{"id":41829,"date":"2019-09-30T08:21:57","date_gmt":"2019-09-30T07:21:57","guid":{"rendered":"https:\/\/www.thermal-engineering.org\/que-es-el-flujo-externo-definicion\/"},"modified":"2020-01-20T14:38:02","modified_gmt":"2020-01-20T13:38:02","slug":"que-es-el-flujo-externo-definicion","status":"publish","type":"post","link":"https:\/\/www.thermal-engineering.org\/es\/que-es-el-flujo-externo-definicion\/","title":{"rendered":"\u00bfQu\u00e9 es el flujo externo? Definici\u00f3n"},"content":{"rendered":"<div class=\"su-quote su-quote-style-default\">\n<div class=\"su-quote-inner su-clearfix\">El flujo externo es un flujo en el que las capas l\u00edmite se desarrollan libremente, sin restricciones impuestas por las superficies adyacentes.\u00a0Flujo externo<\/div>\n<\/div>\n<div><\/div>\n<div>\n<div class=\"lgc-column lgc-grid-parent lgc-grid-100 lgc-tablet-grid-100 lgc-mobile-grid-100 lgc-equal-heights  lgc-first lgc-last\">\n<div class=\"inside-grid-column\">\n<h2><span>Flujo externo<\/span><\/h2>\n<p><span>En la din\u00e1mica de fluidos,\u00a0<\/span><strong><span>el flujo externo<\/span><\/strong><span>\u00a0es un flujo en el que las capas l\u00edmite se desarrollan libremente, sin restricciones impuestas por las superficies adyacentes.\u00a0En comparaci\u00f3n con\u00a0<\/span><a title=\"Flujo interno\" href=\"https:\/\/www.nuclear-power.com\/nuclear-engineering\/fluid-dynamics\/internal-flow\/\"><span>el flujo interno<\/span><\/a><span>\u00a0, los flujos de entrada y los flujos externos presentan efectos altamente viscosos confinados a &#8221;\u00a0<\/span><strong><span>capas l\u00edmite<\/span><\/strong><span>\u00a0&#8221; de r\u00e1pido crecimiento\u00a0en la regi\u00f3n de entrada, o a capas de cizallamiento delgadas a lo largo de la superficie s\u00f3lida.\u00a0En consecuencia, siempre existir\u00e1 una regi\u00f3n del flujo\u00a0<\/span><strong><span>fuera de la capa l\u00edmite<\/span><\/strong><span>\u00a0.\u00a0En esta regi\u00f3n, la velocidad, la temperatura y \/ o la concentraci\u00f3n no cambian y sus gradientes pueden descuidarse.<\/span><\/p>\n<p><strong><span>Este efecto hace que la capa l\u00edmite se expanda y el grosor de la capa l\u00edmite se relaciona con la ra\u00edz cuadrada de la viscosidad cinem\u00e1tica del fluido.<\/span><\/strong><\/p>\n<p><strong><span>Esto se demuestra en la siguiente imagen.\u00a0Lejos del cuerpo, el flujo es casi invisible, se puede definir como el flujo de un fluido alrededor de un cuerpo que est\u00e1 completamente sumergido en \u00e9l.<\/span><\/strong><\/p>\n<p><a href=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/Boundary-layer-on-flat-plate.png\"><img loading=\"lazy\" class=\"aligncenter size-large wp-image-14390 lazy-loaded\" src=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/Boundary-layer-on-flat-plate-1024x357.png\" alt=\"Capa l\u00edmite en placa plana\" width=\"669\" height=\"233\" data-lazy-type=\"image\" data-src=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/Boundary-layer-on-flat-plate-1024x357.png\" \/><\/a><\/p>\n<p><strong>\u00a0<\/strong><\/p>\n<\/div>\n<\/div>\n<div class=\"lgc-column lgc-grid-parent lgc-grid-100 lgc-tablet-grid-100 lgc-mobile-grid-100 lgc-equal-heights  lgc-first lgc-last\">\n<div class=\"inside-grid-column\">\n<div class=\"su-spacer\"><\/div>\n<h2><span>Flujo de fluido sobre una placa plana<\/span><\/h2>\n<p><span>En general, cuando un fluido fluye sobre una\u00a0<\/span><strong><span>superficie estacionaria<\/span><\/strong><span>\u00a0, por ejemplo, la placa plana, el lecho de un r\u00edo o la pared de una tuber\u00eda, el fluido que toca la superficie se detiene por el\u00a0<\/span><strong><span>esfuerzo cortante<\/span><\/strong><span>\u00a0en la pared.