US20120294963A1 - Apparatus and Method for Injection Molding at Low Constant Pressure - Google Patents

Apparatus and Method for Injection Molding at Low Constant Pressure Download PDF

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Publication number
US20120294963A1
US20120294963A1 US13/476,045 US201213476045A US2012294963A1 US 20120294963 A1 US20120294963 A1 US 20120294963A1 US 201213476045 A US201213476045 A US 201213476045A US 2012294963 A1 US2012294963 A1 US 2012294963A1
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United States
Prior art keywords
mold
injection molding
molten plastic
injection
molding apparatus
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Abandoned
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US13/476,045
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English (en)
Inventor
Gene Michael Altonen
Ralph Edwin Neufarth
Gary Francis Schiller
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Imflux Inc
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Procter and Gamble Co
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Priority to US13/476,045 priority Critical patent/US20120294963A1/en
Assigned to THE PROCTER & GAMBLE COMPANY reassignment THE PROCTER & GAMBLE COMPANY ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: ALTONEN, GENE MICHAEL, NEUFARTH, RALPH EDWIN, SCHILLER, Gary Francis
Priority to US13/601,307 priority patent/US10076861B2/en
Priority to BR112014028693A priority patent/BR112014028693A2/pt
Priority to US13/682,456 priority patent/US20130221575A1/en
Priority to AU2012381045A priority patent/AU2012381045A1/en
Priority to EP12805488.9A priority patent/EP2852484B1/en
Priority to MX2014014157A priority patent/MX365814B/es
Priority to IN9328DEN2014 priority patent/IN2014DN09328A/en
Priority to CA2871847A priority patent/CA2871847A1/en
Priority to KR1020147031619A priority patent/KR20140144299A/ko
Priority to CN201280073315.8A priority patent/CN104321182A/zh
Priority to JP2015512617A priority patent/JP2015520050A/ja
Priority to RU2014140421A priority patent/RU2014140421A/ru
Priority to PCT/US2012/066095 priority patent/WO2013176701A1/en
Publication of US20120294963A1 publication Critical patent/US20120294963A1/en
Priority to TW102102119A priority patent/TW201402302A/zh
Assigned to IMFLUX INC reassignment IMFLUX INC ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: THE PROCTER & GAMBLE COMPANY
Priority to PH12014502589A priority patent/PH12014502589A1/en
Abandoned legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C45/00Injection moulding, i.e. forcing the required volume of moulding material through a nozzle into a closed mould; Apparatus therefor
    • B29C45/17Component parts, details or accessories; Auxiliary operations
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C45/00Injection moulding, i.e. forcing the required volume of moulding material through a nozzle into a closed mould; Apparatus therefor
    • B29C45/17Component parts, details or accessories; Auxiliary operations
    • B29C45/76Measuring, controlling or regulating
    • B29C45/77Measuring, controlling or regulating of velocity or pressure of moulding material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C2945/00Indexing scheme relating to injection moulding, i.e. forcing the required volume of moulding material through a nozzle into a closed mould
    • B29C2945/76Measuring, controlling or regulating
    • B29C2945/76494Controlled parameter
    • B29C2945/76498Pressure
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29CSHAPING OR JOINING OF PLASTICS; SHAPING OF MATERIAL IN A PLASTIC STATE, NOT OTHERWISE PROVIDED FOR; AFTER-TREATMENT OF THE SHAPED PRODUCTS, e.g. REPAIRING
    • B29C2945/00Indexing scheme relating to injection moulding, i.e. forcing the required volume of moulding material through a nozzle into a closed mould
    • B29C2945/76Measuring, controlling or regulating
    • B29C2945/76822Phase or stage of control
    • B29C2945/76859Injection
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29KINDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
    • B29K2905/00Use of metals, their alloys or their compounds, as mould material
    • B29K2905/02Aluminium
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B29WORKING OF PLASTICS; WORKING OF SUBSTANCES IN A PLASTIC STATE IN GENERAL
    • B29KINDEXING SCHEME ASSOCIATED WITH SUBCLASSES B29B, B29C OR B29D, RELATING TO MOULDING MATERIALS OR TO MATERIALS FOR MOULDS, REINFORCEMENTS, FILLERS OR PREFORMED PARTS, e.g. INSERTS
    • B29K2995/00Properties of moulding materials, reinforcements, fillers, preformed parts or moulds
    • B29K2995/0012Properties of moulding materials, reinforcements, fillers, preformed parts or moulds having particular thermal properties
    • B29K2995/0013Conductive

Definitions

  • the present invention relates to apparatuses and methods for injection molding and, more particularly, to apparatuses and methods for producing injection molded parts at low constant pressure.
