IP Library Patent Application 17130196
Patent Application
App. No. 17/130,196

Disrupted Flow Through Injection Molding Flow Channel

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Quick Facts
Patent No.
US None
App. No.
17/130,196
Abstract

An injection molding apparatus ( 5 ) comprising an injection molding machine ( 15 ), one or more upstream channels ( 19 bfc, 40 dfc ) and one or more nozzle channels ( 42 a ), wherein a spring, coil, wire, rod or cylinder ( 800 ) configured in the form or shape of a spiral or helix is disposed within and extending axially through one or more of the upstream channels and the nozzle channel, the spring, coil, wire, rod or cylinder being adapted to guide flow of injection fluid flowing downstream through the channels in a disrupted or discontinuous manner.

Claims (47)

1 . An injection molding apparatus ( 5 ) comprising an injection molding machine ( 15 ) that generates an injection fluid ( 18 ), one or more upstream channels ( 19 bfc , 40 dfc , 40 mc ) having a longitudinal flow axis (A 2 , A 3 ) receiving the injection fluid ( 18 ) from the injection molding machine ( 15 ) at an upstream end and routing the injection fluid downstream toward a downstream end and one or more nozzle channels ( 42 a ), each nozzle channel ( 42 a ) having a longitudinal flow axis (A 1 ) formed in an associated nozzle that receives the injection fluid from the one or more upstream channels ( 19 bfc , 40 dfc ) at an upstream end and route the injection fluid downstream toward a downstream end,

wherein a spring, coil, wire, rod or cylinder ( 800 ) configured in the form or shape of a spiral or helix is disposed within and extends axially through one or more of the upstream channels ( 19 bfc , 40 dfc , 40 mc ) and the nozzle channel ( 42 a ), the spring, coil, wire, rod or cylinder having an axial length (AL, DCL) and a right handed ( 800 r ) or left handed ( 800 l ) spiral or helix;

wherein the apparatus further comprises an actuator ( 940 ) interconnected to a valve pin ( 1040 ) comprised of a rod or shaft having a circumferential surface ( 1040 cs , OS), the actuator being controllable to drive the valve pin upstream and downstream through the nozzle channel ( 42 a ); and

claims wherein the spiral spring, coil, wire, rod or cylinder has an axial aperture (AXA) through which the valve pin ( 1040 ) is disposed, the valve pin having a circumferential surface ( 1040 cs , OS) that is smooth or has a discontinuity ( 11 , 13 , 115 , 17 , 19 , 21 , 23 , 25 , 800 sgr , 800 sgl ) formed within the outer circumferential surface ( 1040 cs , OS) that interacts with injection fluid flowing past or along the outer circumferential surface ( 1040 cs , OS) to cause the flowing injection fluid to flow in a turbulent, disrupted or mixing manner.

2 . (canceled)

3 . An apparatus according to claim 1 wherein the spiral or helix shaped spring, coil, wire, rod or cylinder is circular ( 800 cs ), oval, square, triangular, rectangular or other multi-planar or multi-linear sided ( 800 fs ) in cross section.

4 . An apparatus according to claim 1 wherein the spiral or helix shaped spring, coil, wire, rod or cylinder has one or more selected pitches (P) extending over one or more selected portions of the axial length.

5 . (canceled)

6 . An apparatus according to claim 1 wherein the spiral or helix shaped spring, coil, wire, rod or cylinder has one or more portions extending along different portions of the axial length of the spring that have inside diameters (IDl 1 u , IDs 1 u , IDs 1 , IDl, IDl 2 d , IDs 2 d ) that are greater than, lesser than or different from each other.

7 . An apparatus according to claim 1 wherein the spiral or helix shaped spring, coil, wire, rod or cylinder has one or more portions extending along different portions of the axial length of the spring that have outside diameters (ODs 1 , ODl 1 , ODs 2 ) that are greater than, lesser than or different from each other.

8 . An apparatus according to claim 1 wherein the spiral or helix shaped spring, coil, wire, rod or cylinder ( 800 ) is resiliently compressible and expandable at least under force (IP, RP) exerted by the injection fluid injected into and through the one or more upstream channels and nozzle channel by the injection molding machine.

9 . An apparatus according to claim 1 wherein the valve pin is controllably rotatable around an axis of the valve pin.

10 . An apparatus according to claim 1 wherein the valve pin has an axial length and a maximum cross sectional diameter at at least a selected position along the axial length of the valve pin and wherein the spiral or helix shaped spring, coil, wire, rod or cylinder has an inside helix diameter (ID), an inside helix surface ( 800 is ), an outside helix diameter (OD) and an outside helix surface ( 800 os ), the inside helix diameter (ID) of the spring, coil, wire or cylinder being selected such that the inside helix surface ( 800 is ) contacts or engages the outer circumferential surface ( 1040 s ) of the valve pin ( 1040 ) at at least the selected position along the axial length of the valve pin that has the maximum cross sectional diameter (PD).

