Submitted:
29 July 2026
Posted:
31 July 2026
You are already at the latest version
Abstract

Keywords:
1. Introduction
2. Background
Modeling Approaches in Literature
3. Materials and Methods
3.1. Experimental Setup
3.2. Steady State Modeling Approach
3.3. Material Properties
3.4. Boundary Conditions
4. Results
4.1. Only Matching Tool Temperature
4.2. Only Matching Workpiece Temperature
4.3. Matching both Tool-Workpiece Temperatures
4.3.1. Workpiece Temperature Sensitivity
4.3.2. Tool Temperature Sensitivity
5. Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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| Young’s Modulus | Poisson’s | Density | Specific Heat | Thermal Conductivity | |
| Part | (GPa) | Ratio | (kg m-3) | (J kg-1 K-1) | (W m-1 K-1) |
| Workpiece | 52 | 0.36 | 2709 | 1278 | 221 |
| Tool | 200 | 0.3 | 7850 | 460 | 24.3 |
| Backing Plate | 200 | 0.3 | 7850 | 460 | 35.3 |
| Parameter | Description | Value / Range | Reference / Notes |
| hW/T | Heat transfer coefficient (workpiece/tool) | 10, 20, 30, 40, 50 kW m-2 K-1 |
40 kW m-2 K-1 used for temperature matching |
| hT/A | Heat transfer coefficient (tool/air) | 10 W m-2 K-1 | [35] |
| hW/A | Heat transfer coefficient (workpiece/air) | 10 W m-2 K-1 | [35] |
| hW/B | Heat transfer coefficient (workpiece/baseplate) | 500 W m-2 K-1 | [21] |
| hT/holder | Heat transfer coefficient (tool/holder) | Adiabatic | [21] |
| α = s curve | Viscoplastic friction coefficient (Norton’s law) | Defined according to Norton’s viscoplastic law | Equation (2) |
| T∞ | Ambient temperature | 28 °C | - |
| Baseplate & holder | Constant temperature boundary condition | 20 °C | - |
| Mesh density | Tool and workpiece meshing | Tool: 116,339 elements; Workpiece: 49,547 elements |
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