... 196 4 .2. 2.1. Longitudinal modes 196 4 .2. 2 .2. Torsion modes 20 0 4 .2. 2.3. Flexure (or bending) modes 20 0 4 .2. 2.4. Bending coupled with shear modes 20 5 4 .2. 3. Rayleigh’s quotient 20 7 4 .2. 3.1. Bending of ... external loads 318 6 .2. 2. Boundary conditions 319 6 .2. 2.1. Kirchhoff effective shear forces and corner forces 319 6 .2. 2 .2. Elastic boundary conditions 322 6 .2....
Ngày tải lên: 13/08/2014, 05:22
MODELLING OF MECHANICAL SYSTEM VOLUME 2 Episode 2 pdf
... that: λ +2G(cos θ) 2 G = λ +2G(1 −(sin θ) 2 ) G = λ +2G(1 −(γ sin β) 2 ) G = γ 2 (1 2( sin β) 2 ) = γ 2 cos 2 The system [1.1 12] is thus transformed into: γ cos 2 −sin 2 sin 2 γcos 2 R C = −γ ... 2 R C = −γ cos 2 sin 2 [1.113] which has the non-trivial solution: R = sin 2 sin 2 −(γ cos 2 ) 2 sin 2 sin 2 +(γ cos 2 ) 2 ; C = 2 sin 2 cos...
Ngày tải lên: 13/08/2014, 05:22
... as: x+dL /2 x−dL /2 (S) r × ρ ∂ 2 ξ ∂t 2 − ∂ t 1 ∂x dS dx = x+dL /2 x−dL /2 (S) (r × f (e) )dS dx + M (e) (x; t)dL [2. 20] Using the relations [2. 1], [2. 8], and [2. 9], the following ... case of the longitudinal mode of deformation to the shear case. 2. 2 .2. 2 General solution without external loading Z(x) = a x 0 dx GS + b [2. 34] a and b are two arbi...
Ngày tải lên: 13/08/2014, 05:22
MODELLING OF MECHANICAL SYSTEM VOLUME 2 Episode 4 pptx
... GS ∂Y s ∂x 2 + ∂Z s ∂x 2 dx + 1 2 L 0 GJ T ∂ψ x ∂x 2 + EI z ∂ 2 Y b ∂x 2 2 + EI y ∂ 2 Z b ∂x 2 2 dx [3 .2] The kinetic energy E κ is: E κ = 1 2 L 0 ρS{ ˙ X 2 + ( ˙ Y s + ˙ Y b ) 2 + ( ˙ Z s + ˙ Z b ) 2 }dx + 1 2 L 0 ρ(J ˙ ψ 2 x + I y ˙ ψ 2 y + ... expression of the bending moment, we get: M y =− 2Eaz 3 0 3 χ + σ...
Ngày tải lên: 13/08/2014, 05:22
MODELLING OF MECHANICAL SYSTEM VOLUME 2 Episode 5 pptx
... is equivalent to the system: ∂ 2 ∂x 2 EI y ∂ 2 Z ∂x 2 + ρS ∂ 2 Z ∂t 2 = 0; ∀x ∈[0, L] ∂ ∂x EI y ∂ 2 Z ∂x 2 x 0 + − ∂ ∂x EI y ∂ 2 Z ∂x 2 x 0 − = F (e) z (t) [3. 72] example 3.–Beam ... +E n I n ℓ n 0 ∂ 2 Z n ∂x 2 2 dx =[X I Z I Z ′ I X J Z k Z ′ J ] K 11 K 12 K 13 K 14 K 15 K 16 K 21 K 22 K 23 K 24 K 25 K...
