HOT RUNNER PROCESS CONTROLLER
20220193970 · 2022-06-23
Assignee
Inventors
- Christian Striegel (Hainburg, DE)
- Anton Joerg (Grossostheim, DE)
- Scott Greb (Washington Township, MI, US)
- Thomas Braun (Hof, DE)
Cpc classification
B29C45/27
PERFORMING OPERATIONS; TRANSPORTING
B29C45/76
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/7606
PERFORMING OPERATIONS; TRANSPORTING
B29C45/77
PERFORMING OPERATIONS; TRANSPORTING
B29C45/2737
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C45/27
PERFORMING OPERATIONS; TRANSPORTING
B29C45/77
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A hot runner process controller configured to monitor the status and operation of a hot runner system to autonomously generate information to improve the quality of injection molding process of a hot runner system having an inlet nozzle, one or more manifolds and one or more nozzles with actuator or without actuator, and one or more heating elements, the hot runner process controller is self-operating, and independent from the injection molding machine, includes: one or more sensors located on, in or at the hot runner system to detect the status and/or the operation of the hot runner system, and a processing unit and a memory. The processing unit is connected to the one or more sensors, wherein the memory stores data and program codes. The processing unit is configured to load and execute the program code to compare sensor information with the stored data and to determine if the hot runner system is in an operable status, and in case the hot runner system is in an operable status, configured to generate status information to activate the one or more heating elements and/or the one or more actuators enabling a production operation of the injection molding machine. In case the hot runner system is not in an operable status, configured to generate status information to deactivate the one or more heating elements and/or close or deactivate the one or more actuators disabling a production operation of the injection molding machine.
Claims
1. A hot runner process controller configured to monitor the status and operation of a hot runner system to autonomously generate information to improve the quality of an injection molding process, the hot runner system comprising an inlet nozzle, one or more manifolds and one or more nozzles with actuator or without actuator, and one or more heating elements, the hot runner process controller being self-operating, and independent from an injection molding machine, comprising: one or more sensors located on, in or at the hot runner system to detect the status and/or the operation of the hot runner system; a processing unit and a memory, wherein the processing unit is connected to the one or more sensors, wherein the memory is configured to store data and program code, wherein the processing unit is configured to load and execute the program code to compare sensor information with the stored data and to determine if the hot runner system is in an operable status, and, in case the hot runner system is in an operable status, generate status information to activate the one or more heating elements and/or the one or more actuators enabling a production operation of the injection molding machine; and in case the hot runner system is not in an operable status, configured to generate status information to deactivate the one or more heating elements and/or close or deactivate the one or more actuators disabling a production operation of the injection molding machine.
2. The hot runner process controller according to claim 1, wherein the sensors comprise at least one of a temperature sensor to detect a temperature of one or more components of the hot runner system or of a cutout within the components of the hot runner system or within a flow cannel of the hot runner; a humidity sensor to detect a humidity surrounding the hot runner system; a flow sensor to detect flow of fluids or melt; a pressure sensor to detect pressure in fluids or melt; a leak sensor detecting a leak in fluid lines and/or areas with possible plastic leakage and/or the inlet nozzle and/or in the one or more manifolds, the one or more hot runner nozzles and/or actuators and/or joints to each other; a bending sensor attached to the hot runner system to detect deformation; a vibration sensor to detect a movement of the hot runner system; an acoustic sensor to detect a sound of an operations with respect to the hot runner system; a gyro-sensor to detect a movement of the hot runner system; a potentiometer or encoder on hydraulic, pneumatic or electrical actuator to detect a movement within the nozzle, to determine a location of a nozzle pin and/or a cycle time and/or a cycle number; a limit switch on hydraulic, pneumatic or electrical actuators to determine a location of a needle of the hot runner nozzle and/or the cycle time and/or the cycle numbers; an optical sensor mounted on a mold or the hot runner system to detect light via a bore in the mold to a parting line if the mold is opened or closed; and a sensor for wear detection, to detect if a wall or other components of the one or more manifolds are washed out or if the one or more heating elements reach the end of life time or if the nozzle pin is broken.
