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Polyester and Epoxy Resins with Increased Thermal Conductivity and Reduced Surface Resistivity for Applications in Explosion-Proof Enclosures of Electrical Devices
Composite materials are still finding new applications that require the modification of various properties and are characterized by the summary impact on selected operational features. Due to the operating conditions of electrical equipment enclosures in potentially explosive atmospheres, the surfac...
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Published in: | Materials 2022-03, Vol.15 (6), p.2171 |
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description | Composite materials are still finding new applications that require the modification of various properties and are characterized by the summary impact on selected operational features. Due to the operating conditions of electrical equipment enclosures in potentially explosive atmospheres, the surface resistivity ensuring anti-electrostatic properties, i.e., below 10
Ω and resistance to the flame while maintaining appropriate operational enclosure properties is very important. It is also crucial to dissipate heat while reducing weight. Currently metal or cast-iron enclosures are used for various types of electrical devices. As part of the work, a material that can be used for a composite matrix for the enclosure was developed. The study aimed to assess the influence of selected fillers and chemical modifications on the thermal conductivity coefficient, resistivity, and strength properties of matrix materials for the production of electrical device enclosures used in the mining industry. Selected resins were modified with graphite, copper, and carbon black. Tests were carried out on the coefficient of thermal conductivity, surface resistivity, flammability, and flexural strength. At the final stage of the work, a multi-criteria analysis was carried out, which allowed the selection of a composite that meets the assumed characteristics to the highest degree. It is a vinyl ester composite modified with 15 wt.% MG394 and 5 wt.% MG1596 graphite (W2). The thermal conductivity of composite W2 is 5.64 W/mK, the surface resistivity is 5.2 × 10
Ω, the flexural strength is 50.61 MPa, and the flammability class is V0. |
doi_str_mv | 10.3390/ma15062171 |
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Ω, the flexural strength is 50.61 MPa, and the flammability class is V0.</description><subject>Aluminum</subject><subject>Carbon black</subject><subject>Cast iron</subject><subject>Chemical compounds</subject><subject>Composite materials</subject><subject>Electric equipment</subject><subject>Electrical resistivity</subject><subject>Enclosures</subject><subject>Epoxy resins</subject><subject>Explosions</subject><subject>Fire resistance</subject><subject>Flammability</subject><subject>Flexural strength</subject><subject>Grain size</subject><subject>Graphite</subject><subject>Heat conductivity</subject><subject>Heat transfer</subject><subject>Matrix materials</subject><subject>Mining industry</subject><subject>Molecular weight</subject><subject>Multiple criterion</subject><subject>Polyesters</subject><subject>Surface resistivity</subject><subject>Thermal conductivity</subject><subject>Weight reduction</subject><issn>1996-1944</issn><issn>1996-1944</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2022</creationdate><recordtype>article</recordtype><sourceid>PIMPY</sourceid><recordid>eNpdkd1uEzEQhS0EolXoDQ-ALHGDkBb8l931DVKVBqhUiaqU69XEOyauHHuxd0PzPLwoThtKwTf20XxzNONDyEvO3kmp2fsN8DmrBW_4E3LMta4rrpV6-uh9RE5yvmHlSMlboZ-TIzmXQtdCHJNfl9HvMI-YKISeLod4u6NXmF3I9Kcb1_Q8mISQsafXa0wb8HQRQz-Z0W3duLtrusKiC_B1ShYM3rXnQ93GRE-HwTsDo4vF1AW6vB18zEVVlylGS5fBFD0lzHSvPJoxFd7TM9w6g_kFeWbBZzw53DPy7ePyevG5uvjy6XxxelEZKeuxsrZRjeWKMaEkE3yFwE0vNYBSAsAysLUwvGl7bHpAawQIaFat4mwlG63ljHy49x2m1QZ7g2FM4LshuQ2kXRfBdf9Wglt33-O2a7XSNVPF4M3BIMUfU_nVbuOyQe8hYJxyJ2qlGOcNqwv6-j_0Jk4plPX2lJg3bV1CmpG395RJMeeE9mEYzrp9_N3f-Av86vH4D-ifsOVv7lGuxg</recordid><startdate>20220315</startdate><enddate>20220315</enddate><creator>Szymiczek, Małgorzata</creator><creator>Buła, Dawid</creator><general>MDPI AG</general><general>MDPI</general><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7SR</scope><scope>8FD</scope><scope>8FE</scope><scope>8FG</scope><scope>ABJCF</scope><scope>ABUWG</scope><scope>AFKRA</scope><scope>AZQEC</scope><scope>BENPR</scope><scope>BGLVJ</scope><scope>CCPQU</scope><scope>D1I</scope><scope>DWQXO</scope><scope>HCIFZ</scope><scope>JG9</scope><scope>KB.</scope><scope>PDBOC</scope><scope>PIMPY</scope><scope>PQEST</scope><scope>PQQKQ</scope><scope>PQUKI</scope><scope>PRINS</scope><scope>7X8</scope><scope>5PM</scope><orcidid>https://orcid.org/0000-0001-5574-6545</orcidid><orcidid>https://orcid.org/0000-0002-0794-6486</orcidid></search><sort><creationdate>20220315</creationdate><title>Polyester and Epoxy Resins with Increased Thermal Conductivity and Reduced Surface Resistivity for Applications in Explosion-Proof Enclosures of Electrical Devices</title><author>Szymiczek, Małgorzata ; 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Due to the operating conditions of electrical equipment enclosures in potentially explosive atmospheres, the surface resistivity ensuring anti-electrostatic properties, i.e., below 10
Ω and resistance to the flame while maintaining appropriate operational enclosure properties is very important. It is also crucial to dissipate heat while reducing weight. Currently metal or cast-iron enclosures are used for various types of electrical devices. As part of the work, a material that can be used for a composite matrix for the enclosure was developed. The study aimed to assess the influence of selected fillers and chemical modifications on the thermal conductivity coefficient, resistivity, and strength properties of matrix materials for the production of electrical device enclosures used in the mining industry. Selected resins were modified with graphite, copper, and carbon black. Tests were carried out on the coefficient of thermal conductivity, surface resistivity, flammability, and flexural strength. At the final stage of the work, a multi-criteria analysis was carried out, which allowed the selection of a composite that meets the assumed characteristics to the highest degree. It is a vinyl ester composite modified with 15 wt.% MG394 and 5 wt.% MG1596 graphite (W2). The thermal conductivity of composite W2 is 5.64 W/mK, the surface resistivity is 5.2 × 10
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source | Open Access: PubMed Central; Publicly Available Content Database; Free Full-Text Journals in Chemistry |
subjects | Aluminum Carbon black Cast iron Chemical compounds Composite materials Electric equipment Electrical resistivity Enclosures Epoxy resins Explosions Fire resistance Flammability Flexural strength Grain size Graphite Heat conductivity Heat transfer Matrix materials Mining industry Molecular weight Multiple criterion Polyesters Surface resistivity Thermal conductivity Weight reduction |
title | Polyester and Epoxy Resins with Increased Thermal Conductivity and Reduced Surface Resistivity for Applications in Explosion-Proof Enclosures of Electrical Devices |
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