11 . An apparatus according to claim 1 wherein the one or more upstream channels ( 19 bfc , 40 dfc ) and the nozzle channel ( 42 a ) each have an inside channel surface ( 19 bs , 40 dfcs , 22 s ), the spiral or helix shaped spring, coil, wire, rod or cylinder having an inside helix diameter (ID), an inside helix surface ( 800 is ), an outside helix diameter (OD) and an outside helix surface ( 800 os ), the spring, coil, wire, rod or cylinder being adapted such that the outside helix surface ( 800 os ) engages or contacts the inside channel surface ( 19 bs , 19 bfcis , 40 dfcis , 22 s ) of one or more of the upstream channels ( 19 bfc , 40 dfc ) and the nozzle channel ( 42 a ).

12 . An apparatus according to claim 1 wherein the one or more upstream channels and the nozzle channel each have an inside channel surface ( 42 as , 40 mcis , 40 dfcis ), the spiral or helix shaped spring, coil, wire, rod or cylinder having an inside helix diameter (ID), an inside helix surface ( 800 is ), an outside helix diameter (OD) and an outside helix surface ( 800 os ), the spring, coil, wire, rod or cylinder being adapted such that the outside helix surface ( 800 os ) engages or contacts the inside channel surface ( 42 as , 40 mcis , 40 dfcis ) of one or more of the upstream channels ( 40 dfc , 19 bfc ) and the nozzle channel ( 42 a ).

13 . An apparatus according to claim 1 wherein the spiral or helix shaped spring, coil, wire, rod or cylinder has an upstream end ( 800 ue ), the nozzle channel ( 42 a ) or the manifold channel ( 40 mc ) having a stop ( 40 r ) or an inside surface ( 40 mcs ) adapted to engage and choke ( 40 mcd ) or stop ( 40 r ) the upstream end ( 800 ue , 800 ued )) of the spring from travelling upstream.

14 . An apparatus according to claim 1 wherein the spiral or helix shaped spring, coil, wire, rod or cylinder has a downstream end ( 800 de ), the nozzle channel having a stop ( 42 ir ) or an inside surface ( 42 ais ) adapted to engage ( 42 ir ) and choke ( 42 aded , 800 deod ) or stop ( 42 ir ) the downstream end ( 800 de ) of the spring from travelling downstream.

15 . A method of injecting and disrupting flow of an injection fluid to a mold cavity comprising injecting the injection fluid to the mold cavity using an apparatus according to claim 1 .

16 .- 23 . (canceled)

24 . An injection molding apparatus ( 5 ) comprising an injection molding machine ( 15 ) that generates an injection fluid ( 18 ), one or more upstream channels ( 19 bfc , 40 dfc ) having a longitudinal flow axis (A 2 , A 3 ) receiving the injection fluid ( 18 ) from the injection molding machine ( 15 ) at an upstream end and routing the injection fluid downstream toward a downstream end and one or more nozzle channels ( 42 a ), each nozzle channel having a longitudinal flow axis (A 1 ) formed in an associated nozzle that receives the injection fluid from the one or more upstream channels at an upstream end and route the injection fluid downstream toward a downstream end,

wherein a spring, coil, wire, rod or cylinder ( 800 ) configured in the form or shape of a spiral or helix is disposed within and extending axially through one or more of the upstream channels and the nozzle channel, the spring, coil, wire, rod or cylinder being adapted to guide flow of injection fluid flowing downstream through the channels in a disrupted or discontinuous manner,

wherein the spring, coil, wire, rod or cylinder ( 800 ) is resiliently compressible and expandable at least under force exerted by the injection fluid injected into and through the one or more upstream channels and nozzle channel by the injection molding machine.

25 . (canceled)

26 . An apparatus according to claim 24 further comprise an actuator ( 940 ) interconnected to a valve pin ( 1040 ) comprised of a rod or shaft having an outer circumferential surface ( 1040 cs ), the actuator being controllable to drive the valve pin upstream and downstream through the nozzle channel ( 42 a ).

27 . An apparatus according to claim 24 wherein the valve pin ( 107 , 127 , 147 , 167 , 187 , 207 , 227 , 247 , 1040 ) comprises a rod or shaft having an outer circumferential surface ( 1040 cs , OS) that has one or more of a groove, recess, relieved portion, bore or discontinuity ( 11 , 13 , 115 , 17 , 19 , 21 , 23 , 25 , 800 sgr , 800 sgl ) formed within the outer circumferential surface that interacts with injection fluid flowing past or along the outer circumferential surface to cause the flowing injection fluid to flow in a turbulent, disrupted or mixing manner.

