{"id":731,"date":"2013-12-20T01:11:53","date_gmt":"2013-12-20T00:11:53","guid":{"rendered":"http:\/\/www.proof.de\/?post_type=encyclopedia&#038;p=731"},"modified":"2023-08-19T00:47:17","modified_gmt":"2023-08-18T22:47:17","slug":"kelwin","status":"publish","type":"encyclopedia","link":"https:\/\/blog.proofs.de\/pl\/lexikon\/kelvin\/","title":{"rendered":"Kelvin"},"content":{"rendered":"<div class=\"kk-star-ratings kksr-auto kksr-align-right kksr-valign-top\" data-payload='{\"align\":\"right\",\"id\":\"731\",\"slug\":\"default\",\"valign\":\"top\",\"ignore\":\"\",\"reference\":\"auto\",\"class\":\"\",\"count\":\"0\",\"legendonly\":\"\",\"readonly\":\"\",\"score\":\"0\",\"starsonly\":\"\",\"best\":\"5\",\"gap\":\"5\",\"greet\":\"Jetzt bewerten\",\"legend\":\"0\\\/5 - (0 votes)\",\"size\":\"24\",\"title\":\"Kelvin\",\"width\":\"0\",\"_legend\":\"{score}\\\/{best} - ({count} {votes})\",\"font_factor\":\"1.25\"}'>\n            \n<div class=\"kksr-stars\">\n    \n<div class=\"kksr-stars-inactive\">\n            <div class=\"kksr-star\" data-star=\"1\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" data-star=\"2\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" data-star=\"3\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" data-star=\"4\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" data-star=\"5\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n    <\/div>\n    \n<div class=\"kksr-stars-active\" style=\"width: 0px;\">\n            <div class=\"kksr-star\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n            <div class=\"kksr-star\" style=\"padding-right: 5px\">\n            \n\n<div class=\"kksr-icon\" style=\"width: 24px; height: 24px;\"><\/div>\n        <\/div>\n    <\/div>\n<\/div>\n                \n\n<div class=\"kksr-legend\" style=\"font-size: 19.2px;\">\n            <span class=\"kksr-muted\">Prosz\u0119 oceni\u0107 teraz<\/span>\n    <\/div>\n    <\/div>\n<p>Kelwin to bezwzgl\u0119dna jednostka temperatury u\u017cywana w nauce.<\/p>\n<p class=\"translation-block\"><a href=\"https:\/\/blog1.proofen.de\/es\/lexico-2\/temperatura-de-color\/\" target=\"_self\" class=\"encyclopedia tooltipstered\">temperatura barwowa<\/a> \u017ar\u00f3d\u0142a \u015bwiat\u0142a, monitora lub obrazu w Kelwinach d<a href=\"https:\/\/blog1.proofen.de\/es\/lexico-2\/efi\/\" target=\"_self\" class=\"encyclopedia tooltipstered\">efi<\/a> odpowiada temperaturze absolutnie czarnego obiektu, gdyby \u015bwieci\u0142 on w tej bieli. Tutaj znajd\u0105 Pa\u0144stwo bardziej szczeg\u00f3\u0142owe wyja\u015bnienie:<\/p>\n<h3>Promiennik cia\u0142a doskonale czarnego i prawo promieniowania Plancka:<\/h3>\n<p>Cia\u0142o doskonale czarne to hipotetyczny obiekt, kt\u00f3ry emituje promieniowanie elektromagnetyczne w funkcji swojej temperatury. Max Planck opracowa\u0142 prawo promieniowania Plancka, aby opisa\u0107 w\u0142a\u015bciwo\u015bci promieniowania cia\u0142a doskonale czarnego. Prawo to m\u00f3wi, \u017ce rozk\u0142ad widmowy emitowanego promieniowania zale\u017cy od temperatury cia\u0142a doskonale czarnego. W wy\u017cszych temperaturach promiennik cia\u0142a doskonale czarnego emituje wi\u0119cej energii na kr\u00f3tszych d\u0142ugo\u015bciach fal (wy\u017cszych cz\u0119stotliwo\u015bciach), co powoduje, \u017ce \u015bwiat\u0142o ma niebieskawy kolor. W ni\u017cszych temperaturach emisja na d\u0142u\u017cszych falach (ni\u017cszych cz\u0119stotliwo\u015bciach) jest wy\u017csza, przez co \u015bwiat\u0142o wydaje si\u0119 czerwonawe.<\/p>\n<h3>Zastosowanie do rzeczywistych \u017ar\u00f3de\u0142 \u015bwiat\u0142a:<\/h3>\n<p>W praktyce rzeczywiste \u017ar\u00f3d\u0142a \u015bwiat\u0142a, takie jak \u017car\u00f3wki, lampy fluorescencyjne, \u015bwiat\u0142o dzienne itp. nie mog\u0105 by\u0107 traktowane jako emitery idealnej czerni. Niemniej jednak mo\u017cemy wykorzysta\u0107 prawo promieniowania Plancka do zdefiniowania temperatury, kt\u00f3ra opisuje odcie\u0144 \u015bwiat\u0142a, jaki mia\u0142oby to \u017ar\u00f3d\u0142o przy idealnym czarnym promieniowaniu. Ta zdefiniowana temperatura jest mierzona w Kelwinach i okre\u015blana jako \"temperatura \u015bwiat\u0142a\".