3. The hot runner process controller according to claim 1, further comprising one or more switches and/or valves located in connections between the injection molding machine and the hot runner system allowing interruption of the operation of the injection molding machine or closing of the inlet nozzle with a valve pin, wherein the switches and/or valves are operated by the processing unit on the basis of the status information generated using the one or more sensor, to activate or deactivate the control of the hot runner system by the injection molding machine.
4. The hot runner process controller according to claim 3, wherein the hot runner further comprises a switching unit spatially grouping the switches for heating zone and/or temperature sensors and/or valves, wherein the one or more switches are placed between cables from heating zones and/or temperature sensors and/or valves, and standard hot runner connectors.
5. The hot runner process controller according to claim 1, comprising a signal line connectable to the injection molding machine to provide the status information, to indicate the operations status of the hot runner-system, so that the injection molding machine can be controlled by the status information.
6. The hot runner process controller according to claim 1, wherein the processing unit is configured to perform one or more of the following operations: (a) detecting by a flow sensor and a temperature sensor if a cooling and/or actuating fluid in the one or more actuators of the hot runner system is running at a predefined minimum flow rate and below a predefined maximum temperature measured at an outlet of the cooling and/or actuating fluid, and generating status information to indicate that the one or more heating elements of the hot runner system should not be deactivated; (b) detecting by a temperature sensor that a cooling and/or actuating fluid temperature measured at an outlet is above a predefined maximum temperature, and generating status information to indicate that the hot runner system should be deactivated; (c) detecting by an air or oil pressure sensor that the hot runner valves and/or one or more actuators are driven below a predefined minimum pressure to be operated, and generating status information to indicate that the hot runner system should be deactivated; (d) detecting by an air or oil pressure sensor that the one or more actuators are exposed to pressure above a predefined limit to be operated so that a valve pin could damage the mold, and generating status information to indicate that the hot runner system should be deactivated or the pressure line should be closed; (e) detecting by a temperature sensor that the one or more actuators of the hot runner nozzle are above a predefined temperature, and generating status information to indicate that the hot runner system should be deactivated; detecting by a temperature sensor and a timer that one or more heating element zones of the one or more manifolds or nozzle or inlet nozzle are below a certain temperature level after a certain time limit, and generating status information to indicate that the hot runner system should be deactivated; (f) detecting by a temperature sensor and a timer that a heating time exceeds a predefined limit in on one or multiple zones and no operating cycle is detected, and generating status information to deactivate the hot runner system or to deactivate the heating elements or temporarily deactivate the heating elements to reduce the temperature or activate a predefined lower temperature; (g) detecting by a temperature sensor and a timer a shut off of the injection molding system if the temperature drops in a certain time below a predefined limit, and generating status information that the one or more actuators should be activated to close the one or more actuators before the melt solidifies; (h) detecting by a temperature sensor and a timer that a temperature drop below a certain temperature is faster than a predefined threshold, indicating that a plastic material solidifies, and generating status information that the one or more actuators should be deactivated; (i) detecting by a temperature sensor that a processing temperature is reached and a heat up safety time is exceeded without running production cycles in case no cycles are detected, and generating status information to indicate that the hot runner system or the one or more heating elements should be deactivated or that the temperature of the one or more heating elements should be reduced; (j) detecting by a humidity sensor that a humidity is above a predefined level indicating that there is a cooling leakage generating status information to indicate that the hot runner system or the one or more heating elements should be deactivated; (k) detecting by a flow sensor or a pressure sensor a leakage of cooling water and/or of fluid to drive the one or more actuators, and generating status information to indicate that the hot runner system should be deactivated; (l) detecting by mechanical, electrical switches, temperature sensors or pressure sensors in areas with possible melt leakages of the hot runner system, and generating status information to indicate that the hot runner system should be deactivated if a leak occurs; (m) detecting by a temperature sensor peeks within the flow channel of the hot runner system to determine the cycle time and/or the cycle number; (n) detecting by the movement sensor or the deformation sensor cycle time and/or cycle number; and (o) detecting by a pressure sensor in a flow channel that the pressure is above a predefined value which is too high for the hot runner system, a valve pin driven by a hydraulic, electric or pneumatic actuator will close the inlet nozzle to avoid damage.