  • Injection molding is a technology commonly used for high-volume manufacturing of parts made of meltable material, most commonly of parts made of thermoplastic polymers.
  • a plastic resin most often in the form of small beads or pellets, is introduced to an injection molding machine that melts the resin beads under heat, pressure, and shear.
  • the now molten resin is forcefully injected into a mold cavity having a particular cavity shape.
  • the injected plastic is held under pressure in the mold cavity, cooled, and then removed as a solidified part having a shape that essentially duplicates the cavity shape of the mold.
  • the mold itself may have a single cavity or multiple cavities. Each cavity may be connected to a flow channel by a gate, which directs the flow of the molten resin into the cavity.
  • a molded part may have one or more gates. It is common for large parts to have two, three, or more gates to reduce the flow distance the polymer must travel to fill the molded part.
  • the one or multiple gates per cavity may be located anywhere on the part geometry, and possess any cross-section shape such as being essentially circular or be shaped with an aspect ratio of 1.1 or greater.
  • a typical injection molding procedure comprises four basic operations: (1) heating the plastic in the injection molding machine to allow it to flow under pressure; (2) injecting the melted plastic into a mold cavity or cavities defined between two mold halves that have been closed; (3) allowing the plastic to cool and harden in the cavity or cavities while under pressure; and (4) opening the mold halves to cause the part to be ejected from the mold.
  • the molten plastic resin is injected into the mold cavity and the plastic resin is forcibly pushed through the cavity by an injection element of the injection molding machine until the plastic resin reaches the location in the cavity furthest from the gate.
  • the resulting length and wall thickness of the part is a result of the shape of the mold cavity.
  • One method to decrease the wall thickness of a part is to increase the pressure of the liquid plastic resin as it is introduced into the mold. By increasing the pressure, the molding machine can continue to force liquid material into the mold before the flow path has closed off. Increasing the pressure, however, has both cost and performance downsides. As the pressure required to mold the component increases, the molding equipment must be strong enough to withstand the additional pressure, which generally equates to being more expensive. A manufacturer may have to purchase new equipment to accommodate these increased pressures. Thus, a decrease in the wall thickness of a given part can result in significant capital expenses to accomplish the manufacturing via conventional injection molding techniques.
  • Reduction in viscosity is directly related to the magnitude of shear forces generated between the plastic material and the feed system, and between the plastic material and the mold cavity wall.
  • manufacturers of these shear-thinning materials and operators of injection molding systems have been driving injection molding pressures higher in an effort to increase shear, thus reducing viscosity.
  • injection molding systems inject the plastic material in to the mold cavity at melt pressures of 15,000 psi or more.
  • Manufacturers of shear-thinning plastic material teach injection molding operators to inject the plastic material into the mold cavities above a minimum melt pressure.
  • polypropylene resin is typically processed at pressures greater than 6,000 psi (the recommended range from the polypropylene resin manufacturers, is typically from greater than 6,000 psi to about 15,000 psi. Resin manufacturers recommend not to exceed the top end of the range. Press manufacturers and processing engineers typically recommend processing shear thinning polymers at the top end of the range, or significantly higher, to achieve maximum potential shear thinning, which is typically greater than 15,000 psi, to extract maximum thinning and better flow properties from the plastic material. Shear thinning thermoplastic polymers generally are processed in the range of over 6,000 psi to about 30,000 psi.
  • the molds used in injection molding machines must be capable of withstanding these high melt pressures. Moreover, the material forming the mold must have a fatigue limit that can withstand the maximum cyclic stress for the total number of cycles a mold is expected to run over the course of its lifetime. As a result, mold manufacturers typically form the mold from materials having high hardness, typically greater than 30 Rc, and more typically greater than 50 Rc. These high hardness materials are durable and equipped to withstand the high clamping pressures required to keep mold components pressed against one another during the plastic injection process. These high hardness materials are also better able to resist wear from the repeated contact between molding surfaces and polymer flow.
