IP Library › Granted Patent US 12,220,847
Granted Patent B2
US 12,220,847 · App. 17/950,739 · Granted Feb 11, 2025

Systems and methods for injection molding

Inventors: Shayne Hannemann (Beaverton, OR); Kimberly N. McConnell (Hamilton, OH); Justin A. Meyer (Hamilton, OH); Rick A. Pollard (Hamilton, OH)
Assignee: NIKE, Inc.
B29C44/3446B29C45/77B29C44/348B29C45/78B29C2945/76006B29C2945/7604B29C2945/76257B29C2945/76381B29K2105/04
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Quick Facts
Patent No.
US 12,220,847
App. No.
17/950,739
Granted
Feb 11, 2025
Kind
B2
Abstract

A foaming process and a method for operation of the foaming process are provided. The method includes flowing a molten polymeric material into a mold from an upstream device, receiving the molten polymeric material in a cavity of the mold, and maintaining a repeatable, uniform pressure profile as the molten polymeric material is delivered into the mold.

Claims (11)

1. An automated method for injection molding using an automated injection device that comprises a heating device, a temperature sensor, a screw, a barrel coupled to a nozzle, a pressure sensor, a closed-pressure sensing loop, a flow-rate control valve and a controller connected to the heating device, the temperature sensor, the pressure sensor, and the flow-rate control valve, the method comprising: continuously monitoring, by the controller, both a temperature and a pressure of a polymeric material in the barrel using signals received from the temperature sensor and the pressure sensor; implementing, by the controller, a condition indicator that dynamically adjusts multiple parameters based on real-time feedback, wherein the automated method performs the following: automatically adjusting, by the controller, and in response to a first temperature signal from the temperature sensor that is higher than a desired temperature, operation of the heating device to thereby decrease a temperature of a polymeric material in the barrel; automatically adjusting, by the controller, and in response to a second temperature signal from the temperature sensor that is lower than the desired temperature, operation of the screw to delay injection of the polymeric material to thereby increase the temperature of the polymeric material in the barrel; automatically adjusting, by the controller, a flow rate of the polymeric material through the nozzle using the closed-pressure sensing loop in response to real-time data from the pressure sensor to ensure consistent injection flow; determining, by the controller, that the polymeric material has reached the desired temperature as determined from a third temperature signal received from the temperature sensor, and generating a control signal to synchronize the injection process with the desired flow rate and temperature profile; and injecting the polymeric material at the desired temperature and optimal flow rate as determined by the controller from the injection device into a mold.

2. The automated method of claim 1 , wherein the heating device is coupled to the nozzle, such that operation of the heating device increases a temperature of the nozzle.

3. The automated method of claim 1 , wherein the barrel is configured as a reservoir for the polymeric material within the injecting device.

4. The automated method of claim 3 , further comprising initiating, by the controller, purging of the polymeric material stored in the barrel of the injecting device when the polymeric material has been stored in the barrel at a melt temperature beyond a threshold period of time or when the temperature of the polymeric material within the barrel exceeds the melt temperature.

5. The automated method of claim 1 , wherein adjusting the temperature of the polymeric material is performed in combination with adjusting the pressure of the polymeric material supplied through the injecting device to thereby maintain a desired pressure of the polymeric material supplied through the injecting device.

6. The automated method of claim 1 , wherein adjusting operation of the heating device comprises adjusting a power supplied to the heating device.

7. The automated method of claim 6 , further comprising continuing to heat the polymeric material for a set period of time, once the polymeric material has reached the desired temperature.

8. The automated method of claim 6 , further comprising adjusting, by the controller, and in response to the first temperature signal that is higher than the desired temperature, operation of the heating device to reduce the power of the heating device to thereby cool the polymeric material to the desired temperature.

9. The automated method of claim 6 , further comprising adjusting, by the controller, operation of the heating device in intervals of increasing and decreasing the power supplied to the heating device.

10. The automated method of claim 9 , wherein during the intervals the increasing and decreasing of the power occurs in successively smaller increments until the polymeric material stabilizes at the desired temperature.

11. The automated method of claim 1 , wherein the controller comprises instructions stored in a memory executable processor to operate a temperature and pressure control assembly that is configured to adjust the temperature of the polymeric material and to control the pressure in a nozzle in each of the injecting devices.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 8, 2022
From: HANNEMANN, SHAYNE
To: NIKE INC.
Reel/Frame 061690/0738 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 8, 2022
From: MCCONNELL, KIMBERLY NICHOLE; MEYER, JUSTIN ANDREW; POLLARD, RICK ALAN
To: IMFLUX, INC.
Reel/Frame 061690/0861 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 8, 2022
From: IMFLUX, INC.
To: NIKE INC.
Reel/Frame 061691/0034 →
Continuity (3)
Division 16687531 · Nov 18, 2019
Provisional Application 62770709 · Nov 21, 2018
Related Publication 20230019678A1 · Jan 19, 2023
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