7. The hot runner process controller according to claim 6, wherein the processing unit is configured to detect a preheating in a preheat station of the hot runner system and configured to select one or more operations (a) to (o) with values different from the molding operation.
8. The hot runner process controller according to claim 7, wherein if a preheating is detected and if a preheating temperature is reached and a predefined time under allowed melt residence is exceeded the processing unit is configured to generate information to deactivate the one or more heating elements.
9. The hot runner process controller according to claim 6, wherein if production cycles of the injection molding machine are detected, the processing unit is configured to generate information to select different stored data and program code for the operations (a) to (o) in comparison to the preheating.
10. The hot runner process controller according to claim 1, further comprising at least one of a network interface to send status information over network; a display to indicate status information to user; a keyboard to allow user input; an output relay to provide status information; and serial interface to provide status information.
11. The hot runner process controller according to claim 6, wherein the processing unit is configured to force activation of the hot runner system regardless of the status information.
12. The hot runner process controller according to claim 6, wherein the processing unit is configured to log the activation of the bypass function and still log the incoming sensor data.
13. The hot runner process controller according to claim 12, further comprising input means to enter a password to activate the bypass function.
14. The hot runner process controller according to claim 6, further comprising a user interface, and wherein the processing unit is configured to receive a password via the user interface to activate the bypass function.
15. The hot runner process controller according to claim 6, wherein a power supply is provided by the connector of at least one or more heating elements.
16. The hot runner process controller according to claim 1, further comprising a switch for switching a power supply of the one or more heating elements; switching one or more magnet valves or change over valves to close or open one or more actuators; switching one or more magnet valves or change over valves to interrupt an actuating oil flow from the injection molding machine to the one or more actuators; switching sensor cables and/or temperature sensors to provide simulated values, to control the one or more heating elements; and/or interrupting sensor cables and/or the temperature sensors to simulate a broken sensor line and force the injection molding machine to stop heating the heating element.
17. A method to monitor the status and operation of a hot runner system to autonomously generate information to improve the quality of injection molding process, the hot runner system comprising an inlet nozzle, one or more manifolds and one or more nozzles with actuator or without actuator, and one or more heating elements, the method is executed by a hot runner process controller which is self-operating, and independent from the injection molding machine, the hot runner process controller having access to information of one or more sensors located on, in or at the hot runner system to detect the status and/or the operation of the hot runner system; the hot runner process controller comprising a processing unit and a memory, wherein the processing unit is connected to the one or more sensors, wherein the memory stores data and program code, comprising the steps of: loading and executing by the processing unit the program code to compare sensor information with the stored data and to determine if the hot runner system is in an operable status, and in case the hot runner system is in an operable status, generating status information to activate the one or more heating elements and/or to open the one or more actuators, enabling a production operation of the injection molding machine, or in case the hot runner system is not in an operable status, generating status information to deactivate the one or more heating elements and/or to close the actuators disabling a production operation of the injection molding machine.