\u00a0La regi\u00f3n en la que el flujo se ajusta desde la velocidad cero en la pared hasta un m\u00e1ximo en la corriente principal del flujo se denomina\u00a0<\/span><strong><span>capa l\u00edmite<\/span><\/strong><span>\u00a0.\u00a0El concepto de capas l\u00edmite es importante en todas las din\u00e1micas de fluidos viscosos y tambi\u00e9n en la teor\u00eda de la transferencia de calor.<\/span><\/p>\n<p><span>Las caracter\u00edsticas b\u00e1sicas de todas\u00a0<\/span><strong><span>las capas l\u00edmite laminares y turbulentas<\/span><\/strong><span>\u00a0se muestran en el flujo de revelado sobre una placa plana.\u00a0Las etapas de la formaci\u00f3n de la capa l\u00edmite se muestran en la siguiente figura:<\/span><\/p>\n<p><a href=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/Boundary-layer-on-flat-plate.png\"><img loading=\"lazy\" class=\"aligncenter size-large wp-image-14390 lazy-loaded\" src=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/Boundary-layer-on-flat-plate-1024x357.png\" alt=\"Capa l\u00edmite en placa plana\" width=\"669\" height=\"233\" data-lazy-type=\"image\" data-src=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/Boundary-layer-on-flat-plate-1024x357.png\" \/><\/a><\/p>\n<p><span>Las capas l\u00edmite pueden ser laminares o turbulentas dependiendo del valor del n\u00famero de Reynolds.<\/span><\/p>\n<p><span>Ver tambi\u00e9n: Capa l\u00edmite<\/span><\/p>\n<\/div>\n<\/div>\n<div class=\"lgc-column lgc-grid-parent lgc-grid-100 lgc-tablet-grid-100 lgc-mobile-grid-100 lgc-equal-heights  lgc-first lgc-last\">\n<div class=\"inside-grid-column\"><\/div>\n<\/div>\n<div class=\"lgc-column lgc-grid-parent lgc-grid-100 lgc-tablet-grid-100 lgc-mobile-grid-100 lgc-equal-heights  lgc-first lgc-last\">\n<div class=\"inside-grid-column\">\n<h2><span>Tubo en flujo cruzado<\/span><\/h2>\n<figure id=\"attachment_14392\" class=\"wp-caption alignright\" aria-describedby=\"caption-attachment-14392\"><a href=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/External-Flow-tube.png\"><img loading=\"lazy\" class=\"size-full wp-image-14392 lazy-loaded\" src=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/External-Flow-tube.png\" alt=\"Flujo externo - tubo\" width=\"397\" height=\"428\" data-lazy-type=\"image\" data-src=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/External-Flow-tube.png\" \/><\/a><figcaption id=\"caption-attachment-14392\" class=\"wp-caption-text\"><span>Fuente: Blevins, RD (1990), Flow Induced Vibration, 2nd Edn., Van Nostrand Reinhold Co.<\/span><\/figcaption><\/figure>\n<p><span>El flujo cruzado de tubos o cilindros muestra muchos reg\u00edmenes de flujo, que dependen del\u00a0<\/span><strong><span>n\u00famero de Reynolds<\/span><\/strong><span>\u00a0.<\/span><\/p>\n<ul>\n<li><strong><span>Re\u00a0<\/span><sub><span>D<\/span><\/sub><span>\u00a0&lt;5<\/span><\/strong><span>\u00a0.\u00a0En los n\u00fameros de Reynolds por debajo de 1 no se produce separaci\u00f3n.<\/span><\/li>\n<li><strong><span>5 \u2264 Re\u00a0<\/span><sub><span>D<\/span><\/sub><span>\u00a0\u2264 45<\/span><\/strong><span>\u00a0.\u00a0En este rango de n\u00fameros de Reynolds, el flujo se separa del lado posterior del tubo y se forma un par sim\u00e9trico de v\u00f3rtices en la\u00a0<\/span><strong><span>estela<\/span><\/strong><span>\u00a0cercana\u00a0.<\/span><\/li>\n<li><strong><span>40 \u2264 Re\u00a0<\/span><sub><span>D<\/span><\/sub><span>\u00a0\u2264 150<\/span><\/strong><span>\u00a0.\u00a0En este rango de n\u00fameros de Reynolds, la\u00a0<\/span><em><span>estela se<\/span><\/em><span>\u00a0vuelve inestable y\u00a0se inicia el\u00a0<\/span><strong><span>desprendimiento de v\u00f3rtex<\/span><\/strong><span>\u00a0.