US20090208360A1 - Binderless metal injection molding apparatus and method - Google Patents

Binderless metal injection molding apparatus and method Download PDF

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Publication number
US20090208360A1
US20090208360A1 US12/034,196 US3419608A US2009208360A1 US 20090208360 A1 US20090208360 A1 US 20090208360A1 US 3419608 A US3419608 A US 3419608A US 2009208360 A1 US2009208360 A1 US 2009208360A1
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Prior art keywords
die
features
metal injection
metal
injection molding
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US12/034,196
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Carey E. Wilkinson
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Boeing Co
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Boeing Co
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Priority to US12/034,196 priority Critical patent/US20090208360A1/en
Assigned to THE BOEING COMPANY reassignment THE BOEING COMPANY ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: WILKINSON, CAREY E.
Publication of US20090208360A1 publication Critical patent/US20090208360A1/en
Priority to US13/486,126 priority patent/US20120237385A1/en
Priority to US14/489,328 priority patent/US10265770B2/en
Abandoned legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F3/00Manufacture of workpieces or articles from metallic powder characterised by the manner of compacting or sintering; Apparatus specially adapted therefor ; Presses and furnaces
    • B22F3/02Compacting only
    • B22F3/093Compacting only using vibrations or friction
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F3/00Manufacture of workpieces or articles from metallic powder characterised by the manner of compacting or sintering; Apparatus specially adapted therefor ; Presses and furnaces
    • B22F3/003Apparatus, e.g. furnaces
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F3/00Manufacture of workpieces or articles from metallic powder characterised by the manner of compacting or sintering; Apparatus specially adapted therefor ; Presses and furnaces
    • B22F3/22Manufacture of workpieces or articles from metallic powder characterised by the manner of compacting or sintering; Apparatus specially adapted therefor ; Presses and furnaces for producing castings from a slip
    • B22F3/225Manufacture of workpieces or articles from metallic powder characterised by the manner of compacting or sintering; Apparatus specially adapted therefor ; Presses and furnaces for producing castings from a slip by injection molding
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B22CASTING; POWDER METALLURGY
    • B22FWORKING METALLIC POWDER; MANUFACTURE OF ARTICLES FROM METALLIC POWDER; MAKING METALLIC POWDER; APPARATUS OR DEVICES SPECIALLY ADAPTED FOR METALLIC POWDER
    • B22F2999/00Aspects linked to processes or compositions used in powder metallurgy