28 . An apparatus according to claim 24 wherein the valve pin is controllably rotatable around an axis of the valve pin.

29 . An apparatus according to claim 24 wherein the valve pin has an axial length and a maximum cross sectional diameter at at least a selected position along the axial length of the valve pin and wherein the spiral or helix shaped spring, coil, wire, rod or cylinder has an inside helix diameter, an inside helix surface, an outside helix diameter and an outside helix surface, the inside helix diameter of the spring, coil, wire or cylinder being selected such that the inside helix surface contacts or engages the outer circumferential surface of the valve pin at at least the selected position along the axial length of the valve pin that has the maximum cross sectional diameter.

30 . An apparatus according to claim 24 wherein the one or more upstream channels ( 19 bfc , 40 dfc ) and the nozzle channel ( 42 a ) each have an inside channel surface ( 19 dfcis , 40 dfcs , 40 mcis , 22 s ), the spiral or helix shaped spring, coil, wire, rod or cylinder having an inside helix diameter (ID), an inside helix surface ( 800 is ), an outside helix diameter (OD) and an outside helix surface ( 800 os ), the spring, coil, wire, rod or cylinder being adapted such that the outside helix surface ( 800 os ) engages or contacts the inside channel surface ( 19 bs , 40 dfcs , 40 mcis , 22 s ) of one or more of the upstream channels and the nozzle channel.

31 . An apparatus according to claim 24 wherein the one or more upstream channels and the nozzle channel each have an inside channel surface, the spiral or helix shaped spring, coil, wire, rod or cylinder having an inside helix diameter, an inside helix surface, an outside helix diameter and an outside helix surface, the spring, coil, wire, rod or cylinder that are typically adapted such that the outside helix surface engages or contacts the inside channel surface of one or more of the upstream channels and the nozzle channel.

32 . (canceled)

33 . (canceled)

34 . An injection molding apparatus ( 5 ) comprising an injection molding machine ( 15 ) that generates an injection fluid ( 18 ), one or more upstream channels ( 19 bfc , 40 dfc , 40 mc ) having a longitudinal flow axis (A 2 , A 3 ) receiving the injection fluid ( 18 ) from the injection molding machine ( 15 ) at an upstream end and routing the injection fluid downstream toward a downstream end and one or more nozzle channels ( 42 a ), each nozzle channel ( 42 a ) having a longitudinal flow axis (A 1 ) formed in an associated nozzle that receives the injection fluid from the one or more upstream channels ( 19 bfc , 40 dfc ) at an upstream end and route the injection fluid downstream toward a downstream end,

wherein a spring, coil, wire, rod or cylinder ( 800 ) configured in the form or shape of a spiral or helix is disposed within and extends axially through one or more of the upstream channels ( 19 bfc , 40 dfc , 40 mc ) and the nozzle channel ( 42 a ), the spring, coil, wire, rod or cylinder having an axial length (AL, DCL) and a right handed ( 800 r ) or left handed ( 800 l ) spiral or helix;

wherein the apparatus further comprises an actuator ( 940 ) interconnected to a valve pin ( 1040 ) comprised of a rod or shaft having a circumferential surface ( 1040 cs , OS), the actuator being controllable to drive the valve pin upstream and downstream through the nozzle channel ( 42 a ); and

wherein the valve pin has an axial length and a maximum cross sectional diameter at at least a selected position along the axial length of the valve pin and wherein the spiral or helix shaped spring, coil, wire, rod or cylinder has an inside helix diameter (ID), an inside helix surface ( 800 is ), an outside helix diameter (OD) and an outside helix surface ( 800 os ), the inside helix diameter (ID) of the spring, coil, wire or cylinder being selected such that the inside helix surface ( 800 is ) contacts or engages the outer circumferential surface ( 1040 s ) of the valve pin ( 1040 ) at at least the selected position along the axial length of the valve pin that has the maximum cross sectional diameter (PD).

35 . An apparatus according to claim 34 wherein the spring, coil, wire, rod or cylinder is circular ( 800 cs ), oval, square, triangular, rectangular or other multi-planar or multi-linear sided ( 800 fs ) in cross section.

36 . An apparatus according to claim 34 wherein the spring, coil, wire, rod or cylinder has one or more selected pitches (P) extending over one or more selected portions of the axial length.

