Innovative Model for Material Selection Within the Automotive Lightweight Eco-Design Field †
Abstract
1. Introduction
2. Materials and Method
- Material selection: The method originates from the basic idea of Ashby’s approach, which uses performance indices to evaluate materials’ mechanical properties. These indices are calculated based on constraints and objectives that characterize the specific component considered. The primary goal of this work is to identify materials able to optimize design aspects (strength and stiffness) while minimizing component weight. This is accomplished by comparing a broad-spectrum of mechanical features functional to compare new material options to a reference solution by means of mechanical indices such as density, yield strength, and Young’s modulus;
- VIKOR integration: The materials selected by Ashby’s method are ranked through VIKOR’s Multi-Criteria Decision Analysis (MCDA) technique. This stage considers not only mechanical properties but also cost (derived from raw material and manufacturing costs) and environmental impact (calculated using kilograms CO2 equivalent emissions for production, use phase and end-of-life phases). The ranking is carried out on the basis of an innovative comprehensive score that integrates the three main pillars above (design, cost sustainability, environmental sustainability);
- Sensitivity analysis: A sensitivity analysis is performed to evaluate how changes in key parameters (such as weighting factors for design, cost, and environmental impact) affect the final ranking. Such an analysis is useful to assist in evaluating the robustness of the model as well as identifying the most critical factors influencing the material selection process.
2.1. Material Selection
2.2. Integration of Ashby/VIKOR
2.3. Sensitivity Analysis
3. Results and Discussion
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Appendix A
Ranking | Solution (Material + Primary Process) | [Eur] | Raw Material [Eur] | DEK [Eur/kg] | [kgCO2eq] | [kgCO2eq] | Only Use Phase [kgCO2eq] | ||
---|---|---|---|---|---|---|---|---|---|
Ref: Stainless Steel Austenitic AISI 304 Annealed–Press Forming | REF: 8.91 | REF: 67 | REF: 63 | REF: 0 | REF: 105 | REF: 68 | REF: 49 | ||
1 | Duralcan Al-20SiC (p) cast (F3K20S).—Squeeze casting | 3.81 | 35 | 28 | −6 | 70 | 49 | 21 | 0.0605 |
2 | Duralcan Al-20SiC (p) cast (F3S20S).—Squeeze casting | 3.90 | 35 | 28 | −6 | 73 | 51 | 22 | 0.0755 |
3 | Duralcan Al-20Al2O3 (p) (W2A20A-T6).—CIP | 3.99 | 37 | 27 | −6 | 66 | 43 | 22 | 0.0779 |
4 | Duralcan Al-20Al2O3 (p) (W6A20A-T6).—CIP | 4.10 | 37 | 28 | −6 | 68 | 45 | 23 | 0.0949 |
5 | Low-alloy steel, AISI 9255, oil quenched and tempered at 205 °C.—Press Forming | 4.98 | 13 | 9 | −14 | 40 | 16 | 25 | 0.0961 |
6 | Duralcan Al-15Al2O3 (p) (W2A15A-T6).—CIP | 4.11 | 37 | 28 | −6 | 69 | 46 | 23 | 0.0970 |
7 | Aluminum, 2024, T8510/T8511.—Press Forming | 4.32 | 23 | 20 | −9 | 88 | 72 | 16 | 0.1041 |
8 | Aluminum, 2024, T861.—Press Forming | 4.33 | 23 | 20 | −9 | 88 | 72 | 16 | 0.1055 |
