Design, Optimization and Cutting Performance Evaluation of an Internal Spray Cooling Turning Tool
Abstract
:1. Introduction
2. Cooling Structure Design of the Internal Spray Cooling Turning Tool
3. Structure Optimization of Internal Spray Cooling Turning Tool
3.1. Establishment of Simulation Model
3.2. Optimization of Tool Cooling Structure Parameters
3.3. Simulation Results Analysis
3.4. Influence of Inlet Pressure on Cooling Performance
4. Tool Preparation and Cutting Experiments
4.1. Tool Manufacturing
4.2. Experimental Conditions and Settings
4.3. Results and Discussion
4.3.1. Cutting Temperature
4.3.2. Surface Roughness
4.3.3. Chip Morphology
5. Conclusions
- The structure parameters with the best cooling performance were determined, namely the diameter of upper nozzle is 3 mm, the diameter of lower nozzle is 1.5 mm, and the distance between upper nozzle and tool tip is 18.5 mm.
- With the increase in spray pressure, the velocity of air and droplets, and the convective heat transfer increase. The temperature decreases rapidly yet then mildly with the increasing inlet pressure due to the gradual saturation of the convective heat transfer. The internal turning experiments demonstrate that compared to the dry cutting, the cutting temperature with the internal spray cooling can be reduced by 41–44% with the inlet pressure of 0.3 MPa.
- The workpiece surface quality can be significantly improved under the spray cooling condition with larger tool inlet pressure. The internal spray cooling method can reduce the surface roughness of the workpiece by 0.1μm–0.25 μm compared to that of the dry cutting condition. Particularly, the roughness of the inner surface of the workpiece can be reduced by 9.93% with the tool inlet pressure of 0.6 MPa.
- The increasing tool inlet pressure and cutting speed can efficiently decrease the chip length, and furthermore facilitate the chip removal to improve the cutting performance.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Variable | Value | Variable | Value |
---|---|---|---|
Density of insert (kg/m3) | 14,900 | Heat flux on contact area (W/mm2) | 40 |
Thermal conductivity of insert (W/m∙K) | 52.3 | initial temperature (°C) | 20 |
Specific heat of insert (J/kg∙K) | 302 | Specific heat of water (J/kg·K) | 4182 |
Density of toolholder (kg/m3) | 7850 | Viscosity of water (kg/m·s) | 0.001 |
Thermal conductivity of toolholder (W/m∙K) | 16.3 | Density of water (kg/m3) | 998.2 |
Specific heat of toolholder (J/kg∙K) | 502 | Thermal conductivity of water (W/m·K) | 0.6 |
Tool-chip contact area (L1 mm × L2 mm) | 1 × 0.5 | Inlet pressure of spray cooling (MPa) | 0.3 |
Parameters | Levels | |||
---|---|---|---|---|
1 | 2 | 3 | ||
A | UND (mm) | 18.5 | 21.5 | 24.5 |
B | UD (mm) | 1 | 2 | 3 |
C | LD (mm) | 1 | 1.5 | 2 |
No. | Upper Nozzle–Tool Tip Distance (A) /mm | Upper Nozzle Diameter (B) /mm | Lower Nozzle Diameter (C) /mm | Maximum Temperature/°C |
---|---|---|---|---|
1 | 18.5 | 1 | 1 | 536.19 |
2 | 18.5 | 2 | 1.5 | 529.99 |
3 | 18.5 | 3 | 2 | 531.47 |
4 | 21.5 | 1 | 1.5 | 529.14 |
5 | 21.5 | 2 | 2 | 535.29 |
6 | 21.5 | 3 | 1 | 534.47 |
7 | 24.5 | 1 | 2 | 536.58 |
8 | 24.5 | 2 | 1 | 535.12 |
9 | 24.5 | 3 | 1.5 | 531.14 |
K1 | 532.55 | 533.97 | 535.26 | Ki is the average value of maximum temperature at each factor level; R is the value of range |
K2 | 532.96 | 533.47 | 530.09 | |
K3 | 534.28 | 532.36 | 534.44 | |
R | 1.73 | 1.61 | 5.17 |
Parameter | Value |
---|---|
Cutting speed (m/min) | 60, 80, 100, 120, 140 |
Feed rate (mm/r) | 0.1 |
Depth of cut (mm) | 0.5 |
Cooling conditions | 0.1–0.6 MPa/dry cutting |
Coolant flow rate (mL/h) | 50 |
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Liu, L.; Shu, S.; Li, H.; Chen, X. Design, Optimization and Cutting Performance Evaluation of an Internal Spray Cooling Turning Tool. Coatings 2022, 12, 1141. https://doi.org/10.3390/coatings12081141
Liu L, Shu S, Li H, Chen X. Design, Optimization and Cutting Performance Evaluation of an Internal Spray Cooling Turning Tool. Coatings. 2022; 12(8):1141. https://doi.org/10.3390/coatings12081141
Chicago/Turabian StyleLiu, Leping, Shengrong Shu, Huimin Li, and Xuan Chen. 2022. "Design, Optimization and Cutting Performance Evaluation of an Internal Spray Cooling Turning Tool" Coatings 12, no. 8: 1141. https://doi.org/10.3390/coatings12081141
APA StyleLiu, L., Shu, S., Li, H., & Chen, X. (2022). Design, Optimization and Cutting Performance Evaluation of an Internal Spray Cooling Turning Tool. Coatings, 12(8), 1141. https://doi.org/10.3390/coatings12081141