  • High production injection molding machines i.e., class 101 and class 102 molding machines that produce thinwalled consumer products exclusively use molds having a majority of the mold made from the high hardness materials.
  • High production injection molding machines typically produce 500,000 cycles per year or more.
  • Industrial quality production molds must be designed to withstand at least 500,000 cycles per year, preferably more than 1,000,000 cycles per year, more preferably more than 5,000,000 cycles per year, and even more preferably more than 10,000,000 cycles per year. These machines have multi cavity molds and complex cooling systems to increase production rates.
  • the high hardness materials are more capable of withstanding the repeated high pressure clamping operations than lower hardness materials.
  • high hardness materials such as most tool steels, have relatively low thermal conductivities, generally less than 20 BTU/HR FT ° F., which leads to long cooling times as heat is transferred through from the molten plastic material through the high hardness material.
  • typical high production injection molding machines having molds made of high hardness materials include relatively complex internal cooling systems that circulate cooling fluid within the mold. These cooling systems accelerate cooling of the molded parts, thus allowing the machine to complete more cycles in a given amount of time, which increases production rates and thus the total amount of molded parts produced.
  • these molds are sometimes referred to as “ultra high productivity molds”
  • Class 101 molds that run in 400 ton or larger presses are sometimes referred to as “400 class” molds within the industry.
  • high hardness materials such as tool steels
  • known high throughput injection molds require extensive machining time and expensive machining equipment to form, and expensive and time consuming post-machining steps to relieve stresses and optimize material hardness.
  • FIG. 1 illustrates a schematic view of an injection molding machine constructed according to the disclosure
  • FIG. 2 illustrates one embodiment of a thin-walled part formed in the injection molding machine of FIG. 1 ;
  • FIG. 3 is a cavity pressure vs. time graph for the injection molding machine of FIG. 1 ;
  • FIG. 4 is a cross-sectional view of one embodiment of a mold of the injection molding machine of FIG. 1 ;
  • FIG. 5 is a perspective view of a feed system
  • FIGS. 6A and 6B are top and front views of a naturally balanced feed system
  • FIGS. 7A and 7B are top and front views of another naturally balanced feed system
  • FIG. 8 is a top view of an artificially balanced feed system that may be used in the injection molding machine of FIG. 1 ;
  • FIGS. 9A and 9B are top views of non-balanced feed systems that may be used in the injection molding machine of FIG. 1 .
  • Embodiments of the present invention generally relate to systems, machines, products, and methods of producing products by injection molding and more specifically to systems, products, and methods of producing products by low constant pressure injection molding.
  • melt pressure as used herein with respect to melt pressure of a thermoplastic material, means melt pressures in a vicinity of a nozzle of an injection molding machine of 6000 psi and lower.
  • substantially constant pressure as used herein with respect to a melt pressure of a thermoplastic material, means that deviations from a baseline melt pressure do not produce meaningful changes in physical properties of the thermoplastic material.
  • substantially constant pressure includes, but is not limited to, pressure variations for which viscosity of the melted thermoplastic material do not meaningfully change.
  • substantially constant in this respect includes deviations of approximately 30% from a baseline melt pressure.
  • a substantially constant pressure of approximately 4600 psi includes pressure fluctuations within the range of about 6000 psi (30% above 4600 psi) to about 3200 psi (30% below 4600 psi).
  • a melt pressure is considered substantially constant as long as the melt pressure fluctuates no more than 30% from the recited pressure.
  • Melt holder refers to the portion of an injection molding machine that contains molten plastic in fluid communication with the machine nozzle.
  • the melt holder is heated, such that a polymer may be prepared and held at a desired temperature.
  • the melt holder is connected to a power source, for example a hydraulic cylinder or electric servo motor, that is in communication with a central control unit, and can be controlled to advance a diaphragm to force molten plastic through the machine nozzle.
  • the molten material then flows through the runner system in to the mold cavity.
  • the melt holder may by cylindrical in cross section, or have alternative cross sections that will permit a diaphragm to force polymer under pressures that can range from as low as 100 psi to pressures 40,000 psi or higher through the machine nozzle.
  • the diaphragm may optionally be integrally connected to a reciprocating screw with flights designed to plasticize polymer material prior to injection.
  • FIG. 1 illustrates an exemplary low constant pressure injection molding apparatus 10 for producing thin-walled parts in high volumes (e.g., a class 101 or 102 injection mold, or an “ultra high productivity mold”).
