| 1 | Match thickness to structural load | 0.10–0.50 mm for light covers; 0.50–2.00 mm for moderately rigid parts | Small parts: 50 × 100 mm to 300 × 300 mm | Shields, spacers, diaphragms, and formed components | Thicker sheets resist bending but require greater forming force and may increase machining cost. |
| 2 | Consider high-temperature exposure | 0.50–3.00 mm for furnace parts and thermal shields | 100 × 200 mm to 600 × 1,200 mm | Heat shields, furnace supports, and hot-zone components | Molybdenum has a melting point of approximately 2,623°C, but oxidation becomes a major concern in air at elevated temperature. |
| 3 | Choose the correct material grade | 0.25–3.00 mm, depending on strength and temperature requirements | Up to approximately 600 × 1,200 mm for many fabricated parts | Pure molybdenum for general vacuum and high-temperature applications; molybdenum alloys for improved strength | Alloy selection should be based on operating temperature, mechanical load, atmosphere, and forming requirements. |
| 4 | Allow for thermal expansion | 0.50–2.00 mm for flat panels exposed to repeated heating and cooling | 100 × 300 mm to 500 × 1,000 mm | Thermal barriers, furnace liners, and electrical heating assemblies | Molybdenum’s linear thermal expansion is relatively low, approximately 4.8 × 10−6/°C near room temperature, but clearance is still necessary. |
| 5 | Select a thinner sheet for precision forming | 0.05–0.30 mm for fine shields, tabs, and small formed parts | 25 × 50 mm to 200 × 300 mm | Precision masks, thin electrical shields, and laboratory components | Thin molybdenum sheet is less tolerant of sharp bends; use generous bend radii and controlled tooling. |
| 6 | Use greater thickness for wear resistance | 1.00–3.00 mm for contact plates, liners, and wear surfaces | 100 × 100 mm to 400 × 800 mm | High-temperature contact plates, liners, and support surfaces | Molybdenum has good high-temperature strength, but surface finish and support conditions strongly affect service life. |
| 7 | Evaluate electrical and thermal conductivity | 0.10–1.00 mm for electrical shields and conductive components | 50 × 100 mm to 300 × 600 mm | Electrodes, conductive shields, and heat-spreading parts | Molybdenum’s thermal conductivity is approximately 138 W/(m·K) at room temperature; actual performance varies with purity and temperature. |
| 8 | Check flatness and surface condition | 0.20–2.00 mm for flat precision panels | 200 × 300 mm to 600 × 1,200 mm | Vacuum chamber shields, apertures, and precision mounting plates | Specify thickness tolerance, flatness, surface roughness, and edge condition separately; nominal dimensions alone are insufficient. |
| 9 | Plan cutting and machining allowances | 0.50–3.00 mm when machining holes, slots, or complex profiles | Finished part size plus a practical machining allowance | CNC-machined fixtures, brackets, and custom plates | Molybdenum is dense, hard, and relatively brittle at room temperature; use rigid tooling and avoid excessive cutting forces. |
| 10 | Confirm the final size against handling and installation limits | 0.30–2.00 mm for general-purpose panels and inserts | Common working sizes: 300 × 600 mm, 500 × 1,000 mm, and 600 × 1,200 mm | General furnace components, shielding panels, and replacement inserts | Larger sheets can reduce joints but are heavier; molybdenum density is approximately 10.28 g/cm³. |