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In this paper an analytical model based on finite element energy formulation that calculates free vibration frequencies of cantilevered-free laminated double lap bonded joints is established. 8-noded serendipity element with quadrature Gaussian formula was adopted. This model was validated using 3D finite element model through ANSYS Workbench. The results have shown good agreement for steel and composite while it was not the case for polymeric substrates. Moreover, an experimental procedure for analysing the vibrational response of adhesively composite double lap joints is presented in this paper. The Impulse Excitation Technique (IET) has been adopted in order to measure the resonant frequencies. Two types of substrates were examined: steel and orthotropic glass-polypropylene composite and the adhesive used is a resin/epoxy constituent. Three different substrates thicknesses and three different overlap lengths were examined. Then, the experimental results were compared with numerical simulations using 3D finite element model through ANSYS Workbench. The results have shown good agreement between both models. Finally, the analytical model was applied to compare the experimental results in the scope of a parametric study towards the influence that some geometrical and mechanical properties of the adherents have on the vibrational response of the structure.
", "funding": [ { "award": { "acronym": "ESSIAL", "id": "00k4n6c32::766437", "identifiers": [ { "identifier": "https://cordis.europa.eu/projects/766437", "scheme": "url" } ], "number": "766437", "program": "H2020", "title": { "en": "Electrical Steel Structuring, Insulating and Assembling by means of the Laser technologies" } }, "funder": { "id": "00k4n6c32", "name": "European Commission" } } ], "publication_date": "2019-09-25", "publisher": "Zenodo", "resource_type": { "id": "publication-conferencepaper", "title": { "de": "Konferenzbeitrag", "en": "Conference paper" } }, "rights": [ { "description": { "en": "The Creative Commons Attribution license allows re-distribution and re-use of a licensed work on the condition that the creator is appropriately credited." }, "icon": "cc-by-icon", "id": "cc-by-4.0", "props": { "scheme": "spdx", "url": "https://creativecommons.org/licenses/by/4.0/legalcode" }, "title": { "en": "Creative Commons Attribution 4.0 International" } } ], "subjects": [ { "subject": "Double-lap joints, Adhesion, Modal analysis, Impulse Excitation Technique, Finite Elements" } ], "title": "ANALYTICAL, NUMERICAL AND EXPERIMENTAL ANALYSIS OF THE VIBRATIONAL BEHAVIOUR OF ADHESIVELY COMPOSITE DOUBLE-LAP JOINTS" }, "parent": { "access": { "owned_by": { "user": 64071 } }, "communities": { "default": "1d825c87-df80-4f21-be88-3da9f1fc9536", "entries": [ { "access": { "member_policy": "open", "record_policy": "open", "review_policy": "open", "visibility": "public" }, "children": { "allow": false }, "created": "2019-04-02T05:01:10.957510+00:00", "custom_fields": {}, "deletion_status": { "is_deleted": false, "status": "P" }, "id": "1d825c87-df80-4f21-be88-3da9f1fc9536", "links": {}, "metadata": { "curation_policy": "Only data provided by ESSIAL parters will be accepted in this community.
\r\n", "page": "ESSIAL is a research project funded by the European Commission “Factory of the Future” programme. The ambition of the project is to use laser surface texturizing (laser scribing, irradiation, texturizing, …) on soft ferromagnetic materials, such as usual electrical steels and special alloys, in order to improve the performance and functionalities of laminated magnetic circuits.
\r\n\r\nThese soft magnetic circuits, made from stack of steel sheets separated by an insulating layer, are becoming crucial in almost all industrial sectors, as they are key elements of industrial electrical machines (such as transformers, sensors, actuators, motors, generators …).
\r\n\r\nThe ESSIAL consortium, composed of research centers and companies that cover the whole value chain of soft magnetic materials, will develop innovative laser-based manufacturing processes to improve materials’ functionalities. Several prototypes will be produced to confirm the advantages of the ESSIAL solutions before possible mass production.
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