Ngày tải lên: 13/08/2014, 05:22
MODELLING OF MECHANICAL SYSTEM VOLUME 2 Episode 6 ppsx
... −6γℓ 0 − 12 −6γℓ 0 −6γℓ 4γℓ 2 06γℓ 2 ℓ 2 −10 0 1 0 0 0 − 12 6γℓ 0 12 6γℓ 0 −6γℓ 2 ℓ 2 06γℓ 4γℓ 2 ⇒ K (2) = K ℓ 1000 0 12 −6γℓ −6γℓ 0 −6γℓ 12 2 ℓ 2 0 −6γℓ 2 ℓ 2 4γℓ 2 Then, ... 4γℓ 2 ⇒ K (1) = K ℓ 4γℓ 2 06γℓ 2 ℓ 2 010 0 6γℓ 0 12 6γℓ 2 ℓ 2 06γℓ 4γℓ 2 U 2 W 2 ϕ 2 U 3 W 3 ϕ 3 T ⇒ U 2 W 2 ϕ...
Ngày tải lên: 13/08/2014, 05:22
MODELLING OF MECHANICAL SYSTEM VOLUME 2 Episode 7 pdf
... follows: 2 L + ̟ 2 1 − ̟ 2 2 L 2 L 2 L 2 L 2 L + ̟ 2 2 − ̟ 2 2 L 2 L 2 L 2 L 2 L + ̟ 2 3 − ̟ 2 2 L 2 L 2 L 2 L 2 L + ̟ 2 4 − ̟ 2 q 1 q 2 q 3 q 4 = 0 0 0 0 by ... homogeneous system to be solved is: 2( γ L + ̟ 2 ) 2 L 2 L 2 L 2 L 2 L + π 2 − ̟ 2 2γ L 2 L 2 L 2 L 2 L + 4π 2 − ̟ 2 2γ L...
Ngày tải lên: 13/08/2014, 05:22
MODELLING OF MECHANICAL SYSTEM VOLUME 2 Episode 8 potx
... or odd Ehπ 2 4 n 2 η + m 2 η 2 α 2 n,m + n 2 η + m 2 2η β 2 n,m otherwise Ehπ 2 4 n 2 η + m 2 η 2 α 2 n,m + n 2 η + m 2 2η β 2 n,m + 8n 2 m 2 π 2 (n 2 − m 2 ) 2 α n,m β n,m where ... system: 4Eh M π 2 4 n 2 + m 2 η 2 2 − ω ′ n,m 2 2n 2 m 2 η 2 (n 2 − m 2 ) 2 2n 2 m 2 η 2 (n 2 −...
Ngày tải lên: 13/08/2014, 05:22
MODELLING OF MECHANICAL SYSTEM VOLUME 2 Episode 9 pps
... Z ε xx =−z ∂ 2 Z ∂x 2 + 1 2 ∂Z ∂x 2 + z 2 2 ∂ 2 Z ∂x 2 2 + ∂ 2 Z ∂x∂y 2 ε xy =−z ∂ 2 Z ∂x∂y + z 2 2 ∂ 2 Z ∂x∂y ∂ 2 Z ∂x 2 + ∂ 2 Z ∂y 2 + 1 2 ∂Z ∂x ∂Z ∂y ε yy =−z ∂ 2 Z ∂y 2 + 1 2 ∂Z ∂y 2 + z 2 2 ∂ 2 Z ∂y 2 2 + ∂ 2 Z ∂x∂y 2 [6.89] In ... m 2 ) 2 ; α n,m = β n,m out -of- phase modes: f n,m = c 2L...
Ngày tải lên: 13/08/2014, 05:22
MODELLING OF MECHANICAL SYSTEM VOLUME 2 Episode 10 pdf
... ςdn ⇒ (d P) 2 = (d r) 2 + (dς ) 2 + ς 2 (d n) 2 + 2 dr ·d n [7 .28 ] dr is in the tangent plane so (dr) 2 = g 2 α (dα) 2 + g 2 β (dβ) 2 [7 .29 ] The determination of (d n) 2 is obtained ... [6.68], D[[Z]]=p 0 ⇒ ∂ 2 ∂r 2 + 1 r ∂ ∂r + 1 r 2 ∂ 2 ∂θ 2 ∂ 2 Z ∂r 2 + 1 r ∂Z ∂r + 1 r 2 ∂ 2 Z ∂θ 2 = p 0 D [6. 124 ] The problem is independ...
Ngày tải lên: 13/08/2014, 05:22