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K-layer

The stress-strain relations in arbitrary in-plane coordinates, namely Equation (4.5), are useful in the definition of the laminate stiffnesses because of the arbitrary orientation of the constituent laminae. Both Equations (4.4) and (4.5) can be thought of as stress-strain relations for the k layer of a multilayered laminate. Thus, Equation (4.5) can be written as... [Pg.191]

By substitution of the strain variation through the thickness, Equation (4.13), in the stress-strain relations, Equation (4.6), the stresses in the k layer can be expressed in ternis of the laminate middle-surface strains and curvatures as... [Pg.195]

The extensional and bending stiffnesses for the general case are calculated from Equation (4.24) wherein for the k " layer... [Pg.208]

Hartman, E., Keeler, K., and Kowalski, J. K., Layered Neural Networks with Gaussian hidden rmits as uttiversal approximators. Neural Comput. 2, 210 (1990). [Pg.204]

Figure 29. Possible general phase relations for illite and associated phyllosilicates as a function of varying P-T conditions. Ill = illite, either predominantly IMd or 2M in polymorph I = illite, 2M mica ID = k layer ordered mixed layered phase MLSS = mixed layered 3 or 2 layer ordering giving a superstructure reflection ML0 = mixed layered, ordered structure with no superstructure MLr = mixed layered non-ordered M, = fully expandable montmorillonite Chi = chlorite Kaol = kaolinite Exp 3 " expanding chlorite and/or corrensite. Figure 29. Possible general phase relations for illite and associated phyllosilicates as a function of varying P-T conditions. Ill = illite, either predominantly IMd or 2M in polymorph I = illite, 2M mica ID = k layer ordered mixed layered phase MLSS = mixed layered 3 or 2 layer ordering giving a superstructure reflection ML0 = mixed layered, ordered structure with no superstructure MLr = mixed layered non-ordered M, = fully expandable montmorillonite Chi = chlorite Kaol = kaolinite Exp 3 " expanding chlorite and/or corrensite.
I layers are between As layers, and K layers are between oxygen layers. K and I atoms are in hexagonal prisms of 12 oxygen atoms. The hexagonal cell contains one molecule, P6Jmmm with a0 = 5.277, and c0 = 9.157 A. [Pg.184]

Schober, A., Minichiello, L., Keller, M., Huber, K., Layer, P.G., Roig-Lopez, J.L., Garcia-Arraras, J.E., Klein, R., Unsicker, K. (1997). Reduced acetylcholinesterase (AChE) activity in adrenal medulla and loss of sympathetic preganglionic neurons in TrkA-deficient, but not TrkB-deficient, mice. J. Neurosci. 17 891-903. [Pg.716]

Attention focuses on the cylindrical section of the hydrogen vessel subjected to internal pressure with close-end effect loading (Figure 1). The itmer radius Rq and its thickness e are constant. The vessel strength is ensured by Ug layers of filament wound composite. The k layer is characterised by its thickness ep(k) and winding angle P(k). The radial, the hoop and the axial coordinates are respectively denoted by r, 0 and z. Regarding at the usual assumption, the displacement fields is expressed as ... [Pg.212]

Taking into account a progressive plasticization of the liner involves to arbitrarily considering ui layer through the metal thickness. Consequently, the structure is assumed to be made of (ni + Us) layers. Moreover, to be rigorous in the present analysis the same relations should have been expressed under an increment form. The symmetric stiffness tensor of the k layer takes the following expression in the cylindrical coordinate system ... [Pg.215]

After its installation a source was degassed at 3-6 A for few hours and then at 8-9 A for few seconds. Before each evaporation the source was always degassed for 5-10 second at a larger (by about 1 A) current than the evaporation current. Evaporation of K began at about 7 A, but typically 10 A was used in order to decrease the deposition time. 20 seconds were required to deposit a monolayer of K on Ag(lll) surface at 10 A. Within the limit of detectability of AES and XPS, the K layers were found to be free of impurities for the sources degassed following the procedure... [Pg.61]

There are 3 layer neural network. The k layer Input sum of i unit is its output is Pf combination weight of the j neuron in k- layer and the i neuron in k layer is W j input and output function of Each neuron and is/ the relationship between each variable is shown as follows. [Pg.1206]

FIGURE 2. Proton and K fluxes for a pair of thin filaments and a thick filament. Only one cross-bridge has been shown. In the lower part of the diagram the loop flow of the K layer has been indicated. [Pg.550]

The equations for the fluxes of and and the expression for the diffusion potential will be derived now for a filament on the basis of the assumptions discussed in Section 2.2. Across the length / of the proton-con-ducting filament a chemical potential difference FKh= —i Tln Ch(/)/ch(0) is assumed to be maintained by two synchronized chemical reactions which inject and take out H at z = 0 and z = 1 respectively. The K layer has the radial extension from r = ator = a-ft/ with the thickness d corresponding roughly to the Debye length. The concentration of in the K layer will... [Pg.550]

For the viscous force between a myofilament and the K layer we will use the same relation as that which gives the viscous force between two layers of a viscous fluid ... [Pg.555]


See other pages where K-layer is mentioned: [Pg.196]    [Pg.242]    [Pg.350]    [Pg.432]    [Pg.294]    [Pg.495]    [Pg.90]    [Pg.169]    [Pg.274]    [Pg.274]    [Pg.275]    [Pg.276]    [Pg.328]    [Pg.71]    [Pg.73]    [Pg.54]    [Pg.518]    [Pg.241]    [Pg.118]    [Pg.62]    [Pg.70]    [Pg.294]    [Pg.50]    [Pg.166]    [Pg.188]    [Pg.312]    [Pg.806]    [Pg.546]    [Pg.547]    [Pg.549]    [Pg.550]    [Pg.551]    [Pg.553]    [Pg.555]    [Pg.556]   
See also in sourсe #XX -- [ Pg.555 ]




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