  • the injection molding apparatus 10 generally includes an injection system 12 and a clamping system 14 .
  • a thermoplastic material may be introduced to the injection system 12 in the form of thermoplastic pellets 16 .
  • the thermoplastic pellets 16 may be placed into a hopper 18 , which feeds the thermoplastic pellets 16 into a heated barrel 20 of the injection system 12 .
  • the thermoplastic pellets 16 after being fed into the heated barrel 20 , may be driven to the end of the heated barrel 20 by a reciprocating screw 22 .
  • thermoplastic pellets 16 The heating of the heated barrel 20 and the compression of the thermoplastic pellets 16 by the reciprocating screw 22 causes the thermoplastic pellets 16 to melt, forming a molten thermoplastic material 24 .
  • the molten thermoplastic material is typically processed at a temperature of about 130° C. to about 410° C.
  • the reciprocating screw 22 forces the molten thermoplastic material 24 , toward a nozzle 26 to form a shot comprising thermoplastic material, which will be injected into a mold cavity 32 of a mold 28 .
  • the molten thermoplastic material 24 may be injected through a gate 30 , which directs the flow of the molten thermoplastic material 24 to the mold cavity 32 .
  • the mold cavity 32 is formed between first and second mold parts 25 , 27 of the mold 28 and the first and second mold parts 25 , 27 are held together under pressure by a press or clamping unit 34 .
  • the press or clamping unit 34 applies a clamping force in the range of approximately 1000 psi to approximately 6000 psi during the molding process to hold the first and second mold parts 25 , 27 together while the molten thermoplastic material 24 is injected into the mold cavity 32 .
  • the clamping system 14 may include a mold frame and a mold base, the mold frame and the mold base being formed from a material having a surface hardness of more than about 165 BHN and preferably less than 260 BHN, although materials having surface hardness BHN values of greater than 260 may be used as long as the material is easily machineable, as discussed further below.
  • the mold may comprise a single mold cavity or a plurality of mold cavities.
  • the plurality of mold cavities may comprise similar cavities or dissimilar cavities which will yield dissimilar parts.
  • the mold may also comprises grouped family of dissimilar cavities.
  • the reciprocating screw 22 stops traveling forward.
  • the molten thermoplastic material 24 takes the form of the mold cavity 32 and the molten thermoplastic material 24 cools inside the mold 28 until the thermoplastic material 24 solidifies.
  • the press 34 releases the first and second mold parts 25 , 27 , the first and second mold parts 25 , 27 are separated from one another, and the finished part may be ejected from the mold 28 .
  • the mold 28 may include a plurality of mold cavities 32 to increase overall production rates.
  • a controller 50 is communicatively connected with a sensor 52 and a screw control 36 .
  • the controller 50 may include a microprocessor, a memory, and one or more communication links.
  • the controller 50 may be connected to the sensor 52 and the screw control 36 via wired connections 54 , 56 , respectively.
  • the controller 50 may be connected to the sensor 52 and screw control 56 via a wireless connection, a mechanical connection, a hydraulic connection, a pneumatic connection, or any other type of communication connection known to those having ordinary skill in the art that will allow the controller 50 to communicate with both the sensor 52 and the screw control 36 .
  • the sensor 52 is a pressure sensor that measures (directly or indirectly) melt pressure of the molten thermoplastic material 24 in the nozzle 26 .
  • the sensor 52 generates an electrical signal that is transmitted to the controller 50 .
  • the controller 50 then commands the screw control 36 to advance the screw 22 at a rate that maintains a substantially constant melt pressure of the molten thermoplastic material 24 in the nozzle 26 .
  • the sensor 52 may directly measure the melt pressure, the sensor 52 may measure other characteristics of the molten thermoplastic material 24 , such as temperature, viscosity, flow rate, etc, that are indicative of melt pressure.
  • the senor 52 need not be located directly in the nozzle 26 , but rather the sensor 52 may be located at any location within the injection system 12 or mold 28 that is fluidly connected with the nozzle 26 .
  • the sensor 52 need not be in direct contact with the injected fluid and may alternatively be in dynamic communication with the fluid and able to sense the pressure of the fluid and/or other fluid characteristics. If the sensor 52 is not located within the nozzle 26 , appropriate correction factors may be applied to the measured characteristic to calculate the melt pressure in the nozzle 26 .
