All Stories

  1. Game-Theoretical Viewpoint to Optimal Design
  2. Derivation of the S-N curve from the closed-form solutions of AFGROW and NASGRO(R) equations
  3. Five-Dimensional Euler Equations for Rotating Bodies
  4. Rotating multidimensional rigid bodies
  5. 5D-Euler Equations for Rotating Bodies
  6. Tensor Formalism for Rotating Bodies in Multidimensional Euclidian Space
  7. Forman–Kearney–Engle fractal propagation law of fatigue crack
  8. Transition of Fatigue Crack in Metals from Planar to Fractional Regime
  9. Flexible rotor shafts for electric motors: dynamics and stability
  10. Ausknicken einer gleichzeitig verdrehten, komprimierten oder gezogenen Schraubenfeder
  11. Berechnungsgrundlagen von Schraubenfedern
  12. Einfluss der mittleren Spannung auf die Ermüdungslebensdauer
  13. Einführung in Mechanik und Gestaltung von Federn
  14. Federntechnologie
  15. Gleitende und eingespannte Tellerfedern
  16. Kriechen und Relaxation von Federn
  17. Optimales Design von Schraubenfedern
  18. Prozesse des Windens und der Kaltumformung von Metallfedern
  19. Relaxation bei verzogener Vorsetzung
  20. Schwingungen und Stabilität von Schraubenfedern
  21. Simulation und Finite-Elemente-Analyse von Fahrzeugfedern
  22. Vorsetzen von Schraubendruckfedern
  23. On the Game-Based Approach to Optimal Design
  24. On the Game-Based Approach to Optimal Design
  25. On the Game-Based Approach to Optimal Design
  26. Fundamentals of Springs Mechanics
  27. Optimal Design from Noether’s Viewpoint
  28. Coiling of Helical Springs
  29. Creep and Relaxation of Springs
  30. Disk Springs
  31. Disk Springs with Variable Thickness
  32. Factors Affecting the Fatigue Life of Springs
  33. Failure Analysis Based on Weakest Link Concepts
  34. Fatigue of Spring Materials
  35. Fundamentals of Structural Optimization (II)
  36. Governing Equations for Shells Optimization
  37. Hereditary and Non-stationary Structural Optimization
  38. Irregular and Regular Assemblies in 2D Topology Optimal Design
  39. Irregular and Regular Assemblies in 3D Topology Optimal Design
  40. Noether’s Approach to Dynamic Systems
  41. Noether’s Approach to Elasticity
  42. Optimal Axially Loaded Membrane Shells
  43. Optimal Pressured Vessels Made of Anisotropic Materials
  44. Optimal Pressured Vessels Made of Isotropic Material
  45. Optimization in Anisotropic Elasticity
  46. Presetting and Residual Stresses in Springs
  47. Principles of Spring Design
  48. Radially Constrained Disk Springs
  49. Shape Optimization of Piecewise-Homogeneous Bodies
  50. Shape and Anisotropy Optimization in Nonlinear Elasticity
  51. Simultaneous Optimization of Shape and Anisotropy
  52. Statistical Effects on Fatigue of Spring Materials
  53. Stress Distributions Over Wire Cross-Section
  54. Thin-Walled Rods with Semi-open Profiles
  55. Topological Variations and Invariant-Based Optimal Design
  56. Variation and Optimization of Shape
  57. “Equivalent Columns” for Helical Spring
  58. Constant stress can dramatically reduce the ultimate cyclic stress, which can resist a material.
  59. Exact shell solutions for conical springs. III. Belleville springs with variable thickness
  60. Effects of Mean Stress and Multiaxial Loading on Fatigue Life of Springs
  61. Exact shell solutions for conical springs. II. Radial cylindric curb
  62. Closed Form Solution in the Buckling Optimization Problem of Twisted Shafts
  63. The book explains the mathematical theory of optimization of basic structural elements
  64. Structural Optimization for Stability of Circular Rings
  65. Optimization of Needle-Shaped Stiffeners
  66. Stability Optimization of Twisted Rods
  67. Optimization and Inverse Solutions for Plane Contacts
  68. Optimization for Axisymmetric Contacts, Charged and Conducting Disks
  69. Optimization for Buckling of Conservative Systems of Second Kind
  70. Optimization for Periodic Arrays of Needle-Shaped Stiffeners
