Multimetal Stahl 1018 Composite – Structure and Strength Properties

The series of experiments was performed on commercial polymeric composite material MultimetalStahl 1018. Strength tests were performed to determine the yield point of the material. The composite had the highest hardness at a temperature of 20°C. Hardness and microhardness were determined in further...

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Veröffentlicht in:Archives of foundry engineering 2020-01, Vol.20 (4), p.77
Hauptverfasser: Kalisz, D, Arustmian, A
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description The series of experiments was performed on commercial polymeric composite material MultimetalStahl 1018. Strength tests were performed to determine the yield point of the material. The composite had the highest hardness at a temperature of 20°C. Hardness and microhardness were determined in further experiments. The adhesiveness of the material to metal surfaces and impact strength were also analyzed. The scanning electron microscopy and X-ray microanalysis methods were used for analyzing the microstructure of the material. Chemical composition of selected areas was analyzed, which allowed for a preliminary identification of metallic elements content in the composite. The microstructure of composite is highly non-homogeneous and particular phases are highly elongated and angular. The analyzed phase was enriched with silicon, aluminium, magnesium, iron and vanadium other phases enriched with metallic elements, e.g. molybdenum, titanium, vanadium and also oxygen as well as traces of cadmium and chromium. The results were presented in the form of photos and illustrations. The results confirmed the applicability of the composite as a binder for fixing mechanical and foundry devices.
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subjects Aluminum
Chemical composition
Chromium
Composite materials
Impact analysis
Impact strength
Magnesium
Metal surfaces
Microhardness
Microstructure
Polymer matrix composites
Titanium
Vanadium
Yield point
title Multimetal Stahl 1018 Composite – Structure and Strength Properties
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