<\/span><\/li>\n<li><strong><span>150 &lt;Re\u00a0<\/span><sub><span>D<\/span><\/sub><span>\u00a0&lt;300<\/span><\/strong><span>\u00a0.\u00a0En este rango de n\u00fameros de Reynolds, el flujo es transitorio y gradualmente se vuelve turbulento a medida que aumenta el n\u00famero de Reynolds.<\/span><\/li>\n<li><strong><span>300 &lt;Re\u00a0<\/span><sub><span>D<\/span><\/sub><span>\u00a0&lt;1.5 \u00b7 10\u00a0<\/span><sup><span>5<\/span><\/sup><\/strong><span>\u00a0.\u00a0Esta regi\u00f3n se llama subcr\u00edtica.\u00a0La capa l\u00edmite laminar se separa a unos 80 grados aguas abajo del punto de estancamiento frontal y el desprendimiento del v\u00f3rtice es fuerte y peri\u00f3dico.<\/span><\/li>\n<li><strong><span>2 \u00b7 10\u00a0<\/span><sup><span>5<\/span><\/sup><span>\u00a0&lt;Re\u00a0<\/span><sub><span>D<\/span><\/sub><span>\u00a0&lt;3.5 \u00b7 10\u00a0<\/span><sup><span>6<\/span><\/sup><\/strong><span>\u00a0.\u00a0Los efectos tridimensionales interrumpen el proceso regular de eliminaci\u00f3n y se ampl\u00eda el espectro de las frecuencias de eliminaci\u00f3n.\u00a0Con un aumento adicional de Re\u00a0<\/span><sub><span>D<\/span><\/sub><span>\u00a0, el flujo ingresa al r\u00e9gimen cr\u00edtico.<\/span><\/li>\n<li><strong><span>Re\u00a0<\/span><sub><span>D<\/span><\/sub><span>\u00a0&gt; 3.5 \u00b7 10\u00a0<\/span><sup><span>6<\/span><\/sup><\/strong><span>\u00a0.\u00a0Este r\u00e9gimen se llama supercr\u00edtico.\u00a0En este r\u00e9gimen, se restablece un desprendimiento de v\u00f3rtice regular con una capa l\u00edmite turbulenta en la superficie del tubo.<\/span><\/li>\n<\/ul>\n<p><a href=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/External-Flow-flow-reversal.png\"><img loading=\"lazy\" class=\"aligncenter size-full wp-image-14391 lazy-loaded\" src=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/External-Flow-flow-reversal.png\" alt=\"Flujo externo - inversi\u00f3n de flujo\" width=\"531\" height=\"200\" data-lazy-type=\"image\" data-src=\"https:\/\/thermal-engineering.org\/wp-content\/uploads\/2019\/05\/External-Flow-flow-reversal.png\" \/><\/a><\/p>\n<\/div>\n<\/div>\n<div class=\"lgc-column lgc-grid-parent lgc-grid-100 lgc-tablet-grid-100 lgc-mobile-grid-100 lgc-equal-heights  lgc-first lgc-last\">\n<div class=\"inside-grid-column\"><\/div>\n<\/div>\n<\/div>\n<div class=\"lgc-column lgc-grid-parent lgc-grid-100 lgc-tablet-grid-100 lgc-mobile-grid-100 lgc-equal-heights lgc-first lgc-last\">\n<div class=\"inside-grid-column\">\n<div class=\"su-accordion\">\n<p>&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;&#8230;.<\/p>\n<p>Este art\u00edculo se basa en la traducci\u00f3n autom\u00e1tica del art\u00edculo original en ingl\u00e9s. Para m\u00e1s informaci\u00f3n vea el art\u00edculo en ingl\u00e9s. Puedes ayudarnos. Si desea corregir la traducci\u00f3n, env\u00edela a: translations@nuclear-power.com o complete el formulario de traducci\u00f3n en l\u00ednea. Agradecemos su ayuda, actualizaremos la traducci\u00f3n lo antes posible. Gracias.<\/p>\n<\/div>\n<\/div>\n<\/div>\n","protected":false},"excerpt":{"rendered":"<p>El flujo externo es un flujo en el que las capas l\u00edmite se desarrollan libremente, sin restricciones impuestas por las superficies adyacentes.\u00a0Flujo externo Flujo externo En la din\u00e1mica de fluidos,\u00a0el flujo externo\u00a0es un flujo en el que las capas l\u00edmite se desarrollan libremente, sin restricciones impuestas por las superficies adyacentes.\u00a0En comparaci\u00f3n con\u00a0el flujo interno\u00a0, los &#8230; <a title=\"\u00bfQu\u00e9 es el flujo externo? 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