<\/p>\n<h3>Temperatury barwowe w praktyce:<\/h3>\n<p>Zastosowanie jednostki Kelvina do pomiaru temperatury \u015bwiat\u0142a umo\u017cliwia znormalizowany i obiektywny opis \u017ar\u00f3de\u0142 \u015bwiat\u0142a. \u0179r\u00f3d\u0142a \u015bwiat\u0142a o ni\u017cszych warto\u015bciach Kelvina (np. 2000 K - 3000 K) s\u0105 postrzegane jako \"ciep\u0142e\" lub czerwonawe, podczas gdy \u017ar\u00f3d\u0142a \u015bwiat\u0142a o wy\u017cszych warto\u015bciach Kelvina (np. 5000 K - 6500 K) s\u0105 postrzegane jako \"ch\u0142odne\" lub niebieskawe.<\/p>\n<h3>Zastosowania:<\/h3>\n<p class=\"translation-block\">Wykorzystanie Kelwin\u00f3w do opisania temperatury \u015bwiat\u0142a jest wa\u017cne w wielu dziedzinach. W fotografii i produkcji wideo wyb\u00f3r odpowiedniej temperatury \u015bwiat\u0142a mo\u017ce wp\u0142yn\u0105\u0107 na nastr\u00f3j i atmosfer\u0119 obrazu. W technologii o\u015bwietleniowej zastosowanie warto\u015bci Kelvina pomaga w wyborze \u017ar\u00f3de\u0142 \u015bwiat\u0142a, kt\u00f3re tworz\u0105 po\u017c\u0105dan\u0105 jako\u015b\u0107 kolor\u00f3w i atmosfer\u0119. W <a href=\"https:\/\/blog1.proofen.de\/es\/lexico-2\/gestion-del-color\/\" target=\"_self\" class=\"encyclopedia tooltipstered\">zarz\u0105dzaniu kolorami<\/a>, uwzgl\u0119dnienie temperatury \u015bwiat\u0142a umo\u017cliwia dok\u0142adne odwzorowanie kolor\u00f3w na r\u00f3\u017cnych ekranach i drukarkach. \u015awiat\u0142o dzienne jest definiowane jako 6500 Kelwin\u00f3w; dla druku w Europie, <a href=\"https:\/\/blog1.proofen.de\/es\/lexico-2\/d50\/\" target=\"_self\" class=\"encyclopedia tooltipstered\">D50<\/a> <a href=\"https:\/\/blog1.proofen.de\/es\/lexico-2\/luz-normal\/\" target=\"_self\" class=\"encyclopedia tooltipstered\">standardowe \u015bwiat\u0142o<\/a> to temperatura barwowa 5000 Kelwin\u00f3w. Monitory do przetwarzania obrazu s\u0105 zwykle kalibrowane do 5800 Kelwin\u00f3w, poniewa\u017c ta nieco \"ch\u0142odniejsza\" warto\u015b\u0107 okaza\u0142a si\u0119 bardziej praktyczna do dopasowywania kolor\u00f3w ni\u017c czysta, stosunkowo \u017c\u00f3\u0142tawa warto\u015b\u0107 5000 Kelwin\u00f3w.<\/p>\n<p>Og\u00f3lnie rzecz bior\u0105c, zastosowanie Kelvina do pomiaru temperatury \u015bwiat\u0142a zapewnia praktyczn\u0105 i znormalizowan\u0105 metod\u0119 opisywania i kontrolowania koloru \u017ar\u00f3de\u0142 \u015bwiat\u0142a, co ma ogromne znaczenie w wielu obszarach percepcji wizualnej i technologii.<\/p>\n<p>Nawiasem m\u00f3wi\u0105c, s\u0142owo \"stopie\u0144\" nie jest u\u017cywane w odniesieniu do Kelvina. Temperatura 5000 stopni Kelvina nie jest okre\u015blana jako \"5000 stopni Kelvina\", a jedynie jako 5000 stopni Kelvina lub \"5000 K\".<\/p>","protected":false},"excerpt":{"rendered":"<p>Kelwin to bezwzgl\u0119dna jednostka temperatury stosowana w nauce. \u015awiat\u0142o dzienne jest zdefiniowane jako 6500 Kelwin\u00f3w, dla druku w Europie stosuje si\u0119 temperatur\u0119 barwow\u0105 5000 Kelwin\u00f3w ze standardowym \u015bwiat\u0142em D50.<\/p>","protected":false},"author":2,"featured_media":0,"comment_status":"open","ping_status":"open","template":"","meta":{"om_disable_all_campaigns":false,"inline_featured_image":false,"_monsterinsights_skip_tracking":false,"footnotes":""},"class_list":["post-731","encyclopedia","type-encyclopedia","status-publish","hentry","no-featured-image-padding"],"aioseo_notices":[],"aioseo_head":"\n\t\t<!-- All in One SEO 5.0.1.1 - aioseo.com -->\n\t<meta name=\"description\" content=\"Kelvin ist eine absolute Temperatureinheit. 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