9 | Low-alloy steel, AISI 9255, oil quenched and tempered at 315 °C.—Press Forming | 5.07 | 13 | 9 | −14 | 41 | 16 | 25 | 0.1079 |
10 | Duralcan Al-10SiC (p) cast (F3K10S).—Squeeze casting | 4.11 | 37 | 30 | −6 | 79 | 55 | 23 | 0.1085 |
11 | Duralcan Al-20Al2O3 (p) (W2A20A-T6).—Press Forming | 3.99 | 39 | 36 | −6 | 80 | 58 | 22 | 0.1104 |
12 | Aluminum, 5182, H19.—Press Forming | 4.34 | 22 | 19 | −10 | 91 | 75 | 16 | 0.1111 |
13 | Low-alloy steel, AISI 5160, oil quenched and tempered at 205 °C.—Press Forming | 5.10 | 13 | 9 | −14 | 41 | 16 | 26 | 0.1116 |
14 | Low-alloy steel, AISI 5140, oil quenched and tempered at 205 °C.—Press Forming | 5.11 | 13 | 9 | −14 | 42 | 16 | 26 | 0.1124 |
15 | Low-alloy steel, AISI 5160, oil quenched and tempered at 315 °C.—Press Forming | 5.11 | 13 | 9 | −14 | 42 | 16 | 26 | 0.1127 |
16 | Aluminum, 2024, T851.—Press Forming | 4.37 | 24 | 20 | −9 | 89 | 73 | 16 | 0.1127 |
17 | Low-alloy steel, AISI 4140, oil quenched and tempered at 205 °C.—Press Forming | 5.12 | 14 | 10 | −14 | 42 | 16 | 26 | 0.1151 |
18 | Aluminum, 2024, T81.—Press Forming | 4.40 | 24 | 20 | −10 | 89 | 73 | 17 | 0.1160 |
19 | Low-alloy steel, AISI 8650, oil quenched and tempered at 205 °C.—Press Forming | 5.12 | 14 | 11 | −14 | 42 | 16 | 26 | 0.1164 |
20 | Aluminum, 2014, T6510.—Press Forming | 4.42 | 24 | 20 | −10 | 89 | 72 | 17 | 0.1171 |
Ranking | Solution (Material + Primary Process) | [kg] | [Eur] | Raw Material [Eur] | DEK [Eur/kg] | [kgCO2eq] | [kgCO2eq] | Only Use Phase [kgCO2eq] | |
---|---|---|---|---|---|---|---|---|---|
Ref: Stainless Steel Austenitic AISI 304 Annealed–Press Forming | REF: 8.91 | REF: 67 | REF: 63 | REF: 0 | REF: 105 | REF: 68 | REF: 49 | ||
1 | Low-alloy steel, AISI 9255, oil quenched and tempered at 205 °C.—Press Forming | 1.64 | 7 | 3 | −8 | 13 | 5 | 8 | 0.0057 |
2 | Stainless steel, martensitic, AISI 440C, tempered at 316 °C.—Press Forming | 1.72 | 8 | 4 | −8 | 18 | 10 | 8 | 0.0126 |
3 | Stainless steel, martensitic, AISI 440C, tempered at 316 °C.—Binder Jetting | 1.72 | 11 | 3 | −8 | 15 | 8 | 8 | 0.0132 |
4 | Low-alloy steel, AISI 5160, oil quenched and tempered at 205 °C.—Press Forming | 1.82 | 7 | 3 | −8 | 15 | 6 | 9 | 0.0135 |
5 | Low-alloy steel, AISI 9255, oil quenched and tempered at 315 °C.—Press Forming | 1.82 | 7 | 3 | −8 | 15 | 6 | 9 | 0.0135 |
6 | Stainless steel, martensitic, AISI 440B, tempered at 316 °C.—Press Forming | 1.75 | 8 | 4 | −8 | 18 | 10 | 8 | 0.0139 |
7 | Low-alloy steel, AISI 50B60, oil quenched and tempered at 315 °C.—Press Forming | 1.83 | 7 | 3 | −8 | 15 | 6 | 9 | 0.0142 |
8 | Low-alloy steel, AISI 5160, oil quenched and tempered at 315 °C.—Press Forming | 1.83 | 7 | 3 | −8 | 15 | 6 | 9 | 0.0142 |
9 | Stainless steel, martensitic, AISI 440B, tempered at 316 °C.—Binder Jetting | 1.75 | 11 | 3 | −8 | 16 | 8 | 8 | 0.0145 |
10 | Low-alloy steel, AISI 5150, oil quenched and tempered at 205 °C.—Press Forming | 1.87 | 7 | 3 | −8 | 15 | 6 | 9 | 0.0157 |
11 | Low-alloy steel, AISI 4150, oil quenched and tempered at 205 °C.—Press Forming | 1.87 | 7 | 4 | −8 | 15 | 6 | 9 | 0.0158 |
