)I1(ω1)2 + (½)I2(ω2)2 + (½)I3(ω3)2
Get principal axes set and principal values of tensor I by diagonalizing I. That is, by findingeigenvalues (principal valuesI1, I2, I3) & eigenvectors (definingprincipal axes). • From Ch. 4, do this by solving determinant eigenvalue problem or by a similarity transformation on I. • Given inertia matrix I, principal axes & principal values can be found byfindinga suitable rotation matrix (findinga proper set of Euler angles ,θ,ψ)A and performing the similarity transformation: ID = AIA-1 = AIÃsuch thatIDis a diagonal matrix. That is, want ID to have form: I1 0 0 I1, I2, I3 eigenvalues of I ID = 0 I2 0I1, I2, I3 principal Components ofI 0 0 I3 Directions x, y, z defined by the eigenvectors principal axes of I
Once I is diagonalized, Principal Components (I1, I2, I3)& principal Axes (x, y, z)are known. • Then, can get I relative to any other axes set by another similarity transformation: I = AI(A)-1 = A IÃ • Also Parallel Axis Theorem might be used to shift rotation axis. • The matrix algebra method to diagonalize I Solve secular eqtn: (I - I1)R = 0 (1) The Eigenvalue Problem Values of I which satisfy (1) Eigenvalues (I1, I2, I3) Vectors R which satisfy (1) Eigenvectors x, y, z
(I - I1)R = 0 (1) Ixx - I Ixy Ixz Ixy Iyy - I Iyz = 0 (2) Ixz Iyz Izz - I • Have used Ijk = Ikj. • 3 solutions to (2):Eigenvalues (I1, I2, I3) • Put these into (1) & get: Eigenvectors Ri = x, y, z= Principal Axes. • Often, can know principal axes by the object symmetry. • Some Properties of the Eigenvalues (I1, I2, I3) 1. Can’t be < 0! Ii > 0, (i = 1,2,3) 2. If one Ii = 0, the body is vanishingly small in the direction given by the corresponding eigenvector.
Principal axes from geometry: • Moment of inertia about the rotation axis n: I nIn • Body Cartesian axes unit vectors: i,j,k Define: n αi +βj + γk Work out the details of I: I = Ixxα2 +Iyyβ2 +Izzγ2 +2Ixyαβ + 2Iyzβγ + 2Ixzαγ Define the vector ρ n/(I)½ . |ρ| = (I)-½ Write: ρ ρ1i + ρ2j + ρ3k I = Ixx(ρ1)2 + Iyy(ρ2)2 + Izz(ρ3)2 + 2Ixyρ1ρ2 + 2Iyzρ2ρ3+ 2Ixzρ1ρ3 (A) (A) I = I(ρ1,ρ2,ρ3) Equation of a surface in “ρ” space Inertial Ellipsoid
ρ= n(I)-½ = ρ1i + ρ2j + ρ3k I = Ixx(ρ1)2 +Iyy(ρ2)2 +Izz(ρ3)2 + 2Ixyρ1 ρ2 + 2Iyzρ2ρ3 + 2Ixzρ1ρ3 (A) Equation of a surface in “ρ” space Inertial Ellipsoid • Diagonalizing the inertia tensor I Transforms to principal axes where the moment of inertia I has the form: I = I1(ρ1)2 + I2(ρ2)2 +I3(ρ3)2 (B) The normal form for an ellipsoid! A geometric interpretation of the principal moments of inertia (I1,I2,I3): They are exactly the lengths of the axes of the inertial ellipsoid. If 2 Ij’s are equal, this ellipsoid has 2 equal axes & this is an ellipsoid of revolution. If all 3 are equal, this is a sphere!
Define: The Radius of Gyration R0in terms of the total mass M & the moment of inertia I: I M(R0)2 I is written as if all mass M were a distance R0from the rotation axis. • From the definition of the vector ρ = n(I)-½, we can write: ρ= n(R0)-1(M)-½ A radius vector to a point on the inertia ellipsoid is inversely proportional to the radius of gyration about the direction of that same vector.
Emphasize: • The inertia tensor I & all associated quantities (principal axes, principal moments, inertia ellipsoid, moment of inertia, radius of gyration, etc.) are defined relative to some fixed point in the body. • If we shift this point to somewhere else, all of these in general are changed. The parallel axis theorem can be used. • The principal axis transformation which diagonalizes Iabout an axis through CM will not necessarily diagonalize it about another axis! It will be diagonal with respect to both axes only if the shift is along a vector parallel to one of the original principal axes & only if that axis passes through the CM.
Example 1 from Marion • Calculate the inertia tensor of a homogeneous cube of density ρ, mass M, and side length b. Let one corner be at the origin, and let the 3 adjacent edges lie along the coordinate axes (see figure). (For this choice of coord axes, it should be obvious that the origin does NOTlie at the CM!) Ijk ∫Vρ(r)[r2δjk - xjxk]dV β Mb2 I = Symmetry:
Example 2 from Marion Find the principal moments of inertia & the principal axes for the same cube: Solve secular eqtn: (I - I1)R = 0 So: Row manipulation:
This results in: • Or: • Giving: Diagonal I = To get the principal axes, substitute I1, I2, I3 into the secular equation (I - Ij1)Rj = 0 (j = 1,2,3) & solve for Rj. Find: R1along cube diagonal. R2, R3 each other & R1.
