Cylinder stressIn mechanics, a cylinder stress is a stress distribution with rotational symmetry; that is, which remains unchanged if the stressed object is rotated about some fixed axis. Cylinder stress patterns include: circumferential stress, or hoop stress, a normal stress in the tangential (azimuth) direction. axial stress, a normal stress parallel to the axis of cylindrical symmetry. radial stress, a normal stress in directions coplanar with but perpendicular to the symmetry axis.
Numerical methods for ordinary differential equationsNumerical methods for ordinary differential equations are methods used to find numerical approximations to the solutions of ordinary differential equations (ODEs). Their use is also known as "numerical integration", although this term can also refer to the computation of integrals. Many differential equations cannot be solved exactly. For practical purposes, however – such as in engineering – a numeric approximation to the solution is often sufficient. The algorithms studied here can be used to compute such an approximation.
Numerical linear algebraNumerical linear algebra, sometimes called applied linear algebra, is the study of how matrix operations can be used to create computer algorithms which efficiently and accurately provide approximate answers to questions in continuous mathematics. It is a subfield of numerical analysis, and a type of linear algebra. Computers use floating-point arithmetic and cannot exactly represent irrational data, so when a computer algorithm is applied to a matrix of data, it can sometimes increase the difference between a number stored in the computer and the true number that it is an approximation of.
Calcul numérique d'une intégraleEn analyse numérique, il existe une vaste famille d’algorithmes dont le but principal est d’estimer la valeur numérique de l’intégrale définie sur un domaine particulier pour une fonction donnée (par exemple l’intégrale d’une fonction d’une variable sur un intervalle). Ces techniques procèdent en trois phases distinctes : Décomposition du domaine en morceaux (un intervalle en sous-intervalles contigus) ; Intégration approchée de la fonction sur chaque morceau ; Sommation des résultats numériques ainsi obtenus.
Phénomène de transfertUn phénomène de transfert (ou phénomène de transport) est un phénomène irréversible durant lequel une grandeur physique est transportée par le biais de molécules. C'est un phénomène transversal présent dans tous les domaines de la science et en ingénierie. Tous les phénomènes de transport ont pour origine l'inhomogénéité d'une grandeur intensive. C'est la tendance spontanée des systèmes physiques et chimiques à rendre uniformes ces grandeurs qui provoquent le transport.
Shear flowIn fluid dynamics, shear flow is the flow induced by a force in a fluid. In solid mechanics, shear flow is the shear stress over a distance in a thin-walled structure. For thin-walled profiles, such as that through a beam or semi-monocoque structure, the shear stress distribution through the thickness can be neglected. Furthermore, there is no shear stress in the direction normal to the wall, only parallel. In these instances, it can be useful to express internal shear stress as shear flow, which is found as the shear stress multiplied by the thickness of the section.
Hydraulique à surface librealt=Écoulement à surface libre rivière James (ressaut hydraulique).|vignette|Écoulement à surface libre rivière James (ressaut hydraulique). L’hydraulique à surface libre est la branche de l'hydraulique et de la mécanique des fluides qui s’intéresse aux écoulements de liquides dans un canal avec une surface libre. Un écoulement en surface libre désigne un écoulement avec une interface libre entre l’air et l’eau, comme dans une rivière, par opposition à un écoulement en charge, où cette interface est absente dans une conduite sous pression par exemple.
Mathematical constantA mathematical constant is a key number whose value is fixed by an unambiguous definition, often referred to by a special symbol (e.g., an alphabet letter), or by mathematicians' names to facilitate using it across multiple mathematical problems. Constants arise in many areas of mathematics, with constants such as e and pi occurring in such diverse contexts as geometry, number theory, statistics, and calculus. Some constants arise naturally by a fundamental principle or intrinsic property, such as the ratio between the circumference and diameter of a circle (pi).
Empirical formulaIn chemistry, the empirical formula of a chemical compound is the simplest whole number ratio of atoms present in a compound. A simple example of this concept is that the empirical formula of sulfur monoxide, or SO, would simply be SO, as is the empirical formula of disulfur dioxide, S2O2. Thus, sulfur monoxide and disulfur dioxide, both compounds of sulfur and oxygen, have the same empirical formula. However, their molecular formulas, which express the number of atoms in each molecule of a chemical compound, are not the same.
Boundary layer thicknessThis page describes some of the parameters used to characterize the thickness and shape of boundary layers formed by fluid flowing along a solid surface. The defining characteristic of boundary layer flow is that at the solid walls, the fluid's velocity is reduced to zero. The boundary layer refers to the thin transition layer between the wall and the bulk fluid flow. The boundary layer concept was originally developed by Ludwig Prandtl and is broadly classified into two types, bounded and unbounded.