Definitions

  • the disclosure relates to metal injection molding processes. More particularly, the disclosure relates to a binderless metal injection molding apparatus and method which eliminate or minimize shrinkage of green parts.
  • Metal injection molding is a manufacturing process in which fine metal powders may be combined with plastic binders that allow the metal to be injected into a mold using standard plastic injection molding techniques. After molding and prior to removal of binders from the part, the molded part is known as a “green part”.
  • binders may be used to (1) act as a lubricant so that the metal powder will flow into and fill the complex mold cavities and (2) hold the metal powders together as the green part.
  • plastic binders are mixed with the powder before the powder is injected into the mold. After they are stripped from the molds, the green parts may be subjected to a lengthy de-binding process before sintering.
  • the de-binding process may use a chemical solvent to dissolve and carry away most of the binder, after which the remaining binder may be baked out before sintering. Removal of the binders from the green part may result in a 30% ⁇ 40% reduction in size of the green part. Therefore, design of the parts must be meticulous since the parts may need to be fabricated 30% ⁇ 40% larger to account for shrinkage.
  • a binderless metal injection molding apparatus and method may be desirable.
  • the disclosure is generally directed to a metal injection molding apparatus.
  • An illustrative embodiment of the metal injection molding apparatus includes a metal injection mold die having first and second die halves, a first set of features provided in the first die half, a second set of features provided in the second die half and complementary to the first set of features provided in the first die half and an ultrasonic transducer disposed in contact with the metal injection mold die.
  • the disclosure is further generally directed to a binderless metal injection molding method.
  • An illustrative embodiment of the method includes providing a metal injection mold die having die features, injecting metal powder into the die features of the metal injection mold die without plastic binder and compacting the metal powder in the die features of the metal injection mold die by inducing ultrasonic vibrations in the metal injection mold die.
  • FIG. 1 is a schematic view of an illustrative embodiment of the metal injection molding (MIM) apparatus, illustrating injection of metal powders into die cavities of an MIM mold die.
  • MIM metal injection molding
  • FIG. 2 is a schematic view of an illustrative embodiment of the metal injection molding (MIM) apparatus, illustrating binderless compacting of the metal powders in the die cavities of the MIM mold die by operation of an ultrasonic transducer disposed in contact with the die.
  • MIM metal injection molding
  • FIG. 3 is a schematic view of an illustrative embodiment of the metal injection molding (MIM) apparatus, illustrating opening of the die halves of the MIM mold die and removal of a molded green part from the die.
  • MIM metal injection molding
  • FIG. 4 is a flow diagram which illustrates an illustrative embodiment of a binderless metal injection molding method.
  • FIG. 5 is a flow diagram of an aircraft production and service methodology.
  • FIG. 6 is a block diagram of an aircraft.
  • the MIM apparatus 1 may include an MIM mold die 2 having a pair of mating die halves 3 , 3 a.
  • multiple interconnected die cavities 4 , 4 a may be provided in the respective die halves 3 , 3 a.
  • the particular features which are included in each die half 3 , 3 a may vary depending on the part which is to be fabricated using the MIM apparatus 1 .
  • the die cavities 4 , 4 a in the respective die halves 3 , 3 a may have any of a variety of sizes and configurations depending on the shape and characteristics of the part which is to be fabricated.
  • the die cavities 4 , 4 a in the respective die halves 3 , 3 a may be complementary and mate with each other when the die halves 3 , 3 a are placed into contact with each other as shown in FIGS. 1 and 2 .
  • An ultrasonic transducer 6 may be disposed in physical contact with at least one of the die halves 3 , 3 a to impart ultrasonic vibration to the MIM mold die 2 for purposes which will be hereinafter described.
  • a metal powder injecting system 5 may be adapted to inject metal powder particles 16 into the die cavities 4 , 4 a in the respective die halves 3 , 3 a.
  • the metal powder injecting system 5 may include a fill hopper 10 which is adapted to contain the metal powder particles 16 without plastic binder.
  • the fill hopper 10 may be disposed in fluid communication with the die cavities 4 a of one die half 3 such as through an injection conduit 12 .
  • the injection conduit 12 may be adapted to distribute the binderless metal powder particles 16 from the fill hopper 10 to the die cavities 4 , 4 a in the respective die halves 3 , 3 a.
