Falling damage is the most common form of damage sustained by kiwifruit during the process of picking and post-processing, and it is difficult to conduct a quantitative analysis of this phenomenon through traditional experimental methods. In order to deeply understand the sensitivity of kiwifruit to falling collision damage, the finite element numerical simulation method was used to evaluate and predict the sensitivity of kiwifruit to falling collision damage during harvesting. First, we obtained the appearance characteristics of kiwifruit through reverse engineering technology and determined the geometric and mechanical property parameters of kiwifruit through physical mechanics experiments. Then, according to the characteristics of fruit tissue structure, a multiscale finite element model, including the skin, pulp, and core, was constructed to simulate the effects of different falling heights, collision angles, and contact surface materials on fruit damage, and the accuracy of the model was verified through falling experiments. Finally, based on the simulation results, the Box-Behnken design was employed within the response surface methodology to establish a sensitivity prediction model for the drop damage sensitivity of kiwifruit across different contact materials. The results showed that the maximum relative error between the speed change obtained using finite element simulation and the speed obtained by the high-speed camera was 5.19%. The model showed high rationality in energy distribution, with the maximum value of hourglass energy not exceeding 0.08% of the internal energy. On the contact surface material with a large elastic modulus, a higher falling height and larger collision angle will significantly increase the risk of fruit bruise. When the contact surface material was a steel plate, the falling height was 1 m, and the collision angle was 90°; the maximum bruise sensitivity of kiwifruit reached 6716.07 mm J. However, when the contact surface material was neoprene, the falling height was 0.25 m, and the collision angle was 0°, the damage sensitivity was the lowest, at 1570.59 mm J. The multiscale finite element model of kiwifruit falling collision constructed in this study can accurately predict the damage of kiwifruit during falling collision and provide an effective tool for the quantitative analysis of kiwifruit falling collision damage. At the same time, this study can also provide guidance for the design and optimization of the loss reduction method of the harvesting mechanism, which has important theoretical significance and practical value.
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http://dx.doi.org/10.3390/foods13213523 | DOI Listing |
Inj Epidemiol
January 2025
Injury Prevention Research Center, University of Iowa, 145 N Riverside Dr., Iowa City, IA, 52242, USA.
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View Article and Find Full Text PDFJ Orthop Trauma
December 2024
Department of Orthopaedic Surgery, University of Missouri - Columbia, Missouri Orthopaedic Institute, Columbia, MO.
Effective management of bony and cartilaginous thoracic injury is a vital part of the care of the polytraumatized patient. Commonly because of high-energy accidents including motor vehicle collisions and falls, these patients routinely require multidisciplinary care and surgical intervention. As our understanding of unstable chest wall injuries and pulmonary sequelae of the injury grows, it is imperative that injury patterns and surgical approaches become familiar to the orthopaedic trauma-trained surgeon.
View Article and Find Full Text PDFJ Craniofac Surg
January 2025
Department of Plastic and Reconstructive Surgery, Children's Hospital Colorado, Aurora, CO.
Introduction: Alcohol intoxication significantly increases an individual's risk for a variety of injuries including craniofacial injuries, although this research is limited to adults. Further research is needed on pediatric craniofacial injuries related to alcohol use in children, a group inherently different in anatomy and developmental considerations from adults. This study aims to identify alcohol-related craniofacial injury patterns, injury mechanisms, and patient disposition in the pediatric population presenting to the emergency department.
View Article and Find Full Text PDFCureus
November 2024
Medical Engineering, Cardiff University School of Engineering, Wales, GBR.
Objectives: Pediatric head and spinal traumas are challenging for healthcare professionals due to their potential for severe consequences. Understanding optimal management methods is crucial to prevent complications and improve outcomes. Head and spinal injuries are common in children, with falls and motor vehicle collisions as the leading causes.
View Article and Find Full Text PDFBiomimetics (Basel)
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Heilongjiang Construction Investment Group Co., Ltd., Harbin 150046, China.
The bio-inspired honeycomb column thin-walled structure (BHTS) is inspired by the biological structure of beetle elytra and designed as a lightweight buffer interlayer to prevent damage to the reinforced concrete bridge pier (RCBP) under the overload impact from vehicle impact. According to the prototype structure of the pier, a batch of scale models with a scaling factor of 1:10 was produced. The BHTS buffer interlayer was installed on the reinforced concrete (RC) column specimen to carry out the steel ball impact test.
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