Influence of Thermal Shocks on Residual Static Strength, Impact Strength and Elasticity of Polymer-Composite Materials Used in Firefighting Helmets
The article presents results of experimental studies on mechanical properties of the polymer-composite material used in manufacturing firefighting helmets. Conducted studies included static and impact strength tests, as well as a shock absorption test of glass fiber-reinforced polyamide 66 (PA66) sa...
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Published in | Materials Vol. 15; no. 1; p. 57 |
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Main Authors | , , , , , , , , |
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22.12.2021
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Abstract | The article presents results of experimental studies on mechanical properties of the polymer-composite material used in manufacturing firefighting helmets. Conducted studies included static and impact strength tests, as well as a shock absorption test of glass fiber-reinforced polyamide 66 (PA66) samples and firefighting helmets. Samples were subject to the impact of thermal shocks before or during being placed under a mechanical load. A significant influence of thermal shocks on mechanical properties of glass fiber-reinforced PA66 was shown. The decrease in strength and elastic properties after cyclic heat shocks ranged from a few to several dozen percent. The average bending strength and modulus during the 170 degree Celsius shock dropped to several dozen percent from the room temperature strength. Under these thermal conditions, the impact strength was lost, and the lateral deflection of the helmet shells increased by approximately 300%. Moreover, while forcing a thermal shock occurring during the heat load, it was noticed that the character of a composite damage changes from the elasto-brittle type into the elasto-plastic one. It was also proved that changes in mechanical and elastic properties of the material used in a helmet shell can affect the protective abilities of a helmet. |
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AbstractList | The article presents results of experimental studies on mechanical properties of the polymer-composite material used in manufacturing firefighting helmets. Conducted studies included static and impact strength tests, as well as a shock absorption test of glass fiber-reinforced polyamide 66 (PA66) samples and firefighting helmets. Samples were subject to the impact of thermal shocks before or during being placed under a mechanical load. A significant influence of thermal shocks on mechanical properties of glass fiber-reinforced PA66 was shown. The decrease in strength and elastic properties after cyclic heat shocks ranged from a few to several dozen percent. The average bending strength and modulus during the 170 degree Celsius shock dropped to several dozen percent from the room temperature strength. Under these thermal conditions, the impact strength was lost, and the lateral deflection of the helmet shells increased by approximately 300%. Moreover, while forcing a thermal shock occurring during the heat load, it was noticed that the character of a composite damage changes from the elasto-brittle type into the elasto-plastic one. It was also proved that changes in mechanical and elastic properties of the material used in a helmet shell can affect the protective abilities of a helmet.The article presents results of experimental studies on mechanical properties of the polymer-composite material used in manufacturing firefighting helmets. Conducted studies included static and impact strength tests, as well as a shock absorption test of glass fiber-reinforced polyamide 66 (PA66) samples and firefighting helmets. Samples were subject to the impact of thermal shocks before or during being placed under a mechanical load. A significant influence of thermal shocks on mechanical properties of glass fiber-reinforced PA66 was shown. The decrease in strength and elastic properties after cyclic heat shocks ranged from a few to several dozen percent. The average bending strength and modulus during the 170 degree Celsius shock dropped to several dozen percent from the room temperature strength. Under these thermal conditions, the impact strength was lost, and the lateral deflection of the helmet shells increased by approximately 300%. Moreover, while forcing a thermal shock occurring during the heat load, it was noticed that the character of a composite damage