  • the sensor 52 need not be disposed at a location which is fluidly connected with the nozzle. Rather, the sensor could measure clamping force generated by the clamping system 14 at a mold parting line between the first and second mold parts 25 , 27 .
  • the controller 50 may maintain the pressure according to the input from sensor 52 .
  • a sensor may be located near the end of fill in the mold cavity. This sensor may provide an indication of when the mold front is approaching the end of fill in the cavity.
  • the sensor may sense pressure, temperature, optically, or other means of identifying the presence of the polymer. When pressure is measured by the sensor, this measure can be used to communicate with the central control unit to provide a target “packing pressure” for the molded component.
  • the signal generated by the sensor can be used to control the molding process, such that variations in material viscosity, mold temperatures, melt temperatures, and other variations influencing filling rate, can be adjusted for by the central control unit. These adjustments can be made immediately during the molding cycle, or corrections can be made in subsequent cycles.
  • sensor readings can be averaged over many cycles so as to achieve process consistency.
  • FIG. 1 Although an active, closed loop controller 50 is illustrated in FIG. 1 , other pressure regulating devices may be used instead of the closed loop controller 50 .
  • a pressure regulating valve (not shown) or a pressure relief valve (not shown) may replace the controller 50 to regulate the melt pressure of the molten thermoplastic material 24 .
  • the pressure regulating valve and pressure relief valve can prevent overpressurization of the mold 28 .
  • Another alternative mechanism for preventing overpressurization of the mold 28 is an alarm that is activated when an overpressurization condition is detected.
  • the molded part 100 is a thin-walled part. Molded parts are generally considered to be thin-walled when a length of a flow channel L divided by a thickness of the flow channel T is greater than 100 (i.e., L/T>100). In some injection molding industries, thin-walled parts may be defined as parts having an L/T>200, or an L/T>250. The length of the flow channel L is measured from a gate 102 to a flow channel end 104 . Thin-walled parts are especially prevalent in the consumer products industry.
  • Thin-walled parts present certain obstacles in injection molding. Molded parts are generally considered to be thin-walled when a length of a flow channel L divided by a thickness of the flow channel T is greater than 100 (i.e., L/T>100).
  • the L/T ratio may be calculated by integrating the T dimension over the length of the mold cavity 32 from a gate 102 to the end of the mold cavity 32 , and determining the longest length of flow from the gate 102 to the end of the mold cavity 32 . The L/T ratio can then be determined by dividing the longest length of flow by the average part thickness.
  • the thinness of the flow channel tends to cool the molten thermoplastic material before the material reaches the flow channel end 104 .
  • the thermoplastic material freezes off and no longer flows, which results in an incomplete part.
  • traditional injection molding machines inject the molten thermoplastic material at very high pressures, typically greater than 15,000 psi, so that the molten thermoplastic material rapidly fills the mold cavity before having a chance to cool and freeze off. This is one reason that manufacturers of the thermoplastic materials teach injecting at very high pressures.
  • Another reason traditional injection molding machines inject at high pressures is the increased shear, which increases flow characteristics, as discussed above. These very high injection pressures require the use of very hard materials to form the mold 28 and the feed system.
  • shear-thinning thermoplastics may be injected into the mold 28 at low, substantially constant, pressure without any significant adverse affects.
  • these materials include but are not limited to polymers and copolymers comprised of, polypropylene, polyethylene, thermoplastic elastomers, polyester, polystyrene, polycarbonate, poly(acrylonitrile-butadiene-styrene), poly(latic acid), polyhydroxyalkanoate, polyamides, polyacetals, ethylene-alpha olefin rubbers, and styrene-butadiene-stryene block copolymers.
  • thermoplastic material that advances through the mold from a gate to a farthest part of the mold cavity.
  • the thermoplastic material remains liquid and flowable at much lower temperatures and pressures than is otherwise believed to be possible in conventional high pressure injection molding systems.
  • thermoplastic resins together with their recommended operating pressure ranges are provided in the following chart:
  • FIG. 3 a typical pressure-time curve for a conventional high pressure injection molding process is illustrated by the dashed line 200 .
  • a pressure-time curve for the disclosed low constant pressure injection molding machine is illustrated by the solid line 210 .
