HOT-RUNNER ASSEMBLY WITH COMPACT ELECTRIC ACTUATOR
20230150179 ยท 2023-05-18
Assignee
Inventors
- Scott Greb (Washington Township, MI, US)
- Anton Joerg (Grossostheim, DE)
- Christian Striegel (Hainburg, DE)
Cpc classification
B29C2045/2824
PERFORMING OPERATIONS; TRANSPORTING
B29C45/2806
PERFORMING OPERATIONS; TRANSPORTING
B29C45/2737
PERFORMING OPERATIONS; TRANSPORTING
B29C45/7613
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/2865
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A hot-runner injection molding apparatus that facilitates use of actuators in a compact design includes a hot-runner manifold defining resin channels for conveying resin to nozzles that serve as conduits for introducing liquid resin into a mold cavity, a valve pin configured for linear movement along a longitudinal axis of the nozzle to control flow of liquid resin through the nozzle, and an actuator having a housing, wherein the valve pin is coupled to a drive shaft within the housing.
Claims
1. An injection molding apparatus, comprising: a hot-runner manifold having a resin channel for conveying a resin melt toward a mold cavity; a nozzle for conveying the resin melt to a mold cavity of a mold tool; a valve pin linearly movable along a longitudinal axis of the nozzle to control flow of the resin melt through the nozzle and into the mold cavity; and an electric actuator having a housing containing a stator, a rotor, and a transmission for converting rotary movement of the rotor into linear movement of a traveling drive shaft along a rotational axis of the rotor and within a cylindrical space defined by an inner boundary of the rotor and opposite ends of the rotor, wherein a head of the valve pin is directly or indirectly coupled to the drive shaft within the cylindrical space.
2. The apparatus of claim 1, wherein the electric actuator body has a top opening and the bore extends through the length of the drive shaft to allow manual adjustment of the valve pin position and a removal of the valve pin in both directions.
3. The apparatus of claim 1, wherein the electric actuator is mounted on a minimum of one support attached directly or indirectly to a support plate which is directly or indirectly mounted to a manifold.
4. The apparatus of claim 1, wherein the electric actuator body includes an integral cooling block having a fluid conduit for circulating a liquid coolant.
5. The apparatus of claim 3, wherein the support and or support plate is comprised of stainless steel.
6. The apparatus of claim 3, wherein the support and or support plate is comprised of titanium or other material having a thermal conductivity less than or equal to the thermal conductivity of titanium.
7. The apparatus of claim 2, wherein the bore extending through the drive shaft is at least partially internally threaded and the valve pin is directly or indirectly coupled to the drive shaft via an externally threaded valve pin nut threadingly engaging the internally threaded bore.
8. The apparatus of claim 7, wherein the valve pin nut has a tool-head engagement structure for manual positioning of the valve pin and valve pin nut with respect to the drive shaft.
9. The apparatus of claim 8, further comprising an externally threaded lock nut threadingly engaging the internally threaded bore and disposed adjacent a side of the valve pin nut opposite the valve pin.
10. The apparatus of claim 9, wherein the lock nut has a tool-head engagement structure for manual tightening of the lock nut against the valve pin nut.
11. The apparatus of claim 1, wherein the electric actuator is mounted on one or several supports attached directly or indirectly via a support plate to the manifold, and further comprises an anti-rotation part disposed between a bottom of the support plate or the manifold and the electric actuator and releasably attached to the bottom of the support plate or the surface of the manifold, the anti-rotation part having an aperture for passage of the valve pin, the aperture having a shape configured to engage a section of the valve pin having a non-circular profile to prevent rotation of the pin around the longitudinal axis of the nozzle.
12. The apparatus of claim 3, wherein the actuator is positioned on the support plate or the manifold to provide a gap between a surface of the actuator housing facing the hot-runner manifold and a surface of the support plate facing the actuator housing.
13. The apparatus of claim 1, wherein a contactless linear position sensor is located in the actuator housing and is configured to monitor position of the valve pin to facilitate precise control of resin flow to a mold cavity.
