The Characteristics of the Deformation of a Feeding Roller with Double V-Wings Honeycomb under Driven Modes with Different Rotation Rates and Axial Compressions
Abstract
:1. Introduction
2. Materials and Methods
2.1. Geometry of Feed Roller with DVWH Filling
2.2. Theoretical Basis of Mechanical Properties of DVWH Structures
2.3. FE Model under Driven Modes
3. Numerical Results
3.1. Equivalent Stress of Nodes in Driven Mode
3.2. Radial Displacement of Nodes in Driven Mode
3.3. Deformation Characteristics under Different Compression Rates
3.3.1. Deformation Characteristics of Node Ae
3.3.2. Deformation Characteristics of Node Be
3.3.3. Deformation Characteristics of Node De
3.4. Deformation Characteristics under Different Rotation Rates
4. Discussion
5. Conclusions
- The numerical results indicated that the closer the node was to the loading side, the greater the equivalent stress and radial displacement. In the outermost cell element that made direct contact with the loading plate, the equivalent stress and radial displacement of De node were higher than those of the Ae node and Be node, with De’s peak equivalent stress being 21.9% and 30.6% higher than Ae’s and Be’s. In addition, its significant changes were concentrated in passing through the loading plate on the left and right sides of the cell column; that is, the roller rotates between 115° and 242.6°. In the short time before making contact with the loading plate, the load on the node is the highest.
- Due to the different loading positions, the outermost cells’ deformation characteristics of the roller DVWH structure were different from those of the inner layer. The deformation characteristics of the former were related to the contact state of the loading plate and can be divided into three stages based on the equivalent stress curve characteristics: before contact, during contact, and after contact. The curve of the latter cannot reflect the boundaries of the above states.
- Within the experimental range, the deformation characteristics of nodes were sensitive to compression rate, and the equivalent stress and radial displacement of nodes were positively correlated with compression rate. Taking De nodes as an example, at a 10% compression rate, their maximum changes in radial displacement were 14.93 mm, and the equivalent stress peak was 111.9 MPa. At a 15% compression rate, their maximum changes in radial displacement were 17.2 mm, and the equivalent stress peak was 230.9 MPa. The deformation characteristics of nodes were less sensitive to rotational speed. The radial displacement curves of Ae and De nodes with different rotational speeds only had differentiation in the range of 200°–225°, while the radial displacement curves of Be nodes with different rotational speeds only had differentiation in the range of 137.5°–156°.
- At different compression rates, the radial displacement of nodes had different sensitivity to the degree of compression. Overall, the higher the compression rate, the less sensitive the radial displacement of nodes. At a compression rate of 10%, the radial displacement–compression sensitivities of Ae, Be, and De nodes are 1.294, 1.287, and 0.927, respectively. At a compression rate of 15%, the radial displacement–compression sensitivities of Ae, Be, and De nodes are 1.228, 1.096, and 0.717, respectively.
- The compression rate impacted the deformation characteristics of nodes in the time domain, and an increase in compression rate would cause the moment when the node produces the maximum radial displacement to shift back, with a range of 1° to 3°.
- For the DVWH under the uniform driven mode, the energy absorption characteristics per unit area and per unit time reflected by the index feed performance efficiency (EF) positively correlate with the speed and compression rate. The EF increased the compression rate by 1% at a growth rate of 8.3% to 12.7% while increasing the compression rate by 44 mm/s at a growth rate of about 44%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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R/mm | R0/mm | t/mm | θ1 | θ2 | r/mm | L | T/mm |
---|---|---|---|---|---|---|---|
160.1 | 68 | 3.5 | 30° | 75° | 20.3 | 3 | 50 |
Parameter | Value | |||||
---|---|---|---|---|---|---|
10% | 11% | 12% | 13% | 14% | 15% | |
(mm/s) | 100 | 144 | 188 | 232 | 276 | 320 |
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Zhou, W.; Wang, D. The Characteristics of the Deformation of a Feeding Roller with Double V-Wings Honeycomb under Driven Modes with Different Rotation Rates and Axial Compressions. Appl. Sci. 2024, 14, 2082. https://doi.org/10.3390/app14052082
Zhou W, Wang D. The Characteristics of the Deformation of a Feeding Roller with Double V-Wings Honeycomb under Driven Modes with Different Rotation Rates and Axial Compressions. Applied Sciences. 2024; 14(5):2082. https://doi.org/10.3390/app14052082
Chicago/Turabian StyleZhou, Wenhui, and Dian Wang. 2024. "The Characteristics of the Deformation of a Feeding Roller with Double V-Wings Honeycomb under Driven Modes with Different Rotation Rates and Axial Compressions" Applied Sciences 14, no. 5: 2082. https://doi.org/10.3390/app14052082
APA StyleZhou, W., & Wang, D. (2024). The Characteristics of the Deformation of a Feeding Roller with Double V-Wings Honeycomb under Driven Modes with Different Rotation Rates and Axial Compressions. Applied Sciences, 14(5), 2082. https://doi.org/10.3390/app14052082