12 | Low-alloy steel, AISI 81B45, oil quenched and tempered at 205 °C.—Press Forming | 1.87 | 7 | 4 | −8 | 15 | 6 | 9 | 0.0159 |
13 | Aluminum, 7068, T6511.—Press Forming | 1.38 | 16 | 12 | −7 | 28 | 22 | 5 | 0.0178 |
14 | Low-alloy steel, 300M (high carbon), quenched and tempered.—Press Forming | 1.91 | 9 | 5 | −8 | 15 | 6 | 10 | 0.0184 |
15 | Low-alloy steel, AISI 8640, oil quenched and tempered at 205 °C.—Press Forming | 1.92 | 8 | 4 | −8 | 16 | 6 | 10 | 0.0185 |
16 | Low-alloy steel, AISI 8650, oil quenched and tempered at 205 °C.—Press Forming | 1.92 | 8 | 4 | −8 | 16 | 6 | 10 | 0.0185 |
17 | Low-alloy steel, AISI 4340, oil quenched and tempered at 205 °C.—Press Forming | 1.91 | 8 | 5 | −8 | 16 | 6 | 10 | 0.0185 |
18 | Low-alloy steel, AISI 4042, oil quenched and tempered at 205 °C.—Press Forming | 1.93 | 7 | 4 | −8 | 16 | 6 | 10 | 0.0187 |
19 | Low-alloy steel, AISI 8740, oil quenched and tempered at 205 °C.—Press Forming | 1.93 | 8 | 4 | −8 | 16 | 6 | 10 | 0.0189 |
20 | Low-alloy steel, AISI 6150, oil quenched and tempered at 205 °C.—Press Forming | 1.90 | 7 | 4 | −8 | 18 | 9 | 9 | 0.0190 |
Ranking | Solution (Material + Primary Process) | [kg] | [Eur] | Raw Material [Eur] | DEK [Eur/kg] | [kgCO2eq] | [kgCO2eq] | Only Use Phase [kgCO2eq] | |
---|---|---|---|---|---|---|---|---|---|
Ref: Stainless Steel Austenitic AISI 304 Annealed–Press Forming | REF: 8.91 | REF: 67 | REF: 63 | REF: 0 | REF: 105 | REF: 68 | REF: 49 | ||
1 | Low-alloy steel, AISI 9255, oil quenched and tempered at 205 °C.—Press Forming | 4.98 | 13 | 9 | −14 | 40 | 16 | 25 | 0.0000 |
2 | Low-alloy steel, AISI 9255, oil quenched and tempered at 315 °C.—Press Forming | 5.07 | 13 | 9 | −14 | 41 | 16 | 25 | 0.0161 |
3 | Low-alloy steel, AISI 5160, oil quenched and tempered at 205 °C.—Press Forming | 5.10 | 13 | 9 | −14 | 41 | 16 | 26 | 0.0210 |
4 | Low-alloy steel, AISI 5140, oil quenched and tempered at 205 °C.—Press Forming | 5.11 | 13 | 9 | −14 | 42 | 16 | 26 | 0.0221 |
5 | Low-alloy steel, AISI 5160, oil quenched and tempered at 315 °C.—Press Forming | 5.11 | 13 | 9 | −14 | 42 | 16 | 26 | 0.0225 |
6 | Low-alloy steel, AISI 4140, oil quenched and tempered at 205 °C.—Press Forming | 5.12 | 14 | 10 | −14 | 42 | 16 | 26 | 0.0259 |
7 | Low-alloy steel, AISI 8650, oil quenched and tempered at 205 °C.—Press Forming | 5.12 | 14 | 11 | −14 | 42 | 16 | 26 | 0.0279 |
8 | Low-alloy steel, AISI 50B60, oil quenched and tempered at 315 °C.—Press Forming | 5.16 | 13 | 9 | −14 | 42 | 16 | 26 | 0.0306 |
9 | Low-alloy steel, AISI 5150, oil quenched and tempered at 205 °C.—Press Forming | 5.17 | 13 | 9 | −14 | 42 | 16 | 26 | 0.0336 |
10 | Low-alloy steel, AISI 4150, oil quenched and tempered at 205 °C.—Press Forming | 5.17 | 14 | 10 | −14 | 42 | 16 | 26 | 0.0348 |
11 | Low-alloy steel, AISI 81B45, oil quenched and tempered at 205 °C.—Press Forming | 5.17 | 14 | 10 | −14 | 42 | 16 | 26 | 0.0353 |
12 | Low-alloy steel, AISI 94B30, oil quenched and tempered at 205 °C.—Press Forming | 5.18 | 14 | 10 | −14 | 42 | 16 | 26 | 0.0376 |
13 | Low-alloy steel, AISI 4340, oil quenched and tempered at 205 °C.—Press Forming | 5.15 | 17 | 13 | −13 | 42 | 16 | 26 | 0.0380 |
