IP Library Granted Patent US 10,987,842
Granted Patent B2
US 10,987,842 · App. 15/570,761 · Granted Apr 27, 2021

Determining and visualizing process parameter values in an injection moulding process

Inventors: Holger Mensler (Fischbachau, DE); Josef Maertl (Goldach, DE)
Assignee: BTMT GmbH
B29C45/7693B29C45/76B29C45/766B29C45/77B29C2945/76006B29C2945/76083B29C2945/76187B29C2945/76257B29C2945/76381B29C2945/76598B29C2945/76765B29C2945/76859B29C2945/76936
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Quick Facts
Patent No.
US 10,987,842
App. No.
15/570,761
Granted
Apr 27, 2021
Kind
B2
Abstract

The invention describes a method of determining and visualizing process parameter values of an injection moulding process, which method comprises the steps of determining geometric data of the injection mould ( 1 F) and/or of a form part ( 1, 1′, 1″ ) to be manufactured in the injection mould ( 1 F), carrying out an injection moulding process using the injection mould ( 1 F) and recording measurement values as a function of the injection time and/or an actuator position (s), determining, as process parameter values on the basis of the measurement values and geometry data of the injection mould ( 1 F), a flow front position inside the injection mould ( 1 F) or the form part ( 1′, 1″ ) as a function of the injection time and/or an actuator position. The invention further describes a corresponding process parameter value determining apparatus ( 20 ) and an injection mould arrangement ( 10 ) with such a process parameter value determining arrangement ( 20 ).

Claims (41)

1. A method of determining and visualizing process parameter values of an injection moulding process, the method comprising:

determining geometric data of the injection mould and/or of a form part to be manufactured in the injection mould,

carrying out an injection moulding process using the injection mould and recording measurement values as a function of the injection time and/or an actuator position,

determining, as process parameter values on the basis of the measurement values and geometry data of the injection mould, a flow front position inside a mould cavity of the injection mould or the form part as a function of the injection time and/or an actuator position and, optionally, a flow front rate as a function of the flow front position, the flow front position being a set of position specifications that define where a melt front or the flow front is within the mould cavity,

optionally determining further process parameter values as a function of the injection time and/or the actuator position and/or the flow front position, and

showing at least part of the determined process parameter values as a function of the injection time and/or the actuator position and/or flow front position in a display arrangement.

2. The method according to claim 1 , wherein at least the flow front position is shown in the display arrangement, inside a virtual injection mould and/or inside a virtual form part as a function of the injection time and/or an actuator position.

3. The method according to claim 1 , wherein the flow front rate and/or at least one of the further process parameter values are shown inside a virtual injection mould and/or inside a virtual form part as a function of the flow front position.

4. The method according to claim 1 , wherein the further process parameter values comprise process parameter values including at least one of the following rheological values:

shear rate;

melt viscosity; and

wall shear stress.

5. The method according to claim 1 , wherein further process parameter values are shown as a function of the injection time and/or actuator position and/or flow front position.

6. The method according to claim 1 , wherein the measurement values are determined at measurement positions on the outside or on the inside of the injection mould.

7. The method according to claim 1 , wherein the measurement values comprise X-ray projection values.

8. The method according to claim 1 , wherein the step of determining a flow front position and/or a flow front rate in the injection mould as well as the further process parameter values, optionally, on the basis of the measurement values and the geometry data of the injection mould comprise the following

determining a virtual part-specific pressure curve of an injection moulding process on the basis of the geometric data,

determining a part-specific event pattern on the basis of the virtual part-specific pressure curve, whereby the part-specific event pattern comprises a plurality of unique virtual events linked to characteristic event locations of the part geometry, to each of which is assigned at least one relative time information and/or virtual actuator position as well as at least one position datum, which defines a position of the melt front of the injection moulding material in the injection mould,

carrying out an injection moulding process using the injection mould and determining a measured pressure curve during the injection moulding process,

determining a measurement event pattern on the basis of the measured pressure curve, wherein the measured pressure curve comprises a plurality of unique measurement events, to each of which is assigned at least one time information and/or actuator position,

assigning virtual events of the part-specific event pattern to measurement events of the measurement event pattern,

deriving process parameter values on the basis of the position data, time information and/or actuator positions assigned to the virtual events and from the measurement events that were matched to these virtual events, and

deriving process parameter values on the basis of the position data assigned to the virtual events and on the basis of the time information and/or actuator positions assigned to the measurement events that were matched to these virtual events.

9. The method according to claim 8 , wherein, in the case of a variable volumetric flow during the injection moulding procedure, a measured pressure curve determined therein is converted to a time-corrected measurement pressure curve, on the basis of which the measurement event pattern is determined.

