Reflection coefficientIn physics and electrical engineering the reflection coefficient is a parameter that describes how much of a wave is reflected by an impedance discontinuity in the transmission medium. It is equal to the ratio of the amplitude of the reflected wave to the incident wave, with each expressed as phasors. For example, it is used in optics to calculate the amount of light that is reflected from a surface with a different index of refraction, such as a glass surface, or in an electrical transmission line to calculate how much of the electromagnetic wave is reflected by an impedance discontinuity.
Coefficient de FresnelLes coefficients de Fresnel, introduits par Augustin Jean Fresnel (1788-1827), interviennent dans la description du phénomène de réflexion-réfraction des ondes électromagnétiques à l'interface entre deux milieux, dont l'indice de réfraction est différent. Ils expriment les liens entre les amplitudes des ondes réfléchies et transmises par rapport à l'amplitude de l'onde incidente. On définit le coefficient de réflexion en amplitude r et le coefficient de transmission en amplitude t du champ électrique par : où Ei, Er et Et sont les amplitudes associées respectivement au champ électrique incident, réfléchi et transmis (réfracté).
Radio-frequency engineeringRadio-frequency (RF) engineering is a subset of electronic engineering involving the application of transmission line, waveguide, antenna and electromagnetic field principles to the design and application of devices that produce or use signals within the radio band, the frequency range of about 20 kHz up to 300 GHz. It is incorporated into almost everything that transmits or receives a radio wave, which includes, but is not limited to, mobile phones, radios, WiFi, and two-way radios.
Sinusoidal plane-wave solutions of the electromagnetic wave equationSinusoidal plane-wave solutions are particular solutions to the electromagnetic wave equation. The general solution of the electromagnetic wave equation in homogeneous, linear, time-independent media can be written as a linear superposition of plane-waves of different frequencies and polarizations. The treatment in this article is classical but, because of the generality of Maxwell's equations for electrodynamics, the treatment can be converted into the quantum mechanical treatment with only a reinterpretation of classical quantities (aside from the quantum mechanical treatment needed for charge and current densities).
Reflection (mathematics)In mathematics, a reflection (also spelled reflexion) is a mapping from a Euclidean space to itself that is an isometry with a hyperplane as a set of fixed points; this set is called the axis (in dimension 2) or plane (in dimension 3) of reflection. The image of a figure by a reflection is its in the axis or plane of reflection. For example the mirror image of the small Latin letter p for a reflection with respect to a vertical axis (a vertical reflection) would look like q.
Maxwell's equations in curved spacetimeIn physics, Maxwell's equations in curved spacetime govern the dynamics of the electromagnetic field in curved spacetime (where the metric may not be the Minkowski metric) or where one uses an arbitrary (not necessarily Cartesian) coordinate system. These equations can be viewed as a generalization of the vacuum Maxwell's equations which are normally formulated in the local coordinates of flat spacetime.
Onde radioUne onde radioélectrique, communément abrégée en onde radio, est une onde électromagnétique dont la fréquence est inférieure à . Si la longueur d'onde dans le vide est supérieure à (fréquences inférieures à ) on parle d'ondes « radiofréquences ». Si la longueur d'onde dans le vide est comprise entre et (fréquences comprises entre et ) on parle d'ondes « hyperfréquences ». Adaptées au transport de signaux issus de la voix et de l'image, les ondes radio permettent les radiocommunications (talkie-walkies, téléphone sans fil, téléphonie mobile.
Analog transmissionAnalog transmission is a transmission method of conveying information using a continuous signal which varies in amplitude, phase, or some other property in proportion to that information. It could be the transfer of an analog signal, using an analog modulation method such as frequency modulation (FM) or amplitude modulation (AM), or no modulation at all. Some textbooks also consider passband data transmission using a digital modulation method such as ASK, PSK and QAM, i.e.
Ionisation par électronébuliseurthumb|Électronébuliseur L'ionisation par électronébuliseur ou ESI (de l'anglais en) est la dispersion d’un liquide sous forme de gouttelettes chargées électriquement. L'ionisation par électronébuliseur combine deux processus : formation des gouttelettes chargement des gouttelettes. La nébulisation des solutions par ESI est obtenue par une méthode électrostatique, i.e. en appliquant une différence de potentiel élevée (entre ±3 et ±5 kV) entre l’extrémité de l’émetteur (tube capillaire en acier inoxydable, jonction liquide) et un orifice situé à proximité.
IonosphèreL'ionosphère d'une planète est une couche de son atmosphère caractérisée par une ionisation partielle des gaz. Dans le cas de la Terre, elle se situe entre environ d'altitude et recouvre donc une partie de la mésosphère, toute la thermosphère et une partie de l'exosphère. Le rayonnement ultraviolet solaire qui est à l’origine de l’ionosphère réagit sur une partie des molécules atmosphériques en les amputant d’un électron. Un plasma, qui contient des nombres égaux d’électrons et d’ions positifs, est ainsi créé.
Transmission mediumA transmission medium is a system or substance that can mediate the propagation of signals for the purposes of telecommunication. Signals are typically imposed on a wave of some kind suitable for the chosen medium. For example, data can modulate sound, and a transmission medium for sounds may be air, but solids and liquids may also act as the transmission medium. Vacuum or air constitutes a good transmission medium for electromagnetic waves such as light and radio waves.
Electron ionizationElectron ionization (EI, formerly known as electron impact ionization and electron bombardment ionization) is an ionization method in which energetic electrons interact with solid or gas phase atoms or molecules to produce ions. EI was one of the first ionization techniques developed for mass spectrometry. However, this method is still a popular ionization technique. This technique is considered a hard (high fragmentation) ionization method, since it uses highly energetic electrons to produce ions.