  71. Optimization of Axially Compressed Rods with Mixed Boundary Conditions
  72. Optimization of Compressed Rods with Sturm Boundary Conditions
  73. Optimization of Concurrently Compressed and Torqued Rod
  74. Periodic Greenhill’s Problem for Twisted Elastic Rod
  75. Stability Optimization of Axially Compressed Rods on Elastic Foundations
  76. Stability optimization for a simultaneously twisted and compressed rod
  77. Advanced manufacturing of automotive bodies from tailored rolled blanks with the variable thickness
  78. Closed-form solution for optimization of buckling column
  79. Optimization of concurrently compressed and torqued rod
  80. Closed form solution in buckling optimization problem of twisted rod
  81. Principles of design optimization for springs
  82. Closed-form solution for column buckling optimization
  83. Scale‐deviating operators of Riesz type and the spaces of variable dimensions
  84. The design principles for optimal springs
  85. Coiling of Helical Springs
  86. Creep and Relaxation of Springs
  87. Disk Springs
  88. Durability of Springs
  89. Factors Affecting the Fatigue Life of Springs
  90. Failure Analysis Based on Weakest Link Concept
  91. Fatigue of Spring Materials
  92. Presetting and Residual Stresses in Springs
  93. Statistical Effects on Fatigue of Spring Materials
  94. Stress Distributions Over Cross-Section of Wires
  95. Thin-Walled Rods with Semi-opened Profiles
  96. “Equivalent Columns” for Helical Springs
  97. Comment on “Minimization of maximum failure criterion of laminated composite shell structure by optimizing distributed-material orientation” by Shimoda M., Muramatsu Y., Tsukihara R.
  98. Elastic–plastic deformation and residual stresses in helical springs
  99. Delayed presetting of helical springs
  100. Non‐Leibniz Hamiltonian and Lagrangian formalisms for certain class of dissipative systems
  101. A design reference for engineers developing composite components
  102. Design and Analysis of Composite Structures for Automotive Applications
  103. Basic mechanical properties of composites
  104. Appendix B Anisotropic Elasticity
  105. Appendix C Integral Transforms in Elasticity
  106. Composite Leaf Springs
  107. Design and Optimization of Composite Springs
  108. Dynamics of a Vehicle With Flexible, Anisotropic Structural Elements of Chassis
  109. Dynamics of a Vehicle with Rigid Structural Elements of Chassis
  110. Elastic Anisotropic Behavior of Composite Materials
  111. Equivalent Beams of Helical Anisotropic Springs
  112. Hereditary Mechanics of Composite Springs and Driveshafts
  113. Index
  114. Meander-Shaped Springs
  115. Micromechanical Failure Criteria of Composites
  116. Optimization Principles for Structural Elements Made of Composites
  117. Optimization of Composite Driveshaft
  118. Phenomenological Failure Criteria of Composites
  119. Approximate static aeroelastic analysis of composite wings
  120. Mechanics with non‐Leibniz derivatives
  121. An advanced treatise of the complete discipline of spring design and manufacturing
  122. Unification proposals for fatigue crack propagation laws
  123. Fatigue of Spring Materials
  124. Principles of Spring Design
  125. “Equivalent Columns” for Helical Springs
  126. Stress Distributions Over Cross-Section of Wires
  127. Coiling Process for Helical Springs
  128. Thin-Walled Rods with Semi-Opened Profiles
  129. Disk Springs
  130. Failure Probability of Helical Spring
  131. Creep and Relaxation of Springs
  132. Generalizations of Creep Laws for Spring Materials
  133. Semi-Opened Profiles for Twist-Beam Automotive Axles
  134. A proposal for unification of fatigue crack growth law
  135. Optimization of load-transfer and load-diffusion
  136. Weakest link concept for springs fatigue
  137. Addendum to “relaxation and creep in twist and flexure”
  138. Lattice of infinite bending-resistant fibers
  139. How to build the strongest pressure vessel from composite material (carbon or glass)
