{"id":481,"date":"2018-07-11T10:57:24","date_gmt":"2018-07-11T10:57:24","guid":{"rendered":"https:\/\/the-regs.co.uk\/blog\/?p=481"},"modified":"2018-07-11T11:00:25","modified_gmt":"2018-07-11T11:00:25","slug":"calculating-volt-drop-with-the-18th-edition","status":"publish","type":"post","link":"https:\/\/the-regs.co.uk\/blog\/?p=481","title":{"rendered":"Calculating Volt-Drop with the 18th Edition"},"content":{"rendered":"<p><strong>Calculating voltage drop\u2026<\/strong><\/p>\n<p>You won\u2019t find this formula anywhere in BS7671:2018 as this is another example of where G&amp;G \/ EAL assume some prior electrical theory knowledge, but the formula is&#8230;<\/p>\n<p>Voltage Drop = (mV\/A\/m) x Ib x L \/ 1000.<\/p>\n<p><strong>(mV\/A\/m):<\/strong> To find the value for (mV\/A\/m) we need to look in the current carry capacity and voltage drop tables within Appendix 4, and the fastest way to finding the table you need is by using Table of Tables on page 522.<br \/>\n<strong>Ib:<\/strong> is the design current which is usually just watts divided by voltage if you need to work it out.<br \/>\n<strong>L:<\/strong> is just the length of the circuit in metres.<\/p>\n<p>We divide it all by 1000 to convert the figure from Millivolts into Volts<\/p>\n<p><strong>Note:<\/strong> By finding the value for volt-drop (mV\/A\/m) within <strong>Appendix 4<\/strong> we can calculate the voltage drop for every type of cable we are likely to use. It\u2019s worth remembering though that there are a couple of things that you cannot calculate voltage drop for using your copy of BS7671:2018 and that is power track and lighting trunking systems. This is because it doesn\u2019t give any values for voltage drop for those systems anywhere in the book and you would need to get the information from the manufacturer.<\/p>\n<p><strong>Let\u2019s have a look at a question\u2026<\/strong><\/p>\n<p><em>A multi-core 70 degrees C thermoplastic non-armoured cable with 2.5 mm conductors supplies a single-phase load of 20 amp at 230 volts over 22m. What is the voltage drop in the cable going to be<\/em>?<\/p>\n<p>To work this out first need to put these values into the formula. We can see that the load is 20 amp which is your design current (Ib) and the length is 22 m long.<br \/>\nNext, we need to find the value of (mV\/A\/m) for a multi-core 70 degrees C thermoplastic non-armoured cable with 2.5 mm conductors.<\/p>\n<p>If you go to the Table of tables on page 522 to start.<\/p>\n<p>Within Table of tables, just towards the bottom of page 523 you\u2019ll find current carrying capacities and voltage drop for cables and the table for we are looking for is multi-core 70 degrees C thermoplastic non-armoured cable is which is Table 4D2A with the voltage drop table for this cable being Table 4D2B on page 404<\/p>\n<p><strong>Table 4D2B on page 404\u2026<\/strong><\/p>\n<p>It\u2019s a 2.5 mm sq conductor and we are looking for a single-phase so have a look in column 3 and we can see that it\u2019s 18 mv\/A\/m.<\/p>\n<p>And now that we have all of the figures it\u2019s time to work it out\u2026<br \/>\n18 x 20 x 22 = 7920 divided by 1000 gives us 7.92V<\/p>\n<p>Which means that the voltage drop for a multi-core 70 degrees C thermoplastic non-armoured cable with 2.5 mm conductors supplying a single-phase load of 20 amp at 230 volts over 22m <strong>is 7.92V<\/strong><\/p>\n<p>There&#8217;s two more common formula question that you may come across in the 18th Edition exam.<\/p>\n<p><a href=\"https:\/\/the-regs.co.uk\/18thEdition\/onlinecourse.html\">See our 18th Edition online course for more information<\/a><\/p>\n","protected":false},"excerpt":{"rendered":"<p>Calculating voltage drop\u2026 You won\u2019t find this formula anywhere in BS7671:2018 as this is another example of where G&amp;G \/ EAL assume some prior electrical theory knowledge, but the formula is&#8230; Voltage Drop = (mV\/A\/m) x Ib x L \/ 1000. (mV\/A\/m): To find the value for (mV\/A\/m) we need to look in the current&#8230;<\/p>\n","protected":false},"author":1,"featured_media":0,"comment_status":"open","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"_jetpack_newsletter_access":"","_jetpack_dont_email_post_to_subs":false,"_jetpack_newsletter_tier_id":0,"_jetpack_memberships_contains_paywalled_content":false,"_jetpack_memberships_contains_paid_content":false,"footnotes":""},"categories":[19],"tags":[],"class_list":["post-481","post","type-post","status-publish","format-standard","hentry","category-18th-edition-bs7671-wiring-regulations","th-blog blog-single has-post-thumbnail"],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v27.9 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Calculating Volt-Drop with the 18th Edition - the-Regs : BS7671 18th Edition Online Training<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/the-regs.co.uk\/blog\/?p=481\" \/>\n<meta property=\"og:locale\" content=\"en_GB\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Calculating Volt-Drop with the 18th Edition - the-Regs : BS7671 18th Edition Online Training\" \/>\n<meta property=\"og:description\" content=\"Calculating voltage drop\u2026 You won\u2019t find this formula anywhere in BS7671:2018 as this is another example of where G&amp;G \/ EAL assume some prior electrical theory knowledge, but the formula is&#8230; Voltage Drop = (mV\/A\/m) x Ib x L \/ 1000. 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I've also been a successful electrical installation tutor since 2008. Delivering both City &amp; Guilds \\\/ EAL level 3 courses including \\\"18th Edition Wiring Regulations, Inspection &amp; Testing (initial verification and periodic inspection, testing and reporting), Building Regulations, PAT and Part P etc.\\\" both in the private sector and local FE colleges. I've also been running my own training center since 2015. 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