18. The method according to claim 17, wherein the sensor information is derived by one or more of the following steps: detecting temperature of one or more components of the hot runner system and/or cutouts and/or in the flow channel and/or at the end of the cooling line on the one or more actuators within the components of the hot runner system by a temperature sensor; detecting the humidity surrounding the hot runner system; detecting the flow of fluids or melt by a flow sensor; detecting pressure in fluids or melt by a pressure sensor; detecting a leak in the fluid lines and /or areas with possible plastic leakage and /or the inlet nozzle and/or in the one or more manifolds, the one or more hot runner nozzles and/or the one or more actuators by a leak sensor and/or joints to each other; detecting deformation by a deformation or bending sensor attached to the hot runner system; detecting movements of the hot runner system by a vibration sensor; detecting operations with respect to the hot runner system by an acoustic sensor; detecting movements of the hot runner system by a gyro-sensor; detecting movements within the nozzle by a potentiometer or an encoder of the one or more actuators, so that the location of a nozzle pin and/or a cycle time and/or cycle number is detected; determining a location of a needle of the hot runner nozzle and/or a cycle time by a limit switch on one or more of the actuators; detecting light via a bore in the mold to a parting line if a mold is open or closed by an optical sensor mounted on hot runner system or in the mold; and detecting if a wall or other components of the one or more manifolds are washed out or if one or more of the heating elements reaches the end of lifetime or if the nozzle pin is broken by sensors for wear detection.
19. The method according to claim 17 further comprising, interrupting the operation of the injection molding machine by triggering switches and/or valves located in connections between the injection molding machine and the hot runner system, wherein the switches and/or valves are operated by the processing unit on the basis of the status information generated using the sensor, so that the control of the hot runner system by the injection molding machine is activated or deactivated.
20. The method according to claim 17 further comprising, providing the status information comprising a signal line connectable to the injection molding machine, indicating the operation status of the hot runner system, so that the injection molding machine can additionally be controlled by the status information.
21. The method according to claim 17, wherein the processing unit is performing one or more of the following operations: (a) detecting by a flow sensor and a temperature sensor if a cooling and/or actuating fluid in the one or more actuators of the hot runner system is running at a predefined minimum flow rate and below a predefined maximum temperature measured at an outlet of the cooling and/or actuating fluid, generating status information to indicate that the one or more heating elements of the hot runner system should not be deactivated; (b) detecting by a temperature sensor that a cooling and/or actuating fluid temperature measured at an outlet is above a predefined maximum temperature, generating status information to indicate that the hot runner system should be deactivated; (c) detecting by an air or oil pressure sensor that the hot runner valves and/or one or more actuators are driven below a predefined minimum pressure to be operated, generating status information to indicate that the hot runner system is deactivated; (d) detecting by an air or oil pressure sensor that the one or more actuators are exposed to pressure above a predefined limit to be operated so that a valve pin could damage the mold, generating status information to indicate that the hot runner system should be deactivated or the pressure line should be deactivated to closed; (e) detecting by a temperature sensor that the one or more actuators of the hot runner nozzle are above a predefined temperature, generating status information to indicate that the hot runner system should be deactivated; (f) detecting by a temperature sensor and a timer that one or more heating element zones of the one or more manifolds or nozzle or inlet nozzle are below a certain temperature level after a certain time limit, generating status information to indicate that the hot runner system should be deactivated; (g) detecting by a temperature sensor and a timer that a heating time exceeds a predefined limit in on one or multiple zones and no operating cycle is detected, generating status information to deactivate the hot runner system or to deactivate the heating elements or temporarily deactivate the heating elements to reduce the temperature or activate a predefined lower temperature; (h) detecting by a temperature sensor and a timer a shut off of the injection molding system if the temperature drops in a certain time below a predefined limit, generating status information that the one or more actuators should be activated to close the one or more actuators before the melt solidifies; (i) detecting by a temperature sensor and a timer that a temperature drop below a certain temperature is faster than a predefined threshold, indicating that a plastic material solidifies, generating status information that the one or more actuators should be deactivated, to not be able to move to avoid the risk of damage; (j) detecting by a temperature sensor that a processing temperature is reached and a heat up safety time is exceeded without running production cycles in case no cycles are detected, generating status information to indicate that the hot runner system or the one or more heating elements should be deactivated or that the temperature of the one or more heating elements should be reduced; (k) detecting by a humidity sensor that a humidity is above a predefined level indicating that there is a cooling leakage generating status information to indicate that the hot runner system or the one or more heating elements should be deactivated; (l) detecting by a flow sensor or a pressure sensor a leakage of cooling water and/or of fluid to drive the one or more actuators, generating status information to indicate that the hot runner system should be deactivated; (m) leak detecting by mechanical, electrical switches, temperature sensors or pressure sensor in areas with possible melt leakages of the hot runner system, generating status information to indicate that the hot runner system should be deactivated if a leak occurs; (n) detecting by a temperature sensor peeks within the flow channel of the hot runner to determine the cycle time and/or the cycle number; (o) detecting by the movement sensor or the deformation sensor cycle time and/or cycle number; and (p) detecting by a pressure sensor in a flow channel that the pressure is above a predefined value which is too high for the hot runner system, a valve pin driven by a hydraulic, electric or pneumatic actuator closes the inlet nozzle to avoid damage.