  • melt pressure is rapidly increased to well over 15,000 psi and then held at a relatively high pressure, more than 15,000 psi, for a first period of time 220 .
  • the first period of time 220 is the fill time in which molten plastic material flows into the mold cavity.
  • the melt pressure is decreased and held at a lower, but still relatively high pressure, 10,000 psi or more, for a second period of time 230 .
  • the second period of time 230 is a packing time in which the melt pressure is maintained to ensure that all gaps in the mold cavity are back filled.
  • the mold cavity in a conventional high pressure injection molding system is filled from the end of the flow channel back to towards the gate.
  • plastic in various stages of solidification are packed upon one another, which may cause inconsistencies in the finished product, as discussed above.
  • the conventional packing of plastic in various stages of solidification results in some non-ideal material properties, for example, molded-in stresses, sink, and non-optimal optical properties.
  • the constant low pressure injection molding system injects the molten plastic material into the mold cavity at a substantially constant low pressure for a single time period 240 .
  • the injection pressure is less than 6,000 psi.
  • the molten thermoplastic material maintains a continuous melt front that advances through the flow channel from the gate towards the end of the flow channel.
  • the plastic material remains relatively uniform at any point along the flow channel, which results in a more uniform and consistent finished product.
  • the finished molded parts form crystalline structures that have better mechanical and optical properties than conventionally molded parts.
  • the skin layers of parts molded at low constant pressures exhibit different characteristics than skin layers of conventionally molded parts. As a result, the skin layers of parts molded under low constant pressure can have better optical properties than skin layers of conventionally molded parts.
  • the mold 28 illustrated in FIG. 1 may be formed of a material having a milling machining index of greater than 100%, a drilling machining index of greater than 100%, a wire EDM machining index of greater than 100%, a graphite sinker EDM machining index of greater than 200%, or a copper sinker EDM machining index of greater than 150%.
  • the machining indexes are based upon milling, drilling, wire EDM, and sinker EDM tests of various materials. The test methods for determining the machining indices are explained in more detail below. Examples of machining indexes for a sample of materials is compiled below in Table 1.
  • easily machineable materials having good thermal conductivity properties When forming the mold 28 of these easily machineable materials, it is also advantageous to select easily machineable materials having good thermal conductivity properties. Materials having thermal conductivities of more than 30 BTU/HR FT ° F. are particularly advantageous.
  • easily machineable materials having good thermal conductivities include, but are not limited to, Alcoa QC-10, Alcan Duramold 500, and Hokotol (available from Aleris). Materials with good thermal conductivity more efficiently transmit heat from the thermoplastic material out of the mold. As a result, more simple cooling systems may be used. Additionally, non-naturally balanced feed systems are also possible for use in the constant low pressure injection molding machines described herein.
  • Multi-cavity molds generally include a feed manifold 60 that directs molten thermoplastic material from the nozzle 26 to the individual mold cavities 32 .
  • the feed manifold 60 includes a sprue 62 , which directs the molten thermoplastic material into one or more runners or feed channels 64 .
  • Each runner may feed multiple mold cavities 32 .
  • the runners are heated to enhance flowability of the molten thermoplastic material. Because viscosity of the molten thermoplastic material is very sensitive to shear and pressure variations at high pressures (e.g., above 10,000 psi), conventional feed manifolds are naturally balanced to maintain uniform viscosity.
  • Naturally balanced feed manifolds are manifolds in which molten thermoplastic material travels an equal distance from the sprue to any mold cavity. Moreover, the cross-sectional shapes of each flow channel are identical, the number and type of turns are identical, and the temperatures of each flow channel are identical. Naturally balanced feed manifolds allow the mold cavities to be filled simultaneously so that each molded part has identical processing conditions and material properties. Naturally balanced feed manifolds are expensive to manufacture and limit mold designs somewhat.
  • FIG. 5 illustrates an example of a naturally balanced feed manifold 60 .
  • the naturally balanced feed manifold 60 includes a first flow path 70 from the sprue 62 to a first junction 72 where the first flow path 70 splits into second and third flow paths 74 , 76 , the second flow path terminating at a second gate 78 a and the third flow path 76 terminating at a third gate 78 b each gate serving an individual mold cavity (not shown in FIG. 5 ).
