{"id":28681,"date":"2013-05-21T16:53:13","date_gmt":"2013-05-21T11:23:13","guid":{"rendered":"http:\/\/www.kopykitab.com\/blog\/?p=28681"},"modified":"2013-05-21T16:53:13","modified_gmt":"2013-05-21T11:23:13","slug":"biot-savart-law-notes","status":"publish","type":"post","link":"https:\/\/www.kopykitab.com\/blog\/biot-savart-law-notes\/","title":{"rendered":"Biot Savart Law Notes"},"content":{"rendered":"<h1 style=\"text-align: center;\">Biot Savart Law Notes<\/h1>\n<p><span style=\"font-family: Arial; font-size: small;\">The magnetic equivalent of Coulomb&#8217;s law is the\u00a0<b>Biot-Savart law<\/b>\u00a0for the magnetic field produced by a short segment of wire,\u00a0<img alt=\"tex2html_wrap_inline3262\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img212.gif\" width=\"14\" height=\"11\" align=\"bottom\" \/>, carrying current\u00a0<i>I<\/i>:<\/p>\n<p><img alt=\"displaymath3761\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img308.gif\" width=\"315\" height=\"33\" align=\"bottom\" \/><br \/>\n<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">where the direction of\u00a0<img alt=\"tex2html_wrap_inline3262\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img212.gif\" width=\"14\" height=\"11\" align=\"bottom\" \/>\u00a0is in the direction of the current and where the vector\u00a0<img alt=\"tex2html_wrap_inline3163\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img195.gif\" width=\"7\" height=\"7\" align=\"bottom\" \/>\u00a0points from the short segment of current to the observation point where we are to compute the magnetic field. Since current must flow in a circuit, integration is always required to find the total magnetic field at any point. The constant\u00a0<img alt=\"tex2html_wrap_inline3748\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img305.gif\" width=\"15\" height=\"16\" align=\"middle\" \/>\u00a0is chosen so that when the current is in amps and the distances are in meters, the magnetic field is correctly given in units of tesla. Its value in our SI units is\u00a0<b>exactly<br \/>\n<\/b><br \/>\n<img alt=\"displaymath3769\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img309.gif\" width=\"426\" height=\"18\" align=\"bottom\" \/><br \/>\n<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">A quick comparison of this value with the Biot-Savart law probably makes you wonder what role\u00a0<img alt=\"tex2html_wrap_inline3771\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img310.gif\" width=\"17\" height=\"11\" align=\"bottom\" \/>\u00a0is supposed to play here. It plays the same role it did in Coulomb&#8217;s law: it was required in Coulomb&#8217;s law so that Gauss&#8217;s law wouldn&#8217;t have a\u00a0<img alt=\"tex2html_wrap_inline3771\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img310.gif\" width=\"17\" height=\"11\" align=\"bottom\" \/>, and it is required in the Biot-Savart law so that Ampere&#8217;s law won&#8217;t have one either.<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">There are two simple cases where the magnetic field integrations are easy to carry out, and fortunately they are in geometries that are of practical use. We use the formula for the magnetic field of an infinitely long wire whenever we want to estimate the field near a segment of wire, and we use the formula for the magnetic field at the center of a circular loop of wire whenever we want to estimate the magnetic field near the center of any loop of wire.<\/span><\/p>\n<p><b><span style=\"font-family: Arial; font-size: small;\">Infinitely Long Wire:\u00a0\u00a0<\/span><\/b><span style=\"font-family: Arial; font-size: small;\">\u00a0The magnetic field at a point a distance\u00a0<i>r<\/i>\u00a0from an infinitely long wire carrying current\u00a0<i>I<\/i>\u00a0has magnitude<\/p>\n<p><img alt=\"displaymath3779\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img311.gif\" width=\"281\" height=\"33\" align=\"bottom\" \/><br \/>\n<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">and its direction is given by a\u00a0<b><span style=\"text-decoration: underline;\">right-hand rule<\/span><\/b>: point the thumb of your right hand in the direction of the current, and your fingers indicate the direction of the circular magnetic field lines around the wire.<\/span><\/p>\n<p><b><span style=\"font-family: Arial; font-size: small;\">Circular Loop:\u00a0\u00a0<\/span><\/b><span style=\"font-family: Arial; font-size: small;\">\u00a0The magnetic field\u00a0<b><span style=\"text-decoration: underline;\">at the center<\/span><\/b>\u00a0of a circular loop of current-carrying wire of radius\u00a0<i>R<\/i>\u00a0has magnitude<\/p>\n<p><img alt=\"displaymath3783\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img312.gif\" width=\"280\" height=\"34\" align=\"bottom\" \/><br \/>\n<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">and its direction is given by another\u00a0<b><span style=\"text-decoration: underline;\">right-hand rule<\/span><\/b>: curl the fingers of your right hand in the direction of the current flow, and your thumb points in the direction of the magnetic field inside the loop.