22. The method according to claim 21, wherein the processing unit is detecting a preheating in a preheat station of the hot runner system and is selecting one or more operations (a) to (p) with values different from a molding operation.
23. The method according to claim 22, wherein if a preheating is detected and if a preheating temperature is reached and predefined time under allowed melt residence is exceeded the processing unit is generating information to deactivate the one or more heating elements.
24. The method according to claim 21, further comprising detecting production cycles of the injection molding machine, to select different stored data and program code for the operations (a) to (p) in comparison to the preheating element.
25. The method according to claim 21, wherein a user is allowed to activate a bypass function to bypass one or more of the operations (a) to (p), to force activation of the hot runner system.
26. The method according to claim 25, wherein the activation of the bypass function and the incoming sensor data are logged by the processing unit.
27. The method according to claim 25, wherein the bypass function is activated after a password has been entered.
28. The method according to claim 17, wherein one or more of the following steps are performed: switching a power supply of the one or more heating elements; switching one or more magnet valves or change over valves to close or open one or more actuators; switching one or more magnet valves or change over valves to interrupt an actuating oil flow from the injection molding machine to the one or more actuators; switching sensor cables and/or thermocouples to provide simulated values to control the one or more heating elements; and interrupting sensor cables and/or the heating elements to simulate a broken sensor line and force the injection molding machine to stop heating the heating elements.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0058] The invention allows a control of the hot runner system also in a preheat station.
[0059] For example, when the hot runner process controller is activated (energized) and connected to the hot runner system and cooling water is running (for example at a minimum flow rate and maximum temperature on the outlet (e.g., 50° C.), the hot runner system can be heated up. In this context, information is generated to activate the heating elements. The activation of the heating elements can be performed by actively closing switches or relays which enable a current flow to the heating element, or by sending information to the injection molding system. This means a heating phase can be started when cooling fluid is running and if cooling temperature or actuator temperature does not exceed a preset maximum temperature. If for example the temperature exceeds the upper limit, information is be generated to automatically deactivate the heating element. It is then shut off by the hot runner process controller. The shutoff can be performed by the switches or relays switched permanently or temporarily until the temperature is below the preset maximum temperature.
[0060] When the hot runner process controller is activated (energized and connections to all relevant sensors are correct), the actuators do not exceed a predefined temperature and the plastic material in the flow channels is melted and the (fluid) air or oil pressure is above a predefined lower limit and below a predefined upper limit the actuators can be activated and preheated.
[0061] A temperature sensor in the actuators is used to measure the temperature on or in the actuators (pneumatic or hydraulic or electric). This temperature should be below a certain temperature (e.g., 80° C.) to protect the actuators and/or the seals and/or the hydraulic oil and/or lubricants so the heating elements can stay activated.
[0062] All heating elements in all zones/areas need to preheat. This is measured by temperature sensors on/at the manifold in the zones/areas. In case one of the heating elements is not working or below a predefined temperature, a deactivation information is provided for all heating elements and/or actuators.
[0063] When the heating time exceeds a predefined time limit, for example 20 minutes on one or multiple zones without detecting one or more cycles, then information is generated to deactivate the heating elements and the power supply to all heating zones is stopped or set to a lower temperature. The predefined time and temperature limit depend on the plastic material. If the hot runner process controller detects that one or more heating zones have not reached a pre-set temperature, which might occur when a heating element or thermocouple is broken during start phase or after, an information to deactivate the system is generated.