14. The apparatus of claim 13, wherein the contactless linear position sensor is an absolute position sensor.
15. The apparatus of claim 13, wherein the sensor is an inductive linear position sensor.
16. The apparatus of claim 13, wherein the sensor is a Hall effect linear position sensor.
17. The apparatus of claim 13, wherein the sensor is an optical sensor.
18. The apparatus of claim 13, wherein the sensor is a potentiometer.
19. An injection molding apparatus, comprising: a hot-runner manifold having a resin channel for conveying a resin melt toward a mold cavity; a nozzle for conveying the resin melt to a mold cavity of a mold tool; a valve pin linearly movable along a longitudinal axis of the nozzle to control flow of the resin melt through the nozzle and into the mold cavity; and an actuator having a housing containing an electric motor having an output drive shaft coupled to the valve pin, and an integral cooling block contained within the housing and having a fluid conduit for circulating a liquid coolant.
20. An injection molding apparatus, comprising: a hot-runner manifold having a resin channel for conveying a resin melt toward a mold cavity; a nozzle for conveying the resin melt to a mold cavity of a mold tool; a valve pin linearly movable along a longitudinal axis of the nozzle to control flow of the resin melt through the nozzle and into the mold cavity; an actuator having a housing containing an output drive shaft coupled to the valve pin; and an insulating support plate mounted directly on the hot-runner manifold, wherein the housing is positioned via separate or integrated support columns on the support plate which provides a thermal barrier between the surface of the housing facing the hot-runner manifold and a surface of the support plate facing the housing.
21. The apparatus of claim 20, wherein the insulating support and or support plate is made of stainless steel or titanium.
22. The apparatus of claim 20, wherein each of the support columns has a bore extending axially through a majority of a length of the column, the bore being threaded along at least a part of a length of the bore to allow a threaded fastener to be threaded into a minority of the length of the bore, whereby a void can be provided within the bore to reduce heat transfer along the column.
23. An injection molding apparatus, comprising: a hot-runner manifold having a resin channel for conveying a resin melt toward a mold cavity; a nozzle for conveying the resin melt to a mold cavity of a mold tool; a valve pin linearly movable along a longitudinal axis of the nozzle to control flow of the resin melt through the nozzle and into the mold cavity; an actuator having a housing; and a contactless linear position sensor in or adjacent the housing and configured to monitor a position of the valve pin to facilitate precise control of resin flow to a mold cavity.
24. The apparatus of claim 23, wherein the sensor is an inductive linear position sensor or a Hall effect linear position sensor.
25. The apparatus of claim 23, wherein the sensor is an optical sensor.
26. The apparatus of claim 23, wherein the sensor is potentiometer.
27. The apparatus of claim 1, wherein the valve pin is suspended within the height of the actuator.
28. The apparatus of claim 17, wherein the valve pin is directly or indirectly coupled to the drive shaft of the actuator within a volume radially inward of the rotor of the electric motor.
29. An injection molding apparatus, comprising: a hot-runner manifold having a resin channel for conveying a resin melt toward a mold cavity; a nozzle for conveying the resin melt to a mold cavity of a mold tool; a valve pin linearly movable along a longitudinal axis of the nozzle to control flow of the resin melt through the nozzle and into the mold cavity; and an electric actuator having a rotor and a linear drive, the valve directly or indirectly coupled to the drive within a volume radially inward of the rotor.
30. An injection molding apparatus, comprising: a hot-runner manifold having a resin channel for conveying a resin melt toward a mold cavity; a nozzle for conveying the resin melt to a mold cavity of a mold tool; a valve pin linearly movable along a longitudinal axis of the nozzle to control flow of the resin melt through the nozzle an into the mold cavity; and an electric actuator having a housing, a bore extending through the housing along the longitudinal axis, a linear driver having a threaded bore concentric with the longitudinal axis, and an externally threaded valve pin nut threaded into the bore and having a rim that engages a groove of the valve pin to secure the valve pin to the valve pin nut.
31. The actuator of claim 30, wherein the valve pin nut includes a tool-head engagement structure to allow manual adjustment of a position of the valve pin nut and valve pin.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0020] Shown in
[0021] The position and rate of movement of valve pins 36 are controlled by an actuator 100. Actuator 100 includes a body and/or housing for an electric motor 101 and converts rotational movement of the electric motor into linear movement (up and down in
[0022] Notably, the pin head 110 is coupled to valve pin nut 106, which is fixed within elongated internally threaded bore 104 of drive shaft 102, such that the head 110 of valve pin 36 is directly or indirectly coupled to the drive shaft within a cylindrical space defined by the interior radial boundaries of the rotor and opposite ends of the rotor.