changes from the elasto-brittle type into the elasto-plastic one. It was also proved that changes in mechanical and elastic properties of the material used in a helmet shell can affect the protective abilities of a helmet. The article presents results of experimental studies on mechanical properties of the polymer-composite material used in manufacturing firefighting helmets. Conducted studies included static and impact strength tests, as well as a shock absorption test of glass fiber-reinforced polyamide 66 (PA66) samples and firefighting helmets. Samples were subject to the impact of thermal shocks before or during being placed under a mechanical load. A significant influence of thermal shocks on mechanical properties of glass fiber-reinforced PA66 was shown. The decrease in strength and elastic properties after cyclic heat shocks ranged from a few to several dozen percent. The average bending strength and modulus during the 170 degree Celsius shock dropped to several dozen percent from the room temperature strength. Under these thermal conditions, the impact strength was lost, and the lateral deflection of the helmet shells increased by approximately 300%. Moreover, while forcing a thermal shock occurring during the heat load, it was noticed that the character of a composite damage changes from the elasto-brittle type into the elasto-plastic one. It was also proved that changes in mechanical and elastic properties of the material used in a helmet shell can affect the protective abilities of a helmet. |
Author | Przystupa, Krzysztof Walczak, Agata Selech, Jarosław Oszust, Marcin Kamocka-Bronisz, Renata Piec, Robert Dzień, Grzegorz Ulbrich, Dariusz Pieniak, Daniel |
AuthorAffiliation | 2 Department of Automation, Lublin University of Technology, Nadbystrzycka 36, 20-618 Lublin, Poland 1 The Main School of Fire Service, Faculty of Safety Engineering and Civil Protection, Slowackiego 52/54, 01-629 Warsaw, Poland; dpieniak@sgsp.edu.pl (D.P.); awalczak@sgsp.edu.pl (A.W.); moszust@sgsp.edu.pl (M.O.); rkamocka@sgsp.edu.pl (R.K.-B.); rpiec@sgsp.edu.pl (R.P.); gdzien@sgsp.edu.pl (G.D.) 3 Department of Transport and Civil Engineering, Institute of Machines and Motor Vehicles, Poznan University of Technology, Piotrowo 3, 60-965 Poznan, Poland; jaroslaw.selech@put.poznan.pl (J.S.); dariusz.ulbrich@put.poznan.pl (D.U.) |
AuthorAffiliation_xml | – name: 2 Department of Automation, Lublin University of Technology, Nadbystrzycka 36, 20-618 Lublin, Poland – name: 3 Department of Transport and Civil Engineering, Institute of Machines and Motor Vehicles, Poznan University of Technology, Piotrowo 3, 60-965 Poznan, Poland; jaroslaw.selech@put.poznan.pl (J.S.); dariusz.ulbrich@put.poznan.pl (D.U.) – name: 1 The Main School of Fire Service, Faculty of Safety Engineering and Civil Protection, Slowackiego 52/54, 01-629 Warsaw, Poland; dpieniak@sgsp.edu.pl (D.P.); awalczak@sgsp.edu.pl (A.W.); moszust@sgsp.edu.pl (M.O.); rkamocka@sgsp.edu.pl (R.K.-B.); rpiec@sgsp.edu.pl (R.P.); gdzien@sgsp.edu.pl (G.D.) |
Author_xml | – sequence: 1 givenname: Daniel orcidid: 0000-0001-7807-3515 surname: Pieniak fullname: Pieniak, Daniel – sequence: 2 givenname: Agata surname: Walczak fullname: Walczak, Agata – sequence: 3 givenname: Marcin surname: Oszust fullname: Oszust, Marcin – sequence: 4 givenname: Krzysztof orcidid: 0000-0003-4361-2763 surname: Przystupa fullname: Przystupa, Krzysztof – sequence: 5 givenname: Renata surname: Kamocka-Bronisz fullname: Kamocka-Bronisz, Renata – sequence: 6 givenname: Robert orcidid: 0000-0002-5234-5639 surname: Piec fullname: Piec, Robert – sequence: 7 givenname: Grzegorz surname: Dzień fullname: Dzień, Grzegorz – sequence: 8 givenname: Jarosław orcidid: 0000-0002-2656-3800 surname: Selech fullname: Selech, Jarosław – sequence: 9 givenname: Dariusz orcidid: 0000-0002-4154-1167 surname: Ulbrich fullname: Ulbrich, Dariusz |
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SubjectTerms | Bend strength Bending modulus Composite materials Elastic properties Fiber reinforced polymers Fire fighting Firefighters Glass fiber reinforced plastics Head injuries Heat Helmets Impact strength Load Mechanical properties Personal protective equipment Polyamide resins Polymer matrix composites Room temperature Tensile strength Thermal cycling Thermal shock |
Title | Influence of Thermal Shocks on Residual Static Strength, Impact Strength and Elasticity of Polymer-Composite Materials Used in Firefighting Helmets |
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