Tension de cycleEn chimie organique, la tension de cycle ou contrainte cyclique désigne la déstabilisation d'une molécule cyclique, telle un cycloalcane, causée par l'orientation spatiale des atomes qui la composent. Cette tension provient d'une combinaison (1) de contrainte d'angle, (2) de contrainte de torsion (ou tension de Pitzer) et (3) de la tension trans-annulaire (ou contrainte de van der Waals).
StressLe stress (de l'anglais stress ) est, en biologie, l'ensemble des réactions d'un organisme soumis à des pressions ou contraintes de l'environnement, les . Ces réactions dépendent toujours de la perception qu'a l'individu des pressions qu'il ressent. Selon la définition médicale, il s'agit d'une séquence complexe de situations provoquant des réactions physiologiques, psychosomatiques. Par extension tous ces incidents sont également qualifiés de stress. Dans le langage courant, on parle de stress positif (eustress en anglais) ou négatif (distress).
Prelog strainIn organic chemistry, transannular strain (also called Prelog strain after chemist Vladimir Prelog) is the unfavorable interactions of ring substituents on non-adjacent carbons. These interactions, called transannular interactions, arise from a lack of space in the interior of the ring, which forces substituents into conflict with one another. In medium-sized cycloalkanes, which have between 8 and 11 carbons constituting the ring, transannular strain can be a major source of the overall strain, especially in some conformations, to which there is also contribution from large-angle strain and Pitzer strain.
Stress managementStress management consists of a wide spectrum of techniques and psychotherapies aimed at controlling a person's level of stress, especially chronic stress, usually for the purpose of improving everyday functioning. Stress produces numerous physical and mental symptoms which vary according to each individual's situational factors. These can include a decline in physical health, such as headaches, chest pain, fatigue, and sleep problems, as well as depression.
Stress–strain analysisStress–strain analysis (or stress analysis) is an engineering discipline that uses many methods to determine the stresses and strains in materials and structures subjected to forces. In continuum mechanics, stress is a physical quantity that expresses the internal forces that neighboring particles of a continuous material exert on each other, while strain is the measure of the deformation of the material. In simple terms we can define stress as the force of resistance per unit area, offered by a body against deformation.
Alliage à mémoire de formeUn alliage à mémoire de forme (AMF) est un alliage possédant plusieurs propriétés inédites parmi les matériaux métalliques : la capacité de garder en mémoire une forme initiale et d'y retourner même après une déformation, la possibilité d'alterner entre deux formes préalablement mémorisées lorsque sa température varie autour d'une température critique, et un comportement superélastique permettant des allongements sans déformation permanente supérieurs à ceux des autres métaux.
Necking (engineering)In engineering and materials science, necking is a mode of tensile deformation where relatively large amounts of strain localize disproportionately in a small region of the material. The resulting prominent decrease in local cross-sectional area provides the basis for the name "neck". Because the local strains in the neck are large, necking is often closely associated with yielding, a form of plastic deformation associated with ductile materials, often metals or polymers.
PseudoelasticityPseudoelasticity, sometimes called superelasticity, is an elastic (reversible) response to an applied stress, caused by a phase transformation between the austenitic and martensitic phases of a crystal. It is exhibited in shape-memory alloys. Pseudoelasticity is from the reversible motion of domain boundaries during the phase transformation, rather than just bond stretching or the introduction of defects in the crystal lattice (thus it is not true superelasticity but rather pseudoelasticity).
Structural steelStructural steel is a category of steel used for making construction materials in a variety of shapes. Many structural steel shapes take the form of an elongated beam having a of a specific cross section. Structural steel shapes, sizes, chemical composition, mechanical properties such as strengths, storage practices, etc., are regulated by standards in most industrialized countries. Most structural steel shapes, such as -beams, have high second moments of area, which means they are very stiff in respect to their cross-sectional area and thus can support a high load without excessive sagging.
NitinolLe nickel-titane, connu aussi sous le nom de Nitinol est un alliage de nickel et de titane, dans lequel ces deux éléments sont approximativement présents dans les mêmes pourcentages. Cet alliage possède deux propriétés bien spécifiques : la mémoire de forme et une super-élasticité (connue également sous le nom de pseudo-élasticité). La mémoire de forme correspond à la capacité du nitinol à retrouver sa forme originale après avoir enduré une déformation, ainsi que celle d’alterner entre deux formes autour d’une température de transformation critique.