37 . An apparatus according to claim 34 wherein the spiral spring, coil, wire, rod or cylinder has an axial aperture (AXA) through which the valve pin ( 1040 ) is disposed, the valve pin having a circumferential surface ( 1040 cs , OS) that is smooth or has a discontinuity ( 11 , 13 , 115 , 17 , 19 , 21 , 23 , 25 , 800 sgr , 800 sgl ) formed within the outer circumferential surface ( 1040 cs , OS) that interacts with injection fluid flowing past or along the outer circumferential surface ( 1040 cs , OS) to cause the flowing injection fluid to flow in a turbulent, disrupted or mixing manner.

38 . An apparatus according to claim 34 wherein the spiral spring, coil, wire, rod or cylinder has one or more portions extending along different portions of the axial length of the spring that have inside diameters (IDl 1 u , IDs 1 u , IDs 1 , IDl, IDl 2 d , IDs 2 d ) that are greater than, lesser than or different from each other.

39 . An apparatus according to claim 34 wherein the spiral spring, coil, wire, rod or cylinder has one or more portions extending along different portions of the axial length of the spring that have outside diameters (ODs 1 , ODI 1 , ODs 2 ) that are greater than, lesser than or different from each other.

40 . An apparatus according to claim 34 wherein the spring, coil, wire, rod or cylinder ( 800 ) is resiliently compressible and expandable at least under force (IP, RP) exerted by the injection fluid injected into and through the one or more upstream channels and nozzle channel by the injection molding machine.

41 . An apparatus according to claim 34 wherein the valve pin is controllably rotatable around an axis of the valve pin.

42 . An apparatus according to claim 34 the one or more upstream channels ( 19 bfc , 40 dfc ) and the nozzle channel ( 42 a ) each have an inside channel surface ( 19 bs , 40 dfcs , 22 s ), the spiral or helix shaped spring, coil, wire, rod or cylinder having an inside helix diameter (ID), an inside helix surface ( 800 is ), an outside helix diameter (OD) and an outside helix surface ( 800 os ), the spring, coil, wire, rod or cylinder being adapted such that the outside helix surface ( 800 os ) engages or contacts the inside channel surface ( 19 bs , 19 bfcis , 40 dfcis , 22 s ) of one or more of the upstream channels ( 19 bfc , 40 dfc ) and the nozzle channel ( 42 a ).

43 . An apparatus according to claim 34 wherein the one or more upstream channels and the nozzle channel each have an inside channel surface ( 42 as , 40 mcis , 40 dfcis ), the spiral or helix shaped spring, coil, wire, rod or cylinder having an inside helix diameter (ID), an inside helix surface ( 800 is ), an outside helix diameter (OD) and an outside helix surface ( 800 os ), the spring, coil, wire, rod or cylinder being adapted such that the outside helix surface ( 800 os ) engages or contacts the inside channel surface ( 42 as , 40 mcis , 40 dfcis ) of one or more of the upstream channels ( 40 dfc , 19 bfc ) and the nozzle channel ( 42 a ).

44 . An apparatus according to claim 34 wherein the spring, coil, wire, rod or cylinder has an upstream end ( 800 ue ), the nozzle channel ( 42 a ) or the manifold channel ( 40 mc ) having a stop ( 40 r ) or an inside surface ( 40 mcs ) adapted to engage and choke ( 40 mcd ) or stop ( 40 r ) the upstream end ( 800 ue , 800 ued )) of the spring from travelling upstream.

45 . An apparatus according to claim 34 wherein the spring, coil, wire, rod or cylinder has a downstream end ( 800 de ), the nozzle channel having a stop ( 42 ir ) or an inside surface ( 42 ais ) adapted to engage ( 42 ir ) and choke ( 42 aded , 800 deod ) or stop ( 42 ir ) the downstream end ( 800 de ) of the spring from travelling downstream.

46 . A method of injecting and disrupting flow of an injection fluid to a mold cavity comprising injecting the injection fluid to the mold cavity using an apparatus according to claim 34 .

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Jan 31, 2025
From: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
To: BARNES GROUP INC.; SYNVENTIVE MOLDING SOLUTIONS, INC.
Reel/Frame 070078/0168 →
NOTICE OF GRANT OF SECURITY INTEREST IN PATENTS Recorded Sep 19, 2023
From: BARNES GROUP INC.; SYNVENTIVE MOLDING SOLUTIONS, INC.
To: BANK OF AMERICA, N.A., AS COLLATERAL AGENT
Reel/Frame 064950/0142 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 21, 2021
From: GALATI, VITO; LOGRASSO, SALVATORE A
To: SYNVENTIVE MOLDING SOLUTIONS, INC.
Reel/Frame 057861/0711 →