{"id":16501,"date":"2018-07-30T00:11:00","date_gmt":"2018-07-29T22:11:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/engineers-use-tiki-torches-in-study-of-soot-diesel-filters.html"},"modified":"2018-07-30T00:11:00","modified_gmt":"2018-07-29T22:11:00","slug":"engineers-use-tiki-torches-in-study-of-soot-diesel-filters","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/engineers-use-tiki-torches-in-study-of-soot-diesel-filters\/","title":{"rendered":"Engineers use Tiki torches in study of soot, diesel filters"},"content":{"rendered":"<p>Chemical engineers testing methods to improve efficiency of diesel engines while maintaining performance are getting help from a summer staple: Tiki torches.<\/p>\n<p> <!--more--> <\/p>\n<p>A  team of engineers at the University of Notre Dame is using the backyard  torches as part of an effort to mimic the soot oxidation process in a  diesel engine &mdash; when soot in diesel exhaust collects in the walls of a  particulate filter and has to be burned off &mdash; according to a study  recently published in <a href=\"http:\/\/www.mdpi.com\/2073-4344\/8\/6\/247\/htm\">Catalysts<\/a>.<\/p>\n<p>&ldquo;This  study is part of an effort over many years in which we have discovered  and developed low-cost catalysts for soot oxidation that are based on  silica glass,&rdquo; said <a href=\"https:\/\/engineering.nd.edu\/profiles\/pmcginn\">Paul McGinn<\/a>, a co-lead author of the study and professor in the <a href=\"https:\/\/cbe.nd.edu\/\">Department of Chemical and Biomolecular Engineering<\/a> at Notre Dame.<\/p>\n<p>McGinn  and co-principal investigator Changsheng Su at Cummins Inc. developed a  method to coat diesel particulate filters with a silica glass, which  slowly releases potassium ions. The potassium acts as a catalyst,  reducing temperatures required to initiate filter regeneration &mdash; or soot  oxidation &mdash; for improved efficiency.<\/p>\n<p>What  they needed was a simple way to simulate real-world driving conditions,  including the continuous flow of soot as it passes through a diesel  particulate filter.<\/p>\n<p>&ldquo;We  could do it continuously using the Tiki torch, using the Tiki soot as a  surrogate for real engine soot,&rdquo; McGinn said. &ldquo;Depending on the  setting, you really get a lot of soot coming off of it, which is what we  want.&rdquo; The team constructed a sophisticated reactor equipped with soot  generator and backpressure sensors, which allows them to control  conditions including oxygen rates, air-to-fuel ratios and soot  production per hour.<\/p>\n<p>New  methods of reducing soot oxidation are of particular interest to  manufacturers of diesel engines. Diesel exhaust contains, among other  things, soot particles and nitrogen oxides (NOx), with soot being a  major contributor to global warming and a cause of breathing problems.  The Environmental Protection Agency (EPA) has been working to reduce  emissions from vehicles, industrial vehicles, locomotives and ships for  more than a decade.<\/p>\n<p>For  diesel engine vehicles, the EPA requires both soot and NOx be kept  below certain levels but challenges remain to reducing those emissions  economically without sacrificing performance. When the engine&rsquo;s  operating conditions are adjusted to emit low levels of NOx, soot levels  increase, and vice versa.<\/p>\n<p>A  standard diesel particulate filter is a ceramic cylinder with a  honeycomb-style structure and porous walls. Every other channel &mdash; or  opening &mdash; of the filter is closed off. As exhaust enters the filter,  soot collects along the interior walls as cleaned exhaust passes  through.<\/p>\n<p>To  burn off soot buildup along the filter walls, exhaust temperatures need  to reach 600 degrees Celsius (1,112 F). &ldquo;When you&rsquo;re in an urban  environment where you&rsquo;re stopping and starting your engine, the exhaust  temperature doesn&rsquo;t get that hot,&rdquo; McGinn said.<\/p>\n<p>In  some cases, fuel is used to heat up the filter and burn off the soot &mdash; a  process called active regeneration &mdash; which delivers a hit the vehicle&rsquo;s  fuel mileage and requires substantial noble metal (such as platinum)  usage.<\/p>\n<p>&ldquo;Everyone  is looking for a low-cost way to get the temperature down,&rdquo; McGinn  said. &ldquo;In our case, we&rsquo;ve developed an inexpensive glass coating that&rsquo;s  one to two microns thick and apply it to the diesel particulate filters.  The glass delivers a potassium catalyst slowly over 150,000 miles of  driving and allows for what&rsquo;s called passive regeneration. So when  you&rsquo;re out on the highway at high speed, the exhaust temperature gets  high enough to burn off soot buildup continuously.&rdquo;<\/p>\n<p>With  Tiki torches providing the soot buildup needed for testing, McGinn said  his team will look at how to further tailor the glass composition to  also reduce NOx.<\/p>\n<p>Additional co-authors of the study include Yujun Wang and Ashok Kumar at Cummins Inc.<\/p>\n<p>The Notre Dame Integrated Imaging Facility, Tenneco Inc. and Cummins Inc. funded the study.<\/p>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"https:\/\/news.nd.edu\/news\/engineers-use-tiki-torches-in-study-of-soot-diesel-filters\/\" target=\"_blank\" rel=\"noopener noreferrer\">University of Notre Dame | Jessica Sieff 2018<\/a><\/p>\n<div class=\"shariff shariff-align-flex-start shariff-widget-align-flex-start\"><div class=\"ShariffHeadline\">Diese Meldung teilen<\/div><ul class=\"shariff-buttons theme-round orientation-horizontal buttonsize-medium\"><li 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