10. The method according to claim 8 , wherein the virtual events of the characteristic event pattern are determined on the basis of the temporal change of the slope of the virtual part-specific pressure curve and/or wherein the measurement events of the measurement event pattern are determined on the basis of the temporal change of the slope of the measurement pressure curve.

11. The method of controlling an injection moulding arrangement, wherein,

using a method according to claim 1 , for a first injection moulding procedure with an injection mould, at least the flow front position and the flow front rate, optionally, inside the injection mould or the form part, as well as other optional process parameter values in the injection mould are determined as a function of the injection time and/or actuator position and shown at least in part in a display arrangement,

and the option of varying a process control parameter function by using the displayed flow front position and/or flow front rate and/or the further process parameter values is proffered,

and upon receiving a control signal, the process control parameter function is used in a control unit of the injection moulding arrangement for a further injection moulding procedure with that injection mould.

12. The method according to claim 11 , wherein, with the aid of a user interface and using the display arrangement, at least one position inside the injection mould or the form part is marked, and a flow front rate and/or a further process parameter value and/or a process control parameter value is linked to that position.

13. A process parameter value determining arrangement for determining and visualizing process parameter values of an injection moulding procedure inside an injection mould, comprising

a first interface for determining geometry data of the injection mould and/or a form part to be manufactured in the injection mould,

a second interface to acquire measurement values as a function of injection time and/or actuator position during an injection moulding procedure of an injection moulding arrangement using that injection mould,

an analysis unit adapted to determine a flow front position inside a mould cavity of the injection mould or form part as a function of injection time and/or actuator position and, optionally, a flow front rate as a function of the flow front position as process parameter values on the basis of the measurement values and the geometry data of the injection mould, the flow front position being a set of position specifications that define where a melt front or the flow front is within the mould cavity, and

a display control arrangement for controlling a display arrangement to visualize at least part of the determined process parameter values as a function of injection time and/or actuator position and/or flow front position in the display arrangement.

14. A control arrangement for an injection moulding arrangement, comprising a process parameter value determining arrangement according to claim 13 , to determine at least a number of process parameter values for a first injection moulding process with an injection mould, the flow front position and/or the flow front rate inside the injection mould or the form part as well as optional further process parameter values in the injection mould as a function of injection time and/or actuator position and to show these at least in part in a display arrangement, whereby the control arrangement is realised to proffer the option of varying a process control parameter function by using the displayed flow front position and/or flow front rate and/or the further process parameter values, and upon receiving a control signal, the process control parameter function is used in a control unit of the injection moulding arrangement for a further injection moulding procedure with that injection mould.

15. An injection moulding arrangement comprising an injection nozzle, an actuator to inject injection material from the nozzle into an injection mould connected to the injection moulding arrangement, and a control arrangement to control the actuator, wherein the injection moulding arrangement comprises a process parameter value determining arrangement according to claim 13 .

16. An injection moulding arrangement comprising an injection nozzle, an actuator to inject injection material from the nozzle into an injection mould connected to the injection moulding arrangement, and a control arrangement to control the actuator according to claim 14 .

17. The method according to claim 2 , wherein at least the flow front position is shown in the display arrangement dynamically inside the virtual injection mould and/or inside the virtual form part as the function of the injection time and/or the actuator position.

18. The method according to claim 3 , wherein the flow front rate and/or at least one of the further process parameter values are shown inside the virtual injection mould and/or inside the virtual form part as the function of the flow front position, as colour-coded or greyscale-coded values.

19. The method according to claim 6 , wherein the measurement values comprise pressure values and/or temperature values.

Assignments (3)
CHANGE OF NAME Recorded Mar 5, 2021
From: BT BAYERN TREUHAND MANAGEMENT & TECHNOLOGIE GMBH
To: BTMT GMBH
Reel/Frame 055517/0675 →
CHANGE OF NAME Recorded Feb 27, 2019
From: BT BAYERN TREUHAND MANAGEMENT & TECHNOLOGIE AG
To: BT BAYERN TREUHAND MANAGEMENT & TECHNOLOGIE GMBH
Reel/Frame 048449/0815 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 31, 2017
From: MENSLER, HOLGER; MAERTL, JOSEF
To: BT BAYERN TREUHAND MANAGEMENT & TECHNOLOGIE AG
Reel/Frame 043987/0725 →
Priority Claims (1)
DE 10 2015 107 025.1 · May 6, 2015 · national
Continuity (1)
Related Publication 20180117817A1 · May 3, 2018
Cited By (1)
US 12,296,521