  140. The lightest pressure vessel
  141. Some exact analytical solutions in structural optimization
  142. Isoperimetric inequality in the periodic Greenhill Problem of twisted elastic rod
  143. The extreme property of twisted spherical shell
  144. Exact shell solutions for conical springs
  145. Topological derivatives for fundamental frequencies of elastic bodies
  146. Effect of static axial compression on the natural frequencies of helical springs
  147. Relaxation and creep in twist and flexure
  148. Some basic solutions for nonlinear creep
  149. Topological derivatives for fundamental frequencies of elastic bodies
  150. PARETO and NASH fronts as the limit case of the isoperimetric inequality in multiobjective optimization theory
  151. Comment to the Article “Several Examples of Application of Nash and Pareto Approaches to Multiobjective Structural Optimization with Uncertainties” of N. V. Banichuk, F. Ragnedda, M. Serra
  152. Thin-Walled Rods With Semiopened Profiles
  153. Confirmation of Lagrange hypothesis for twisted elastic rod
  154. Thin-walled rods with semi-open profile for semi-solid automotive suspension
  155. On the Lagrangian and instability of medium with defects
  156. Elastoplastic Stress Analysis and Residual Stresses in Cylindrical Bar Under Combined Bending and Torsion
  157. Comments on “Shape and topology optimization for periodic problems part I: the shape and the topological derivative”
  158. Elastic-plastic work-hardening deformation under combined bending and torsion and residual stresses in helical springs
  159. Theory of optimal residual stresses and defects distribution
  160. “Bubble-and-grain” method and criteria for optimal positioning inhomogeneities in topological optimization
  161. Linear non‐conservative systems with fractional damping and the derivatives of critical load parameter
  162. The variant of post-Newtonian mechanics with generalized fractional derivatives
  163. Mircopolar Model of Fracture for Composite Material
  164. Sensitivity analysis of the linear nonconservative systems with fractional damping
  165. Design and optimization of elastic nonlinear helical springs
  166. Bubble method for topology and shape optimization of structures
  167. A structural model of ceramics: Multiple fracture
  168. On a game approach to optimal structural design
  169. Isoperimetric inequalities in optimal structural design
  170. Isoperimetric Inequalities in Stability Problems
  171. Explicit crack problem solutions of hybrid composites
  172. Structural analysis and optimization modelling including fracture conditions
  173. Microstructural Model of a Fibrous Composite Fracture
  174. A Structural Model of Ceramic Deformation and Fracture∗
  175. Shape Optimization Using Boundary Elements
  176. Isoperimetric Inequalities in the Anisotropic Rod Torsion Problem∗
  177. Fragmentation of a composite material and fragmentation of fibres under a dynamic load
  178. Rational bounding in the problem of the plane stress state of an ideal fiber composite
  179. Pull-out of fibers from the matrix on the surface of a crack in a composite
  180. An isoperimetric inequality in the optimization of circular rings under normal pressure
  181. Numerical method for shape optimization using BEM
  182. Integral Equation Methods in the Internal Structure Optimization
  183. Model of thin-walled anisotropic rods
  184. Fracture of fibers by a crack propagating in a composite
  185. Isoperimetric inequality in the problem of the stability of a circular ring under normal pressure
  186. On optimal plastic anisotropy
  187. Rational schemes for reinforcing laminar plates from composite materials
  188. Analytical solutions to problems of optimum reinforcement for multilayer plates made of composite materials
  189. Optimization of structures made of randomly reinforced composites
  190. Optimizing the effective characteristics of granular composites in component-design problems