<\/span><\/p>\n<p><b><span style=\"font-family: Arial; font-size: small;\">Long Thick Wire:\u00a0\u00a0<\/span><\/b><span style=\"font-family: Arial; font-size: small;\">\u00a0Imagine a very long wire of radius\u00a0<i>a<\/i>\u00a0carrying current\u00a0<i>I<\/i>\u00a0distributed symmetrically so that the current density,\u00a0<i>J<\/i>, is only a function of distance\u00a0<i>r<\/i>\u00a0from the center of the wire. Ampere&#8217;s law can be used to find the magnetic field at any radius\u00a0<i>r<\/i>. Outside the wire, where\u00a0<img alt=\"tex2html_wrap_inline3795\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img313.gif\" width=\"35\" height=\"24\" align=\"middle\" \/>, we have<\/p>\n<p><img alt=\"displaymath3797\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img314.gif\" width=\"288\" height=\"33\" align=\"bottom\" \/><br \/>\n<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">just as if all the current were concentrated at the center of the wire. Inside the wire, where\u00a0<i>r<\/i>\u00a0&lt;\u00a0<i>a<\/i>, we have<\/p>\n<p><img alt=\"displaymath3801\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img315.gif\" width=\"298\" height=\"33\" align=\"bottom\" \/><br \/>\n<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">where\u00a0<i>I<\/i>(<i>r<\/i>) is the current flowing through the disk of radius\u00a0<i>r<\/i>\u00a0inside the wire; the current outside this disk contributes nothing to the magnetic field at\u00a0<i>r<\/i>. Note that this is analogous to the result for symmetric electric fields, discussed in Chapter 24.<\/span><\/p>\n<p><b><span style=\"font-family: Arial; font-size: small;\">Long Solenoid:\u00a0\u00a0<\/span><\/b><span style=\"font-family: Arial; font-size: small;\">\u00a0Imagine a long solenoid of length\u00a0<i>L<\/i>\u00a0with\u00a0<i>N<\/i>\u00a0turns of wire wrapped evenly along its length. Ampere&#8217;s law can be used to show that the magnetic field inside the solenoid is uniform throughout the volume of the solenoid (except near the ends where the magnetic field becomes weak) and is given by<\/p>\n<p><img alt=\"displaymath3813\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img316.gif\" width=\"323\" height=\"33\" align=\"bottom\" \/><br \/>\n<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">where\u00a0<i>n<\/i>\u00a0=\u00a0<i>N<\/i>\/<i>L<\/i>.<\/span><\/p>\n<p><b><span style=\"font-family: Arial; font-size: small;\">Toroid:\u00a0\u00a0<\/span><\/b><span style=\"font-family: Arial; font-size: small;\">\u00a0Imagine a toroid consisting of\u00a0<i>N<\/i>\u00a0evenly spaced turns of wire carrying current<i>I<\/i>. (Imagine winding wire onto a bagel, with the wire coming up through the hole, out around the outside, then up through the hole again, etc..) Ampere&#8217;s law can be used to show that the magnetic field within the volume enclosed by the toroid is given by<\/p>\n<p><img alt=\"displaymath3821\" src=\"http:\/\/www.cartage.org.lb\/en\/themes\/Sciences\/Physics\/Electromagnetism\/Magnetostatics\/Currentsmagnetism\/BiotSavartLaw\/img317.gif\" width=\"295\" height=\"34\" align=\"bottom\" \/><br \/>\n<\/span><\/p>\n<p><span style=\"font-family: Arial; font-size: small;\">where\u00a0<i>R<\/i>\u00a0is the distance from the\u00a0<i>z<\/i>-axis in cylindrical coordinates, with the\u00a0<i>z<\/i>-axis pointing straight up through the hole in the center of the bagel.<\/span><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Biot Savart Law Notes The magnetic equivalent of Coulomb&#8217;s law is the\u00a0Biot-Savart law\u00a0for the magnetic field produced by a short segment of wire,\u00a0, carrying current\u00a0I: where the direction of\u00a0\u00a0is in the direction of the current and where the vector\u00a0\u00a0points from the short segment of current to the observation point where we are to compute the &#8230; <a title=\"Biot Savart Law Notes\" class=\"read-more\" href=\"https:\/\/www.kopykitab.com\/blog\/biot-savart-law-notes\/\" aria-label=\"More on Biot Savart Law Notes\">Read more<\/a><\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"fifu_image_url":"","fifu_image_alt":""},"categories":[4773],"tags":[],"amp_enabled":true,"_links":{"self":[{"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/posts\/28681"}],"collection":[{"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/posts"}],"about":[{"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/types\/post"}],"author":[{"embeddable":true,"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/users\/1"}],"replies":[{"embeddable":true,"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/comments?post=28681"}],"version-history":[{"count":0,"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/posts\/28681\/revisions"}],"wp:attachment":[{"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/media?parent=28681"}],"wp:term":[{"taxonomy":"category","embeddable":true,"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/categories?post=28681"},{"taxonomy":"post_tag","embeddable":true,"href":"https:\/\/www.kopykitab.com\/blog\/wp-json\/wp\/v2\/tags?post=28681"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}