Araştırma Makalesi

Structural Analysis of Industrial Foam Crusher Machine By Using Finite Element Method

Sayı: 29 1 Aralık 2021
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Structural Analysis of Industrial Foam Crusher Machine By Using Finite Element Method

Abstract

Especially in the foams used in sectors such as furniture, mattress, automotive, textile, deformation occurs depending on time and load. This situation leads to a decrease in customer satisfaction. In order to solve this problem, a machine has been developed to eliminate internal irregularities with the sponge block crushing method in order to eliminate the formations such as sticky or irregularity of the voids/channels in the inner structure of the sponge blocks after curing and to minimize the deformation that will occur in the short term after production. In this study, structural analysis was carried out for the geometric optimization of the parts that make up the crushing machine designed. For this purpose, linear static analysis of foam crusher parts is realized and maximum Von Misses stress, deformation, the factor of safety results and necessary optimization locations are determined via ANSYS Workbench software. The obtained results are presented in graphics.

Keywords

Teşekkür

We would like to thank Kilim Furniture Company for their contribution to our work.

Kaynakça

  1. Aslan, T., Esim, E., Ustun, Y., & Donmez Ozkan, H. (2021). Evaluation of Stress Distributions in Mandibular Molar Teeth with Different Iatrogenic Root Perforations Repaired with Biodentine or Mineral Trioxide Aggregate: A Finite Element Analysis Study. J Endod, 47(4), 631-640. doi:10.1016/j.joen.2020.11.018
  2. Beer, F., E. Russell Johnston, J., Dewolf, J. T., & Mazurek, D. F. (2012). Mechanics of Materials. New York: McGraw-Hill Companies.
  3. Chen, Y., Das, R., & Battley, M. (2017). Finite element analysis of the compressive and shear responses of structural foams using computed tomography. Composite Structures, 159, 784-799. doi:10.1016/j.compstruct.2016.09.091
  4. De Mello, D., Pezzin, S. H., & Amico, S. C. (2009). The effect of post-consumer PET particles on the performance of flexible polyurethane foams. Polymer Testing, 28(7), 702-708. doi:10.1016/j.polymertesting.2009.05.014
  5. Demirel, S., & Ergun Tuna, B. (2019). Evaluation of the cyclic fatigue performance of polyurethane foam in different density and category. Polymer Testing, 76, 146-153. doi:10.1016/j.polymertesting.2019.03.019
  6. Demirtaş, A., & Bayraktar, M. (2019). Free Vibration Analysis of an Aircraft Wing by Considering as a Cantilever Beam. Selcuk University Journal of Engineering, Science and Technology, 7(1), 12-21. doi:10.15317/Scitech.2019.178
  7. Gok, A., Yapıcı, F., Gulsoy, S. K., Kurt, S., Altun, S., Kilinc, I., & Korkmaz, M. (2012). Determination of Static Fatigue Performance of Upholstery Foams. Kastamonu Univ., Journal of Forestry Faculty, 12, 285-290.
  8. H.Ulrich. (1983). Urethane Polymers. Kirk- Othmer Encyclopedia of Chemical Technology. New York.: J. Wiley.

Ayrıntılar

Birincil Dil

İngilizce

Konular

Mühendislik

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

1 Aralık 2021

Gönderilme Tarihi

20 Ekim 2021

Kabul Tarihi

10 Aralık 2021

Yayımlandığı Sayı

Yıl 2021 Sayı: 29

Kaynak Göster

APA
Esim, E., & Benzer, E. (2021). Structural Analysis of Industrial Foam Crusher Machine By Using Finite Element Method. Avrupa Bilim ve Teknoloji Dergisi, 29, 343-350. https://doi.org/10.31590/ejosat.1012035

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