  • the metal powder injecting system 5 may have any design which is known to those skilled in the art and suitable for the purpose of distributing the binderless metal powder particles 16 from the fill hopper 10 into the die cavities 4 , 4 a in the respective die halves 3 , 3 a.
  • the MIM apparatus 1 is operated to fabricate a molded metal green part 18 ( FIG. 3 ) using a binderless metal injection molding process.
  • the die halves 3 , 3 a of the MIM mold die 2 may initially be placed together or into contact with each other with the die cavities 4 in the die half 3 completing the complementary die cavities 4 a in the die half 3 a.
  • the metal powder particles 16 may be placed in the fill hopper 10 without plastic binder.
  • the metal powder injecting system 5 may then be operated to distribute the metal powder particles 16 from the fill hopper 10 , through the injection conduit 12 and into the complementary die cavities 4 , 4 a in the respective die halves 3 , 3 a of the MIM mold die 2 .
  • the ultrasonic transducer 6 may be operated to impart ultrasonic vibrations to the die halves 3 , 3 a of the MIM mold die 2 , as shown in FIG. 2 .
  • the ultrasonic vibrations of the MIM die mold 2 compact the binderless metal powder particles 16 in the die cavities 4 , 4 a and form the molded green part 18 from the compacted metal particles 16 a.
  • the die halves 3 , 3 a of the MIM mold die 2 may be separated from each other and the molded green part 18 removed from the die cavities 4 , 4 a.
  • the molded green part 18 may then be sintered and subjected to other post-molding steps which are known to those skilled in the art.
  • the ultrasonic vibrations which are imparted to the MIM mold die 2 by the ultrasonic transducer 6 may facilitate fluid flow of the metal powder particles 16 into the die cavities 4 , 4 a and compacting of the powder particles 16 into the compacted metal particles 16 a to form the molded green part 18 .
  • the resulting sintered green part may be of closer tolerances and devoid of residual binders and cheaper and quicker to fabricate.
  • the sintered green part may have a higher-quality surface finish as compared to parts which are fabricated using plastic binders.
  • a flow diagram 400 which illustrates an illustrative embodiment of a binderless metal injection molding method is illustrated.
  • a metal injection mold die having die cavities or other die features is provided.
  • metal powder is injected into the die cavities or other die features of the metal injection mold die without plastic binders.
  • an ultrasonic transducer is provided in contact with the metal injection mold die.
  • the metal powder in the die cavities or features of the metal injection mold die is compacted by operation of the ultrasonic transducer to form the molded green part.
  • embodiments of the disclosure may be used in the context of an aircraft manufacturing and service method 78 as shown in FIG. 5 and an aircraft 94 as shown in FIG. 6 .
  • exemplary method 78 may include specification and design 80 of the aircraft 94 and material procurement 82 .
  • component and subassembly manufacturing 84 and system integration 86 of the aircraft 94 takes place.
  • the aircraft 94 may go through certification and delivery 88 in order to be placed in service 90 .
  • the aircraft 94 may be scheduled for routine maintenance and service 92 (which may also include modification, reconfiguration, refurbishment, and so on).
  • Each of the processes of method 78 may be performed or carried out by a system integrator, a third party, and/or an operator (e.g., a customer).
  • a system integrator may include without limitation any number of aircraft manufacturers and major-system subcontractors
  • a third party may include without limitation any number of vendors, subcontractors, and suppliers
  • an operator may be an airline, leasing company, military entity, service organization, and so on.
  • the aircraft 94 produced by exemplary method 78 may include an airframe 98 with a plurality of systems 96 and an interior 100 .
  • high-level systems 96 include one or more of a propulsion system 102 , an electrical system 104 , a hydraulic system 106 , and an environmental system 108 . Any number of other systems may be included.
  • an aerospace example is shown, the principles of the invention may be applied to other industries, such as the automotive industry.
  • the apparatus embodied herein may be employed during any one or more of the stages of the production and service method 78 .
  • components or subassemblies corresponding to production process 84 may be fabricated or manufactured in a manner similar to components or subassemblies produced while the aircraft 94 is in service.
  • one or more apparatus embodiments may be utilized during the production stages 84 and 86 , for example, by substantially expediting assembly of or reducing the cost of an aircraft 94 .
  • one or more apparatus embodiments may be utilized while the aircraft 94 is in service, for example and without limitation, to maintenance and service 92 .