Example 3 from Marion • Calculate the inertia tensor of the same cube in a coord system with origin at the CM. (figure). a = (½)b(1,1,1) Again: Ijk ∫Vρ(r)[r2δjk - xjxk]dV Student exercise to show: I11 = I22 = I33 = (1/6)Mb2, I12 = I21 = I13 = I31 = I23 = I32= 0 1 0 0 ID = = (1/6)Mb2 0 1 0 0 0 1 Or: ID = (1/6)Mb2 1
Sect 5.5: Solving Rigid Body Problems; The Euler Equations • We now have the tools to solve rigid body dynamics problems. Usually assume holonomic constraints. If not (like rolling friction) need to use special methods. • Usually start by seeking a reference point in the body such that the problem can be split into pure translational + pure rotational parts. • If one point in the body is fixed, then obviously all that is needed is to treat the dynamics of the rotation about that point. • If one point is not fixed, it is most useful to choose the reference point in the body to be the CM.
We have already seen that, for case where the reference point is the CM, the KE splits into KE of translation of CM + KE of rotation about an axis through the CM: • We had: T = Ttrans + Trot • 1st term = Ttrans = (½)Mv2 Translational KE of the CM • 2nd term = Trot = (½)∑imi(vi)2. Rotational KE about CM • We’ve written second term as: Trot = (½)ωIω • For n unit vector along the rotation axis: Trot = (½)ω2nIn (½) Iω2 • So:T = (½)Mv2 + (½)Iω2 • For all problems considered here, we can make a similar division for the PE:V = Vtrans + Vrot Lagrangian similarly divides: L = Ltrans + Lrot
More generally (Goldstein notation): L = Ltrans + Lrot = Lc(qc,qc) + Lb(qb,qb) Lc = CM Lagrangian, qc,qc= generalized coordinates & velocities of the CM. Lb = Body Lagrangian, qb,qb= generalized coordinates & velocities of body (rotation). • Can use either Newtonian or Lagrangian methods, of course. In either case, often convenient to work in the principal axes system so that the rotational KE takes the simple form: Trot = (½)I1(ω1)2 + (½)I2(ω2)2 + (½)I3(ω3)2 • The most convenient generalized coordinates to use are the Euler angles: ,θ,ψ. They arecumbersome, but useable. • If the motion is confined to 2 dimensions (the rotation axis is fixed in direction), then only 1 angle describes motion!
Follow Goldstein & start with the Newtonian approach to describe the rotational motion about an axis through a fixed point (like the CM): • Considereitheran inertial frame with the origin at a fixed point in bodyor a space axes system with CM as the origin. • In this case, a Ch. 1 result is: (dL/dt)s = N (1) Newton’s 2nd Law (rotational motion):Time derivative of the total angular momentum L(taken with respect to the space axes)is equal to the total external torque N. • Make use of the Ch. 4 result relating the time derivatives in the space & body axes (angular velocity ω): (d/dt)s = (d/dt)b + ω (2) (dL/dt)s = (dL/dt)b + ω L (3) • Equating (1) & (3) & dropping the “body” subscript (which is understood in what follows) gives:
(dL/dt) + ω L = N (4) • (4): Newtonian eqtn of motion relative to body axes. • In terms of inertia tensor, I, in general, L = Iω needs to be substituted into (4). • For ithcomponent, (4) becomes: (dLi/dt) + ijkωjLk = Ni (4) • Levi-Civita density ijk 0, any 2 indices equal ijk 1, if i, j, k even permutation of 1,2,3 ijk -1, if i, j, k odd permutation of 1,2,3 122 = 313 = 211 = 0, etc. 123= 231= 312=1, 132= 213= 321= -1 • Take the body axes to be the principal axes of I, (relative to the reference point) Li = Iiωi(i = 1,2,3) • (4) becomes (no sum on i) Ii(dωi/dt) + ijkωjωkIk = Ni (5)
Newtonian eqtns of motion relative to the body axes are: Ii(dωi/dt) + ijkωjωkIk = Ni (5) • Write component by component: I1(dω1/dt) - ω2ω3(I2 -I3) = N1 (5a) I2(dω2/dt) - ω3ω1(I3 -I1) = N2 (5b) I3(dω3/dt) - ω1ω2(I1 -I2) = N3 (5c) Euler’s Equations of Motion for a Rigid Body with one point fixed. • Could derive these from Lagrange’s Eqtns, treating torques as generalized forces corresponding to Euler angles as generalized coords. • Special Case: I1 = I2 I3: In this case, a torque in the “1-2” plane (N3 = 0) causes a change in ω1 & ω2 while leaving ω3 = constant. A very important special case! (Sect. 5.7)