14 | Low-alloy steel, AISI 8650, oil quenched and tempered at 315 °C.—Press Forming | 5.18 | 15 | 11 | −14 | 42 | 16 | 26 | 0.0384 |
15 | Low-alloy steel, AISI 5140, oil quenched and tempered at 315 °C.—Press Forming | 5.21 | 13 | 9 | −14 | 42 | 16 | 26 | 0.0400 |
16 | Low-alloy steel, AISI 4042, oil quenched and tempered at 205 °C.—Press Forming | 5.20 | 14 | 10 | −14 | 42 | 16 | 26 | 0.0404 |
17 | Low-alloy steel, AISI 9255, oil quenched and tempered at 425 °C.—Press Forming | 5.21 | 13 | 10 | −14 | 42 | 16 | 26 | 0.0414 |
18 | Low-alloy steel, AISI 8640, oil quenched and tempered at 205 °C.—Press Forming | 5.20 | 15 | 11 | −14 | 42 | 16 | 26 | 0.0415 |
19 | Carbon steel, AISI 1340, oil quenched and tempered at 205 °C.—Press Forming | 5.22 | 13 | 9 | −15 | 42 | 16 | 26 | 0.0424 |
20 | Low-alloy steel, AISI 8740, oil quenched and tempered at 205 °C.—Press Forming | 5.20 | 15 | 11 | −14 | 42 | 16 | 26 | 0.0425 |
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Industrial Processes | |||||
---|---|---|---|---|---|
Binder Jetting | 0.05 | 361,000 | 0.98 | 22.4 | 22.4 |
Cold Isostatic Pressing (CIP) | 1470 | 141,000 | 0.99 | 31.6 | 31.6 |
Evaporative pattern casting, automated | 2980 | 23,086 | 0.49 | 31.62 | 31.62 |
Ferro die casting | 44,500 | 393,000 | 0.8 | 54.8 | 54.8 |
Gravity die casting | 10,500 | 35,200 | 0.69 | 15.8 | 15.8 |
Green sand casting, automated | 2150 | 39,300 | 0.63 | 77.5 | 77.5 |
Investment casting, automated (lost wax process) | 6810 | 39,300 | 0.82 | 44.7 | 44.7 |
Press forming | 78,600 | 278,000 | 0.75 | 77.5 | 77.5 |
Replicast casting | 5560 | 21,500 | 0.69 | 22.4 | 22.4 |
Shell casting | 3930 | 5560 | 0.49 | 15.81 | 15.81 |
Squeeze casting | 22,200 | 393,000 | 0.93 | 30 | 30 |
Design Scenario | Industrial Process | Family Material | |||||||
---|---|---|---|---|---|---|---|---|---|
General Design | 1 | 1 | 1 | 1 | 1 | 1 | 1 | All | All |
Yield Design | 0 | 1 | 0 | 1 | 1 | 1 | 1 | All | All |
Wrought Design | 1 | 1 | 1 | 1 | 1 | 1 | 1 | Press Forming | Compatible |
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Risaliti, E.; Gabriele, A.; Del Pero, F.; Citti, P. Innovative Model for Material Selection Within the Automotive Lightweight Eco-Design Field. Eng. Proc. 2025, 85, 20. https://doi.org/10.3390/engproc2025085020
Risaliti E, Gabriele A, Del Pero F, Citti P. Innovative Model for Material Selection Within the Automotive Lightweight Eco-Design Field. Engineering Proceedings. 2025; 85(1):20. https://doi.org/10.3390/engproc2025085020
Chicago/Turabian StyleRisaliti, Edoardo, Arcidiacono Gabriele, Francesco Del Pero, and Paolo Citti. 2025. "Innovative Model for Material Selection Within the Automotive Lightweight Eco-Design Field" Engineering Proceedings 85, no. 1: 20. https://doi.org/10.3390/engproc2025085020
APA StyleRisaliti, E., Gabriele, A., Del Pero, F., & Citti, P. (2025). Innovative Model for Material Selection Within the Automotive Lightweight Eco-Design Field. Engineering Proceedings, 85(1), 20. https://doi.org/10.3390/engproc2025085020