Abstract

A metal injection molding apparatus includes a metal injection mold die having first and second die halves, a first set of features provided in the first die half, a second set of features provided in the second die half and complementary to the first set of features provided in the first die half and an ultrasonic transducer disposed in contact with the metal injection mold die. A binderless metal injection molding method is also disclosed.

Description

    TECHNICAL FIELD
  • The disclosure relates to metal injection molding processes. More particularly, the disclosure relates to a binderless metal injection molding apparatus and method which eliminate or minimize shrinkage of green parts.
  • BACKGROUND
  • Metal injection molding (MIM) is a manufacturing process in which fine metal powders may be combined with plastic binders that allow the metal to be injected into a mold using standard plastic injection molding techniques. After molding and prior to removal of binders from the part, the molded part is known as a “green part”. In the traditional MIM process, binders may be used to (1) act as a lubricant so that the metal powder will flow into and fill the complex mold cavities and (2) hold the metal powders together as the green part.
  • Typically, about 30˜40% plastic binders are mixed with the powder before the powder is injected into the mold. After they are stripped from the molds, the green parts may be subjected to a lengthy de-binding process before sintering. The de-binding process may use a chemical solvent to dissolve and carry away most of the binder, after which the remaining binder may be baked out before sintering. Removal of the binders from the green part may result in a 30%˜40% reduction in size of the green part. Therefore, design of the parts must be meticulous since the parts may need to be fabricated 30%˜40% larger to account for shrinkage.
  • Therefore, a binderless metal injection molding apparatus and method may be desirable.
  • SUMMARY
  • The disclosure is generally directed to a metal injection molding apparatus. An illustrative embodiment of the metal injection molding apparatus includes a metal injection mold die having first and second die halves, a first set of features provided in the first die half, a second set of features provided in the second die half and complementary to the first set of features provided in the first die half and an ultrasonic transducer disposed in contact with the metal injection mold die.
  • The disclosure is further generally directed to a binderless metal injection molding method. An illustrative embodiment of the method includes providing a metal injection mold die having die features, injecting metal powder into the die features of the metal injection mold die without plastic binder and compacting the metal powder in the die features of the metal injection mold die by inducing ultrasonic vibrations in the metal injection mold die.
  • BRIEF DESCRIPTION OF THE ILLUSTRATIONS
  • FIG. 1 is a schematic view of an illustrative embodiment of the metal injection molding (MIM) apparatus, illustrating injection of metal powders into die cavities of an MIM mold die.
  • FIG. 2 is a schematic view of an illustrative embodiment of the metal injection molding (MIM) apparatus, illustrating binderless compacting of the metal powders in the die cavities of the MIM mold die by operation of an ultrasonic transducer disposed in contact with the die.
  • FIG. 3 is a schematic view of an illustrative embodiment of the metal injection molding (MIM) apparatus, illustrating opening of the die halves of the MIM mold die and removal of a molded green part from the die.
  • FIG. 4 is a flow diagram which illustrates an illustrative embodiment of a binderless metal injection molding method.
  • FIG. 5 is a flow diagram of an aircraft production and service methodology.
  • FIG. 6 is a block diagram of an aircraft.
  • DETAILED DESCRIPTION
  • Referring initially to FIGS. 1-3 of the drawings, an illustrative embodiment of the metal injection molding (MIM) apparatus is generally indicated by reference numeral 1. The MIM apparatus 1 may include an MIM mold die 2 having a pair of mating die halves 3, 3 a. In some embodiments, multiple interconnected die cavities 4, 4 a may be provided in the respective die halves 3, 3 a. However, it is to be understood that the particular features which are included in each die half 3, 3 a may vary depending on the part which is to be fabricated using the MIM apparatus 1. The die cavities 4, 4 a in the respective die halves 3, 3 a may have any of a variety of sizes and configurations depending on the shape and characteristics of the part which is to be fabricated. The die cavities 4, 4 a in the respective die halves 3, 3 a may be complementary and mate with each other when the die halves 3, 3 a are placed into contact with each other as shown in FIGS. 1 and 2. An ultrasonic transducer 6 may be disposed in physical contact with at least one of the die halves 3, 3 a to impart ultrasonic vibration to the MIM mold die 2 for purposes which will be hereinafter described.
  • A metal powder injecting system 5 may be adapted to inject metal powder particles 16 into the die cavities 4, 4 a in the respective die halves 3, 3 a. The metal powder injecting system 5 may include a fill hopper 10 which is adapted to contain the metal powder particles 16 without plastic binder. The fill hopper 10 may be disposed in fluid communication with the die cavities 4 a of one die half 3 such as through an injection conduit 12. The injection conduit 12 may be adapted to distribute the binderless metal powder particles 16 from the fill hopper 10 to the die cavities 4, 4 a in the respective die halves 3, 3 a. The metal powder injecting system 5 may have any design which is known to those skilled in the art and suitable for the purpose of distributing the binderless metal powder particles 16 from the fill hopper 10 into the die cavities 4, 4 a in the respective die halves 3, 3 a.