  • Molten thermoplastic material flowing from the sprue 62 to either the second gate 78 a or the third gate 78 b travels the same distance, experiences the same temperatures, and is subjected to the same cross-sectional flow areas. As a result, each mold cavity is filled simultaneously with molten thermoplastic material having identical physical properties.
  • FIGS. 6A and 6B illustrate the naturally balanced manifold 60 schematically.
  • the naturally balanced manifold 60 of FIGS. 6A and 6B is a multi-tier manifold.
  • Each flow path 74 , 76 has identical characteristics at identical locations along the flow path. For example, after the junction 72 , each flow path narrows at the same distance. Moreover, each flow path serves an identical number of mold cavities 32 .
  • Naturally balanced flow manifolds 60 are critical to high pressure injection molding machines to maintain identical plastic flow properties and to ensure uniform parts.
  • FIGS. 7A and 7B illustrate another naturally balanced manifold 60 .
  • the naturally balanced manifold 60 of FIGS. 7A and 7B is a single tier manifold.
  • FIGS. 8 , 9 A, and 9 B illustrate non-naturally balanced manifolds with FIG. 8 illustrating an artificially balanced manifold and FIGS. 9A and 9B illustrating non-balanced manifolds.
  • the low constant pressure injection molding machine disclosed herein allows artificially balanced manifolds, and even unbalanced manifolds, to be used because thermoplastic materials injected at low constant pressure are not as sensitive to pressure differences or shear differences due to flow channel characteristic differences.
  • the thermoplastic materials injected at low constant pressure retain nearly identical material and flow properties regardless of differences in flow channel length, cross-sectional area, or temperature.
  • mold cavities may be filed sequentially instead of simultaneously.
  • the artificially balanced manifold 160 of FIG. 8 includes a sprue 62 , a first flow channel 174 , and a second flow channel 176 .
  • the first flow channel 174 terminates at a first gate 178 a and the second flow channel 176 terminates at a second gate 178 b .
  • the first flow channel 174 is shorter than the second flow channel 178 in this embodiment.
  • the artificially balanced manifold 160 varies some other parameter of the flow channel (e.g., cross-sectional area or temperature) so that the material flowing through the manifold 160 provides balanced flow to each cavity, similar to a naturally balanced manifold. In other words, thermoplastic material flowing through the first flow channel 174 will have about equal melt pressure to thermoplastic material flowing through the second flow channel 176 .
  • feed manifolds can include flow channels of different lengths
  • an artificially balanced, or unbalanced, feed manifold can make much more efficient use of space.
  • the feed channels and corresponding heater band channels can be machined more efficiently.
  • naturally balanced feed manifolds are limited to molds having distinct, even numbers of mold cavities (e.g., 2, 4, 8, 16, 32, etc.).
  • Artificially balanced, and unbalanced, feed manifolds may be designed to deliver molten thermoplastic material to any number of mold cavities.
  • the artificially balanced feed manifold 160 may also be constructed of a material having high thermal conductivity to enhance heat transfer to the molten thermoplastic material in hot runners, thus enhancing flow of the thermoplastic material. More specifically, the artificially balanced feed manifold 160 may be constructed of the same material as the mold to further reduce material costs and enhance heat transfer within the entire system.
  • FIGS. 9A and 9B illustrate non-balanced manifolds 260 .
  • the non-balanced manifolds 260 may include an odd number of mold cavities 232 , and/or flow channels having different cross-sectional shapes, different number and type of turns, and/or the different temperatures. Moreover, the non-balanced manifolds 260 may feed mold cavities having different sizes, and or shapes, as illustrated in FIG. 9B .
  • the machineability index for each material was determined by measuring the spindle load needed to drill or mill a piece of the material with all other machine conditions (e.g., stock feed rate, spindle rpm, etc.) being held constant between the various materials.
  • Spindle load is reported as a ratio of the measured spindle load to the maximum spindle torque load of 75 ft-lb at 1400 rpm for the drilling or milling device.
  • the index percentage was calculated as a ratio between the spindle load for 1117 steel to the spindle load for the test material.
  • test milling or drilling machine was a Hass VF-3 Machining Center.
  • the EDM machineability index for the various materials were determined by measuring the time to burn an area (specifics below) into the various test metals.
  • the machineability index percentage was calculated as the ratio of the time to burn into 1117 steel to time required to burn the same area into the other test materials.
