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Design Guidelines

¡¡¡¡Today, MIM is serving critical performance applications in a wide range of industries and products including, automotive, aerospace and defense, consumer electronics, dental implants and instruments, electronic and fiber optic connectors, hermetic packages, surgical instruments and implants, power and hand tools, hardware and sporting gear.
 

Products most appropriate for MIM usually have the following characteristics.

Complexity:
MIM allows the same design freedom as plastic injection molding which gives almost limitless shape capability. Because MIM is a molding process, additional product features do not add cost, which makes MIM ideal for combining individual parts into multi-functional products. Design rules for MIM are very close to that of plastic injection molding thereby making it easy to adapt to almost any product.

Precision:
The general guideline for MIM precision of net shape features is ¡À 0.5% of the dimension. Certain features can be made net shape to ¡À 0.3%. As with any technology, higher precision equates to higher cost so relaxation of tolerances is encouraged wherever possible. Tolerances that are not capable of being met by MIM alone can be achieved through various finishing processes.

Weight and Size:
MMIM is best suited for parts weighing less than 100 grams with the most economical applications being less than 50 grams. However, part weights of up to 250 grams have been processed. Raw material is a key cost driver for the MIM process. MIM promotes creative ways to reduce part weight wherever possible. Similar to plastics, coring and ribs can be used to reduce weight without compromising product integrity. MIM excels at extremely small and micro-sized parts with weights of less than 0.1 gram being possible. Weight not being a limiting factor, product lengths in excess of 250 mm can be processed.

Section Thickness:
Wall sections of less than 6 mm are most appropriate for the MIM process. While thicker sections are possible, this also drives up cost due to longer processing times and additional material. Alternatively, very thin sections of less than 0.5 mm are possible for MIM to achieve but are highly design dependent.

Production Volumes:
MIM is a highly scalable process. Low volume of several thousand parts annually up to millions of parts can be economically achieved. A tooling and engineering investment is necessary for the MIM process similar to casting or plastics, which will normally drive the decision process for low volume products.

Materials:
MIM can process a wide array of materials including ferrous alloys, Superalloys, Titanium alloys, copper alloys, refractory metals, cemented carbides, ceramics and metal matrix composites. While non-ferrous alloys such as aluminum and brass are technically possible, they are more normally economically processed by other means such as die casting or machining. Please check our materials section for more information.

Applications Assistance:
MIM provides comprehensive assistance to achieve the most value from the MIM process. We help with migration of existing products in both design conversions and materials selection as we well as a full range of product development services including industrial product design, FEA, rapid prototyping and laser scanning.

 
MIM Material list
Materials Density Rockwell Hardness Tenslle Strength Elongation
g/cm3 Rockwell MPa %
Iron-base alloy MIM-4140(HT) 7.4 40~45HRC    
MIM-4650(S) 7.65 90HRB 700 11
MIM-4650(HT) 7.65 48HRC 1655 2
MIM-8620(S) 7.55 85HRB 445 20
MIM-8620(HT) 7.55 35HRC 800-1300 5-9
Stainless steel MIM-316L(S) 7.8 67HRB 520 50
MIM-304L(S) 7.75 60HRB 500 70
MIM-17-4PH(S) 7.6 30HRC 900 6
MIM-17-4PH(HT) 7.6 40HRC 1185 6
MIM-440C(HT) 7.5 50HRC 700 15
MIM-420(HT) 7.5 45HRC 900 6
Tool steel M2(S) 8.0 60HRC    
SKD11 7.5 55HRC    
Soft magnetic alloy FeSi3 7.5      
FeNi50 7.6 50HRB    
Tungsten alloy 95%W-Ni-Fe 18.1 30 960 25
97%W-Ni-Fe 18.5 33 940 15
Hard metal alloy YG8X 14.9 HRA90    
 
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