  • In typical application, the MIM apparatus 1 is operated to fabricate a molded metal green part 18 (FIG. 3) using a binderless metal injection molding process. Accordingly, the die halves 3, 3 a of the MIM mold die 2 may initially be placed together or into contact with each other with the die cavities 4 in the die half 3 completing the complementary die cavities 4 a in the die half 3 a. As shown in FIG. 1, the metal powder particles 16 may be placed in the fill hopper 10 without plastic binder. The metal powder injecting system 5 may then be operated to distribute the metal powder particles 16 from the fill hopper 10, through the injection conduit 12 and into the complementary die cavities 4, 4 a in the respective die halves 3, 3 a of the MIM mold die 2.
  • After the desired quantity of the metal powder particles 16 has been distributed into the die cavities 4, 4a, the ultrasonic transducer 6 may be operated to impart ultrasonic vibrations to the die halves 3, 3 a of the MIM mold die 2, as shown in FIG. 2. The ultrasonic vibrations of the MIM die mold 2 compact the binderless metal powder particles 16 in the die cavities 4, 4 a and form the molded green part 18 from the compacted metal particles 16 a. As shown in FIG. 3, the die halves 3, 3 a of the MIM mold die 2 may be separated from each other and the molded green part 18 removed from the die cavities 4, 4 a. The molded green part 18 may then be sintered and subjected to other post-molding steps which are known to those skilled in the art.
  • It will be appreciated by those skilled in the art that the ultrasonic vibrations which are imparted to the MIM mold die 2 by the ultrasonic transducer 6 may facilitate fluid flow of the metal powder particles 16 into the die cavities 4, 4 a and compacting of the powder particles 16 into the compacted metal particles 16 a to form the molded green part 18. Furthermore, by forming the molded green part 18 without the use of plastic binders, the resulting sintered green part may be of closer tolerances and devoid of residual binders and cheaper and quicker to fabricate. Moreover, the sintered green part may have a higher-quality surface finish as compared to parts which are fabricated using plastic binders.
  • Referring next to FIG. 4, a flow diagram 400 which illustrates an illustrative embodiment of a binderless metal injection molding method is illustrated. In block 402, a metal injection mold die having die cavities or other die features is provided. In block 404, metal powder is injected into the die cavities or other die features of the metal injection mold die without plastic binders. In block 406, an ultrasonic transducer is provided in contact with the metal injection mold die. In block 408, the metal powder in the die cavities or features of the metal injection mold die is compacted by operation of the ultrasonic transducer to form the molded green part.
  • Referring next to FIGS. 5 and 6, embodiments of the disclosure may be used in the context of an aircraft manufacturing and service method 78 as shown in FIG. 5 and an aircraft 94 as shown in FIG. 6. During pre-production, exemplary method 78 may include specification and design 80 of the aircraft 94 and material procurement 82. During production, component and subassembly manufacturing 84 and system integration 86 of the aircraft 94 takes place. Thereafter, the aircraft 94 may go through certification and delivery 88 in order to be placed in service 90. While in service by a customer, the aircraft 94 may be scheduled for routine maintenance and service 92 (which may also include modification, reconfiguration, refurbishment, and so on).
  • Each of the processes of method 78 may be performed or carried out by a system integrator, a third party, and/or an operator (e.g., a customer). For the purposes of this description, a system integrator may include without limitation any number of aircraft manufacturers and major-system subcontractors; a third party may include without limitation any number of vendors, subcontractors, and suppliers; and an operator may be an airline, leasing company, military entity, service organization, and so on.
  • As shown in FIG. 6, the aircraft 94 produced by exemplary method 78 may include an airframe 98 with a plurality of systems 96 and an interior 100. Examples of high-level systems 96 include one or more of a propulsion system 102, an electrical system 104, a hydraulic system 106, and an environmental system 108. Any number of other systems may be included. Although an aerospace example is shown, the principles of the invention may be applied to other industries, such as the automotive industry.
  • The apparatus embodied herein may be employed during any one or more of the stages of the production and service method 78. For example, components or subassemblies corresponding to production process 84 may be fabricated or manufactured in a manner similar to components or subassemblies produced while the aircraft 94 is in service. Also, one or more apparatus embodiments may be utilized during the production stages 84 and 86, for example, by substantially expediting assembly of or reducing the cost of an aircraft 94. Similarly, one or more apparatus embodiments may be utilized while the aircraft 94 is in service, for example and without limitation, to maintenance and service 92.
  • Although the embodiments of this disclosure have been described with respect to certain exemplary embodiments, it is to be understood that the specific embodiments are for purposes of illustration and not limitation, as other variations will occur to those of skill in the art.

