Cutting Performance of Randomly Distributed Active Abrasive Grains in Gear Honing Process
Abstract
:1. Introduction
2. Modeling of Multi-Grain Micro-Edge Honing Process
3. Simulation and Experimental Verification
3.1. Modeling of Randomly Distributed Active Abrasive Grains
3.2. Finite Element Simulation
3.3. Comparison of Simulation and Experiment Results
3.3.1. Microscopic Morphology
3.3.2. Honing Force
4. Results and Discussion
4.1. Effect of Abrasive Grain Distribution on Honing Process
4.2. Effect of Orientation Angle on Honing Process
4.3. Relationship between the Number of Active Abrasive Grains and the Material Removal Rate
5. Conclusions
- (1)
- This paper simplified the honing process according to the experimental method of low-speed flat face grinding, and applied the finite-element method to visually simulate and explore the micro-edge cutting performance of active abrasive grains. The method is useful for simplifying complex cutting processes and studying the influence of specific machining conditions or parameters on the cutting performance, and can be employed in the study of machining characteristics of turning, milling, grinding, etc.
- (2)
- Different distribution positions of active abrasive grains in the engagement area and different means of workpiece material removal give honing a combined processing characteristic of grinding, lapping and polishing. The active abrasive grains, at first contact with the workpiece, produce a high honing force, high material removal rate and poor surface roughness of the workpiece, while the abrasive grains that come into contact with the workpiece later show the opposite processing characteristics.
- (3)
- Given the other process parameters remain unchanged, the honing forces of active abrasive grains for different orientation angles are mainly related to honing width, average cross-sectional area and material removal rate. The chip discharge direction and chip shape are different for different orientation angles. When the dislocation angle is 75°, the chips are small and discharge well, but the honing force is not stable.
- (4)
- When more active abrasive grains are randomly distributed in the engagement area, the average interval distance between abrasive grains decreases, and less material remains after cutting, which is beneficial for improving the material removal efficiency.
- (5)
- Limited by the accuracy of the experimental equipment and simulation capability, the information extraction and modeling of the active abrasive grains, the number of active abrasive grains, and the calculation of honing force are simplified. The error between the simulation results and the experimental results was within the acceptable range, which verified the reliability and accuracy of the simulation method.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
Abbreviations
CBN | cubic boron nitride |
CNC | computer numerical control |
axis intersection angle | |
number of CBN abrasives | |
the dynamic active grains | |
the number of effective abrasive grains | |
the number of dynamic abrasive grains | |
contact pressure | |
the average honing force of a single abrasive grain | |
the tooth width | |
the effective cutting width | |
contact line/contact length | |
the effective contact length | |
cross-sectional area | |
depth of cut | |
J-C | Johnson–Cook |
ap | cutting depth |
vc | cutting speed |
the sliding velocity | |
the rolling velocity | |
the spiral velocity | |
the hydrostatic stress | |
the von Mises stress | |
quasi-static compression test strain rate | |
equivalent plastic strain rate | |
T | the cutting temperature |
the room temperature | |
the melting temperature | |
number of teeth | |
pressure angle | |
gear module | |
Spiral angles | |
Simplified geometric model parameters of abrasive particles | |
l | Length |
h | height |
tip radius | |
tip angle | |
b2 | width |
orientation angle |
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Parameters | Numerical Value |
---|---|
Number of CBN abrasives Nd | 15–21 |
Workpiece material | 20CrMnTi |
Cutting speed vc/(m/s) | 0.1–16 |
Cutting depth ap/μm | 0.12–3 |
Tool tip radius ρs/μm | 0.19–0.25 |
Cutting conditions | Dry cutting |
Contact length li/μm | 30 |
Orientation angle β | 75°, 90°, 105°, 135° |
Property | 20CrMnTi | CBN |
---|---|---|
Young’s Modulus (GPa) | 207 | 909 |
Poission’s ratio | 0.25 | 0.12 |
Density (kg/mm3) | 7.80 × 10−6 | 3.48 × 10−6 |
A (GPa) | 3.03 | - |
B (GPa) | 1.92 | - |
n | 0.06 | - |
C | 0.31 | - |
m | 0.706 | - |
Property | D1 | D2 | D3 | D4 | D5 | ||
---|---|---|---|---|---|---|---|
20CrMnTi | −0.77 | 1.45 | −0.47 | 0.014 | 3.87 | 20 |
Simulation | Cutting speed | 1.6 |
Cutting depth () | 1.5 | |
Number of dynamic active grain | 17 | |
Cutting width () | 32 | |
Effective contact length () | 32 | |
Experiment | Cutting speed | 1.6 |
Cutting depth () | 1.5 | |
Gear module | 2.25 | |
Number of teeth for workpiece and honing wheel , | 75,123 | |
Spiral angles for workpiece and honing wheel , | 33°, 41.722° | |
Pressure angle | 41.722° |
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Gao, Y.; Wang, F.; Liang, Y.; Han, J.; Su, J.; Tong, Y.; Liu, L. Cutting Performance of Randomly Distributed Active Abrasive Grains in Gear Honing Process. Micromachines 2021, 12, 1119. https://doi.org/10.3390/mi12091119
Gao Y, Wang F, Liang Y, Han J, Su J, Tong Y, Liu L. Cutting Performance of Randomly Distributed Active Abrasive Grains in Gear Honing Process. Micromachines. 2021; 12(9):1119. https://doi.org/10.3390/mi12091119
Chicago/Turabian StyleGao, Yang, Fuwei Wang, Yuan Liang, Jiang Han, Jie Su, Yu Tong, and Lin Liu. 2021. "Cutting Performance of Randomly Distributed Active Abrasive Grains in Gear Honing Process" Micromachines 12, no. 9: 1119. https://doi.org/10.3390/mi12091119
APA StyleGao, Y., Wang, F., Liang, Y., Han, J., Su, J., Tong, Y., & Liu, L. (2021). Cutting Performance of Randomly Distributed Active Abrasive Grains in Gear Honing Process. Micromachines, 12(9), 1119. https://doi.org/10.3390/mi12091119