  • the disclosed low constant pressure injection molding machines advantageously employ molds constructed from easily machineable materials. As a result, the disclosed low constant pressure injection molding machines are less expensive and faster to produce. Additionally, the disclosed low constant pressure injection molding machines are capable of employing more flexible support structures and more adaptable delivery structures, such as wider platen widths, increased tie bar spacing, elimination of tie bars, lighter weight construction to facilitate faster movements, and non-naturally balanced feed systems. Thus, the disclosed low constant pressure injection molding machines may be modified to fit delivery needs and are more easily customizable for particular molded parts.
  • the terms “substantially,” “about,” and “approximately,” unless otherwise specified, may be utilized herein to represent the inherent degree of uncertainty that may be attributed to any quantitative comparison, value, measurement, or other representation. These terms are also utilized herein to represent the degree by which a quantitative representation may vary from a stated reference without resulting in a change in the basic function of the subject matter at issue. Unless otherwise defined herein, the terms “substantially,” “about,” and “approximately” mean the quantitative comparison, value, measurement, or other representation may fall within 20% of the stated reference.
  • the various embodiments of the products illustrated and described herein may be produced by a low constant pressure injection molding process. While particular reference has been made herein to products for containing consumer goods or consumer goods products themselves, it should be apparent that the low constant pressure injection molding method discussed herein may be suitable for use in conjunction with products for use in the consumer goods industry, the food service industry, the transportation industry, the medical industry, the toy industry, and the like. Moreover, one skilled in the art will recognize the teachings disclosed herein may be used in the construction of stack molds, multiple material molds including rotational and core back molds, in combination with in-mold decoration, insert molding, in mold assembly, and the like. Moreover, one skilled in the art will recognize the teachings disclosed herein may be used in the construction of stack molds, multiple material molds including rotational and core back molds, in combination with in-mold decoration, insert molding, in mold assembly, and the like.

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  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Mechanical Engineering (AREA)
  • Injection Moulding Of Plastics Or The Like (AREA)
  • Moulds For Moulding Plastics Or The Like (AREA)
US13/476,045 2011-05-20 2012-05-21 Apparatus and Method for Injection Molding at Low Constant Pressure Abandoned US20120294963A1 (en)

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US13/476,045 US20120294963A1 (en) 2011-05-20 2012-05-21 Apparatus and Method for Injection Molding at Low Constant Pressure
US13/601,307 US10076861B2 (en) 2011-05-20 2012-08-31 Apparatus for injection molding at low constant pressure
PCT/US2012/066095 WO2013176701A1 (en) 2012-05-21 2012-11-20 Method for operating a high productivity injection molding machine
CA2871847A CA2871847A1 (en) 2012-05-21 2012-11-20 Method for operating a high productivity injection molding machine
JP2015512617A JP2015520050A (ja) 2011-05-20 2012-11-20 高生産性射出成形機を作動する方法
AU2012381045A AU2012381045A1 (en) 2012-05-21 2012-11-20 Method for operating a high productivity injection molding machine
EP12805488.9A EP2852484B1 (en) 2012-05-21 2012-11-20 Method for operating a high productivity injection molding machine
MX2014014157A MX365814B (es) 2012-05-21 2012-11-20 Método para operar una máquina de moldeo por inyección de productividad alta..
IN9328DEN2014 IN2014DN09328A (pt) 2012-05-21 2012-11-20
BR112014028693A BR112014028693A2 (pt) 2011-05-20 2012-11-20 método para operação de uma máquina de moldagem por injeção de alta produção
KR1020147031619A KR20140144299A (ko) 2012-05-21 2012-11-20 고 생산성 사출 성형기의 작동 방법
CN201280073315.8A CN104321182A (zh) 2012-05-21 2012-11-20 用于操作高产注塑机的方法
US13/682,456 US20130221575A1 (en) 2012-02-24 2012-11-20 Method for Operating a High Productivity Injection Molding Machine
RU2014140421A RU2014140421A (ru) 2012-05-21 2012-11-20 Способ эксплуатации высокопроизводительного устройства для инжекционного формования
TW102102119A TW201402302A (zh) 2012-05-21 2013-01-18 操作一高產率射出成型機之方法
PH12014502589A PH12014502589A1 (en) 2011-05-20 2014-11-20 Method for operating a high productivity injection molding machine

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AU2012259036B2 (en) 2016-04-14

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