Claims (12)

1. A metal injection molding apparatus, comprising:
a metal inflection mold die having first and second die halves;
a first set of features provided in said first die half;
a second set of features provided in said second die half and complementary to said first set of features provided in said first die half; and
an ultrasonic transducer disposed in contact with said metal injection mold die.
2. The metal injection molding apparatus of claim 1 wherein said first set of features and said second set of features each comprises a plurality of die cavities.
3. The metal injection molding apparatus of claim 1 further comprising a metal powder injecting system disposed in communication with said first set of features and said second set of features.
4. The metal injection molding apparatus of claim 3 wherein said metal powder injecting system comprises an injection conduit disposed in communication with said first set of features and said second set of features.
5. The metal injection molding apparatus of claim 4 further comprising a fill hopper disposed in communication with said injection conduit.
6. A metal injection molding apparatus, comprising:
a metal injection mold die having a first die half and second die half; disposed in removable contact with said first die half;
a first set of features provided in said first die half;
a second set of features provided in said second die half and complementary to said first set of features provided in said first die half;
an ultrasonic transducer disposed in contact with said metal injection mold die; and
a metal powder injecting system disposed in communication with said first set of features provided in said first die half.
7. The metal injection molding apparatus of claim 6 wherein said first set of features and said second set of features each comprises a plurality of die cavities.
8. The metal injection molding apparatus of claim 6 wherein said metal powder injecting system comprises an injection conduit disposed in communication with said first set of features and said second set of features.
9. The metal injection molding apparatus of claim 8 further comprising a fill hopper disposed in communication with said injection conduit.
10. A binderless metal injection molding method, comprising:
providing a metal injection mold die having die features;
injecting metal powder into said die features of said metal injection mold die without plastic binder; and
compacting said metal powder in said die features of said metal injection mold die by inducing ultrasonic vibrations in said metal injection mold die.
11. The method of claim 10 wherein said compacting said metal powder in said die features of said metal injection mold die comprises providing an ultrasonic transducer, placing said ultrasonic transducer in contact with said metal injection mold die and operating said ultrasonic transducer.
12. The method of claim 10 wherein said providing a metal injection mold die having die features comprises providing a metal injection mold die having die cavities.
US12/034,196 2008-02-20 2008-02-20 Binderless metal injection molding apparatus and method Abandoned US20090208360A1 (en)

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US13/486,126 US20120237385A1 (en) 2008-02-20 2012-06-01 Binderless Metal Injection Molding Apparatus and Method
US14/489,328 US10265770B2 (en) 2008-02-20 2014-09-17 Binderless metal injection molding apparatus and method

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102528028A (en) * 2012-03-02 2012-07-04 浙江大学宁波理工学院 Automatic production method for compression moulding of powdered material and device adopted by same
US9782828B2 (en) 2014-10-20 2017-10-10 The Boeing Company Methods for forming near net-shape metal parts from binderless metal powder
CN107598170A (en) * 2017-10-10 2018-01-19 顺德职业技术学院 Metal parts fast mould injection moulding method and equipment
WO2020020830A1 (en) * 2018-07-24 2020-01-30 Straumann Holding Ag Process for the preparation of an article by powder injection molding

Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104525953B (en) * 2015-01-14 2017-05-17 南方科技大学 Ultrasonic assisted powder injection molding device and method
CN109702192B (en) * 2019-03-07 2021-04-13 攀枝花学院 Method for preparing parts by quickly molding metal powder
US11293244B2 (en) 2020-02-28 2022-04-05 Weatherford Technology Holdings, Llc Slip assembly for a downhole tool
US11591881B2 (en) 2021-03-17 2023-02-28 Weatherford Technology Holdings, Llc Cone for a downhole tool
CN116900316B (en) * 2023-09-12 2023-11-28 江苏金物新材料有限公司 Metal injection molding device with self-cleaning function

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3165570A (en) * 1962-08-22 1965-01-12 Alexander T Deutsch Refractory powder injection, process and apparatus
US3181211A (en) * 1962-05-16 1965-05-04 Adams Millis Corp Die casting with ultrasonic vibration
US6187259B1 (en) * 1995-06-26 2001-02-13 Sumitomo Special Metals Co., Ltd. Method for preparing rare-earth system sintered magnet
US6296044B1 (en) * 1998-06-24 2001-10-02 Schlumberger Technology Corporation Injection molding
US20020011320A1 (en) * 2000-05-23 2002-01-31 Norbert Ruhland Device and process for producing metal/ceramic composite materials
US20060118211A1 (en) * 2001-10-16 2006-06-08 International Non-Toxic Composites Composite material containing tungsten and bronze

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5360329A (en) * 1957-10-22 1994-11-01 Lemelson Jerome H Molding/extrusion apparatus with temperature and flow control
US5641920A (en) 1995-09-07 1997-06-24 Thermat Precision Technology, Inc. Powder and binder systems for use in powder molding
US5993507A (en) 1997-12-29 1999-11-30 Remington Arms Co., Inc. Composition and process for metal injection molding
JP2002370255A (en) 2001-06-14 2002-12-24 Nok Corp Injection molding machine
US7387763B2 (en) 2004-07-27 2008-06-17 General Electric Company Preparation of sheet by injection molding of powder, consolidation, and heat treating
AU2008206953A1 (en) * 2007-01-19 2008-07-24 Cinvention Ag Porous, non-degradable implant made by powder molding
US8920712B2 (en) 2007-06-11 2014-12-30 Advanced Materials Products, Inc. Manufacture of near-net shape titanium alloy articles from metal powders by sintering with presence of atomic hydrogen
US7883662B2 (en) 2007-11-15 2011-02-08 Viper Technologies Metal injection molding methods and feedstocks
GB0917988D0 (en) 2009-10-14 2009-12-02 Johnson Matthey Plc Method

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3181211A (en) * 1962-05-16 1965-05-04 Adams Millis Corp Die casting with ultrasonic vibration
US3165570A (en) * 1962-08-22 1965-01-12 Alexander T Deutsch Refractory powder injection, process and apparatus
US6187259B1 (en) * 1995-06-26 2001-02-13 Sumitomo Special Metals Co., Ltd. Method for preparing rare-earth system sintered magnet
US6296044B1 (en) * 1998-06-24 2001-10-02 Schlumberger Technology Corporation Injection molding
US20020011320A1 (en) * 2000-05-23 2002-01-31 Norbert Ruhland Device and process for producing metal/ceramic composite materials
US20060118211A1 (en) * 2001-10-16 2006-06-08 International Non-Toxic Composites Composite material containing tungsten and bronze

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102528028A (en) * 2012-03-02 2012-07-04 浙江大学宁波理工学院 Automatic production method for compression moulding of powdered material and device adopted by same
US9782828B2 (en) 2014-10-20 2017-10-10 The Boeing Company Methods for forming near net-shape metal parts from binderless metal powder
CN107598170A (en) * 2017-10-10 2018-01-19 顺德职业技术学院 Metal parts fast mould injection moulding method and equipment
WO2020020830A1 (en) * 2018-07-24 2020-01-30 Straumann Holding Ag Process for the preparation of an article by powder injection molding
CN112423915A (en) * 2018-07-24 2021-02-26 斯特劳曼控股公司 Powder injection molding apparatus

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