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{"title":"OEM 3 4 5 Axis CNC Mechanical Parts Anodized Plating For Medical Instruments","imgUrl":"https:\/\/img.chinax.com\/nimg\/7c\/8b\/96d9d768eb2350c28c4aaba9ccec-200x200-1\/oem_3_4_5_axis_cnc_mechanical_parts_anodized_plating_for_medical_instruments.jpg","attrs":{"Brand Name":"OEM","Certification":"ISO9001\uff0cIATF16949","Place of Origin":"Guangdong\uff0cChina","Minimum Order Quantity":"1pcs"}}
{"title":"Aluminum 6061 6063 7075 CNC Machining Parts Anodized Custom Mechanical Parts","imgUrl":"https:\/\/img.chinax.com\/nimg\/05\/1e\/9ee3be14b97ce2c886a732f5354f-200x200-1\/aluminum_6061_6063_7075_cnc_machining_parts_anodized_custom_mechanical_parts.jpg","attrs":{"Brand Name":"OEM","Certification":"ISO9001\uff0cIATF16949","Place of Origin":"Guangdong\uff0cChina","Minimum Order Quantity":"1pcs"}}
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Powder Metallurgy (PM) is a technology that produces metallic materials, composite materials, or components by preparing metal/alloy powders and processing them through forming, sintering, and other processes. It integrates material preparation and shaping, widely used in high-end manufacturing, aerospace, electronics, and other fields.
II. Core Process Steps
Powder Preparation
Methods: Mechanical crushing (e.g., ball milling, jaw crushing), physical vapor deposition (PVD), chemical reduction (e.g., hydrogen reduction for iron powder), atomization (water/air atomization for alloy powders).
Blend metal powders with non-metallic additives (e.g., carbon, copper for hardness) and lubricants (e.g., zinc stearate for moldability).
Forming
Compression Molding: High pressure (50–300 MPa) in molds to form "green compacts," suitable for simple symmetrical shapes.
Metal Injection Molding (MIM): Powder-binder mixture is injected into molds, debound, and sintered for complex precision parts (e.g., watch gears, medical devices).
Isostatic Pressing: Uniform pressure via liquid (cold/hot isostatic pressing) for high-density materials (e.g., aerospace superalloy components). [Image: Schematic of cold isostatic pressing equipment]
Sintering
Heating in a protective atmosphere (argon, hydrogen) or vacuum to 60–80% of the metal’s melting point, bonding particles via atomic diffusion to improve density and strength.
Critical Parameters: Temperature, holding time, and atmosphere control.
Post-Processing
Densification: Repressing/re-sintering; hot forging for mechanical properties.
Machining: Minor cutting (drilling, grinding) for high precision.
III. Technical Features
Advantages
High Material Efficiency: Near-net shaping reduces waste (<5%), lowering costs.
Complex Structure Fabrication: Directly forms parts with microholes, multi-material composites, or gradient properties (e.g., oil-impregnated bearings, gearboxes).
High-Performance Materials:
Refractory metals (tungsten, molybdenum) and composites (metal-matrix ceramic reinforcements).
Porous materials (filters, heat sinks) and antifriction materials (self-lubricating bearings).
Energy-Efficient: Lower energy use than casting/forging, ideal for mass production.
New Energy: Lithium battery electrode powders (NCM), fuel cell bipolar plates (stainless steel). [Image: Powder metallurgy components in an electric vehicle motor]
V. Cutting-Edge Technologies and Trends (2025 Outlook)
Integration with Additive Manufacturing
Metal 3D Printing (SLM/LMD): Directly prints complex parts (e.g., aerospace impellers) from powders, overcoming traditional molding limits.
Binder Jetting 3D Printing: Cost-effective for mass-producing small parts, cheaper than conventional MIM. [Image: 3D-printed titanium aerospace component via SLM]
Nanopowders and High Performance
Nanocrystalline Powders (e.g., nano-copper, nano-titanium) boost strength by 50%+ for high-end tools and armor.
Gradient Materials: Layered powder forming for parts with surface wear resistance and internal toughness.