[0023] Valve pin nut 106 can have a tool-head engagement structure 114 that can be engaged by a tool, such as an Allen wrench to allow manual adjustment of the position of valve pin nut 106 and pin 36. Similarly, lock nut 108 has a tool-head engagement structure and bore 116 to allow tightening of lock nut 108 against valve pin nut 106 using a tool such as an Allen wrench to keep the valve pin nut 106 from moving or rotating. In the illustrated embodiment, engagement structures 114 and 116 are hexagonal sockets. However, other shapes or tool-engagement means are possible. Top plate 64 can be provided with openings or bores 117 to allow access to tool engagement structure (e.g., sockets 114, 116) to facilitate manual adjustment of the valve pin position without removal of plate 64 or disassembly of hot-runner assembly 10. This arrangement can be employed with an electric, pneumatic or hydraulic actuator.
[0024] Electrical connectors 118, 120 are provided for powering and controlling the electric motor, and/or to power and receive signals from an encoder that tracks drive shaft position.
[0025] Actuator 100 can be provided with an integral cooling plate having a coolant inlet port 122 and a coolant outlet port 124 to allow a coolant (e.g., chilled water or oil) to be circulated through the body and/or housing of the actuator to protect the motor against degradation or failure caused by overheating. Integration of the cooling block into the actuator body also simplifies assembly and disassembly of an injection molding apparatus.
[0026] Actuator 100 can be supported on an insulating support plate 126 (see
[0027] When assembled, the upper end of valve pin 36 extends into bore 104 through openings in manifold 26, support plate 126 and the body or housing of actuator 100 to provide a vertically compact design for mold 10.
[0028] Optionally, an anti-rotation disc or guide 130 (
[0029] The procedure of securing anti-rotation part 130 to support plate 126 and engaging surfaces of part 130 with surfaces of pin 36 to prevent rotation of pin 36 is illustrated in
[0030] Manifold 26 and actuators 100 are located in a space generally bounded by a top mold plate 64 and an intermediate mold plate 66.
[0031] Assembly 10 can also include various lower support elements 68, dowels 70, and upper support elements 72 for facilitating proper alignment and spacing of the components of the assembly.
[0032] A pin seal 138 prevents liquid resin from leaking upwardly from channel 24 of manifold 26.
[0033] The disclosed apparatus allows adjustment of the valve pin using dedicated tools/wrenches etc. from the back side of the actuator (facing the mold back plate 64) (opposite valve pin or valve pin elongation side).
[0034] The disclosed apparatus can allow coupling and decoupling of the actuator axially to the valve pin (by screwing down the valve pin nut 106 while lifting the actuator straight up which doesn't interfere with adjacent actuators).
[0035] The valve pin can be suspended within the height of the actuator. In particular, the valve pin can be directly or indirectly coupled to the drive shaft of the actuator within a volume radially inward of the rotor of the electric motor to provide an extremely compact design that maximizes design flexibility and minimizes labor during assembly and disassembly of the injection molding apparatus.
[0036] The disclosed apparatus can also allow mounting of the actuator axially to the valve pin on a thermal insulation support plate in direct contact to the hot-runner manifold; wherein the support plate can have integrated or extra support columns 180 that can protrude along the actuator corners (
[0037] Shown in
[0038] The actuator 100 can be installed and coupled to the valve pin 36 axially, i.e., without moving the actuator laterally away from axis 105. This can be accomplished by first positioning the valve pin through the manifold and into the associated nozzle with an upper end of the valve pin projecting upwardly from the top of the manifold (i.e., the surface opposite the surface from which the nozzles extend). Thereafter, support plate 126 can be attached to the manifold (such as with screws) and anti-rotation disc can be positioned around valve pin 36 and secured to the support with bolts 132. Next, valve pin nut 106 can be positioned onto the head (top end) of valve pin 36. Actuator 100 is then positioned with the bore of drive shaft 110 in axial alignment with the valve pin. The tool engagement structure of valve pin nut 106 can then be accessed via the top opening 109 of actuator 100 with a tool to rotate valve pin nut 106 and thread nut 108 into the threaded bore 104 of drive shaft 102.
[0039] Alternatively, as shown in
[0040] As illustrated most clearly in
[0041] The use of a compact linear position sensor 160 within the body of actuator 100 is illustrated in
[0042] Shown in
[0043] The above description is intended to be illustrative, not restrictive. The scope of the invention should be determined with reference to the appended claims along with the full scope of equivalents. It is anticipated and intended that future developments will occur in the art, and that the disclosed devices, kits and methods will be incorporated into such future embodiments. Thus, the invention is capable of modification and variation and is limited only by the following claims.