{"id":7235,"date":"2006-11-01T00:00:00","date_gmt":"2006-11-01T00:00:00","guid":{"rendered":"https:\/\/insulation.org\/io\/articles\/ways-to-minimize-water-vapor-migration\/"},"modified":"2006-11-01T00:00:00","modified_gmt":"2006-11-01T00:00:00","slug":"ways-to-minimize-water-vapor-migration","status":"publish","type":"articles","link":"https:\/\/insulation.org\/io\/articles\/ways-to-minimize-water-vapor-migration\/","title":{"rendered":"Ways to Minimize Water Vapor Migration"},"content":{"rendered":"<p>The insulation industry has undergone profound changes over  the past 50 years. Increasing energy conservation needs and evolving  technologies have required major advances in insulation materials, application,  and cost-efficient systems for end users. Industry advancements have included  new jacketing materials that have self-sealing laps, improvements in  vapor-retarder materials, removable and reusable insulation covers, and  increased material thickness to provide greater energy savings and return on  investment. Specifications calling for lower-perm products, as well as safety  and closure procedures in installation, are tangible evidence of how the  industry has responded to challenges like corrosion under insulation (CUI).  Here is a brief review of CUI, with a discussion of some ways to address it.<\/p>\n<p>Maintenance engineers and coordinators, process and project  engineers, and operation managers continue to grapple with the problem of CUI,  one of the most expensive facility-related problems facing industry today.  Recent studies suggest that CUI costs industry millions of dollars annually,  and CUI problems account for more unexpected facility downtime than all other  causes combined. The increase in corrosion failures under thermal insulation  makes CUI a particular concern for petroleum, chemical, food-processing, and  other types of industrial operations.<\/p>\n<p>CUI is caused by the ingress of water into insulation, which  then traps the water like a sponge, keeping it in direct contact with the metal  surface. The source can be rainwater, leakage, deluge-systems water, wash  water, or sweating from temperature cycling or low-temperature operation, as in  refrigeration units. It also occurs because of the availability of oxygen  trapped in the insulation. As temperatures increase, moisture cannot escape.  Chlorides and ions in insulation also greatly promote corrosion.<\/p>\n<p>Without a 100-percent vapor seal, moisture seeps in, causing  cracking and subsequent corrosion. With metal jacketing, caulking is required  to seal the joints. When temperatures change, materials expand and contract,  causing cracks in the caulking and allowing moisture to permeate. Similarly,  materials without zero permeability, such as mastic, can crack. This also  allows moisture into the insulation system.<\/p>\n<p>The American Petroleum Institute (API) code 570,  &ldquo;Inspection, Repair, Alteration, and Rerating of In-service Piping Systems&rdquo;  (the piping code first published in 1993), identifies CUI as a special concern.  This code is one of the industry standards, along with NACE&rsquo;s RP098-98, and the  OSHA 1910 rule demands that organizations maintain a program to meet the  standard.<\/p>\n<h5>Hidden Problems<\/h5>\n<p>CUI is often difficult to detect because the insulation  cover can mask the problem until it is too late. It is expensive to remove the  insulation, especially if asbestos is involved. Various methods are used today  to inspect for CUI, including radiography, ultrasonic spot reading, and X-ray.  New diagnostic technologies&mdash;online, real-time corrosion monitoring systems, and others&mdash;are  rapidly reaching the market. Clearly, however, prevention is still the most  cost-effective approach to controlling CUI.<\/p>\n<p>The problem is pervasive because most installations involve  a host of environmental factors. Once water ingress occurs, there&rsquo;s no stopping  corrosion. Since many facility or maintenance managers cannot continuously  monitor the roof, piping, or ductwork, the problem eventually makes itself  known. Then costly, disruptive repair is required.<\/p>\n<h5>Methods of Sealing Insulation<\/h5>\n<p>There are many methods of sealing insulation to prevent  outside water from seeping through the insulation material. Vapor-barrier  mastics can be used for this purpose. Applied by spray, brush, or roller, these  come in a variety of colors and are applied in several layers. Using metal jacketing&mdash;both stainless steel and  aluminum&mdash;in  various thicknesses is the most common method of protecting insulation  materials. This is now provided with inner linings that offer tremendous  chemical resistance. Once the metal jacketing is applied, the seams are often  caulked with a silicone or other type of sealant to prevent the ingress of  water through the lap. Other new jacketing products that provide extremely low  perm ratings include polyvinylidene chloride resins, which lock out <br \/>\n  oxygen and moisture, frequently used on urethane, Styrofoam,  and foam glass because of their excellent vapor-barrier properties.<\/p>\n<p>Materials used to circumvent CUI must be capable of  withstanding thermal cycling and continuous exposure to elevated temperatures.  They must also be resistant to ultraviolet (UV) rays. If a coating is not UV  resistant, it will begin to degrade, and its effectiveness will be reduced, eventually  causing failure.<\/p>\n<h5>New Facing Materials<\/h5>\n<p>Installing insulation is difficult, time-consuming, and  labor intensive. Typically, insulation will have to be replaced two to three  times during the lifetime of a plant, at high cost and with significant  disruption. While no product can guarantee total CUI prevention, new  zero-permeability facing materials are gaining increased acceptance by  engineers and installers. And some contractors are now adding these insulation  jacketing systems to project specifications because they believe that they can  deliver a quality, cost-effective solution.<\/p>\n<p>The all-purpose insulation jacketing systems designed for  sealing insulation over ductwork in harsher environments offer 100-percent  self-adhesive overlap and bonding capabilities, and provide complete coverage  over insulation. The material is weather resistant and tough, but it is easier  to install. Pressure-sensitive jacketing requires no additional rivets,  strapping, sealants, or off-site fabrication. And when it is installed  properly, the chance of moisture getting in is low.<\/p>\n<p>Reducing cost by eliminating or mitigating corrosion damage  and failures while also increasing run time and productivity are goals on which  everyone can agree. The perfect water-tight system remains the ultimate goal of  engineers, specifiers, and owners. And with innovative products like zero-permeability,  pressure-sensitive jacketing systems, they are one step closer to solving the  CUI dilemma.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>The insulation industry has undergone profound changes over the past 50 years. Increasing energy conservation needs and evolving technologies have required major advances in insulation materials, application, and cost-efficient systems for end users. Industry advancements have included new jacketing materials that have self-sealing laps, improvements in vapor-retarder materials, removable and reusable insulation covers, and increased<\/p>\n","protected":false},"author":[232],"featured_media":0,"template":"","categories":[38,26],"class_list":["post-7235","articles","type-articles","status-publish","hentry","category-material-selection","category-corrosion","author-ed-sore"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO Premium plugin v24.0 (Yoast SEO v24.6) - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Ways to Minimize Water Vapor Migration - Insulation Outlook Magazine<\/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:\/\/insulation.org\/io\/articles\/ways-to-minimize-water-vapor-migration\/\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Ways to Minimize Water Vapor Migration\" \/>\n<meta property=\"og:description\" content=\"The insulation industry has undergone profound changes over the past 50 years. 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