[0064] All of the information can be used to run as an instruction to the injection molding machine to stop the heating of hot runner system, via an electronic interface (e.g., via Industry x.0 (4.0) connection like OPC UA, between hot runner process controller and injection molding machine). The exchange of information can be performed via cable, LAN, Bluetooth, USB, WLAN, 3G, 4G, 5G, etc. If connected, the hot runner process controller can control the injection molding machine (e.g., cause an alarm or send request to drop down hot runner system temperature). If a preheating temperature is reached and predefined time under allowed, and melt residence exceeds (for example 20 min), then the heating elements in the heating zones are deactivated to shut off or set to a lower temperature. In this case, information can be sent to customer (e.g., via information at screen/display, mail or app) about the deactivation/temperature reduction. In case the hot runner process controller is stand alone, which means that no connection to the injection molding machine is given, the deactivation happens with protection switches/relays installed between a plug interface and hot runner system heating elements. In case the hot runner process controller is connected to the injection molding machine, the deactivation information is sent to the injection molding machine to overrule the process running on the injection molding machine.
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[0067] When the sensors do not notice any production cycle and when heating time exceeds predefined limit, for example 20 minutes on one or multiple zones, then the components are deactivated which means the powering of all heating elements and the actuators are deactivated or triggered to close the valve by moving the valve pin to close the valve or if a connection to the injection molding machine is given, allowing an external control of the temperature, the temperature is reduced to a lower predefined temperature.
[0068] In a possible embodiment, the invention detects that one or more heating zones are not at preset temperatures. This can be caused by a heating element or thermocouple that is broken during the start phase or after the start phase. The injection molding machine should not run. Warning information is sent to the operator via screen, mail or app. As long as all the above-mentioned conditions are not fulfilled, information is sent via (Industry x.0) interface to the injection molding machine to disable the injection molding process. If however the predefined processing temperature has been reached and a predefined heat up safety time is exceeded without running any production cycles (no cycle is detected), then the invention will generate information to shut off all heating elements or, depending on the kind of plastic material, reduce the temperature via the interface.
[0069] In
[0070] The following preconditions need to be fulfilled to start the molding process: (1) When the hot runner process controller is activated (energized and connections to all relevant sensors are fine) and connected to the hot runner system and cooling water is running (at a minimum flow rate and maximum temperature on the outlet e.g. 50° C.), the hot runner system can continue to run. Heating can only continue to run when cooling fluid is running and if cooling temperature or actuator temperature do not exceed a predefined temperature. If the temperature exceeds an upper mentioned limit, then the heating element can be automatically deactivated; (2) When the hot runner process controller is activated (energized and connections to all relevant sensors are OK) and connected to the hot runner system and the heating elements are running, the hot runner system can continue to run; (3) When the hot runner process controller is activated (energized and connections to all relevant sensors are OK) and connected to the hot runner system and the air or oil pressure is correct, the hot runner system can continue to run; (4) When the temperature on/in the actuators (pneumatic, hydraulic or electric) is below a certain temperature (e.g. 80° C.), the hot runner system can continue to run; (5) When a preset temperature for the used plastic material is reached (it needs to be melted otherwise the system could be damaged; it also needs to be below a certain temperature to not damage the material), the hot runner system can continue to run; and (6) If a plastic material depending time is exceeded without running production cycles (no cycle detected), then automatically deactivation information is generated for all heating zones; or depending on the plastic material information is sent to reduce the temperature via interface to injection machine, or the power supply for the heating elements are modulated to reduce the temperature.
[0071] In case the hot runner process controller is standalone, then shutoff is performed with a protection switch installed between customer plug interface and hot runner system heating elements. If the hot runner process controller is connected to the molding machine and/or external hot runner system controller, then shut off information is sent to one of the mentioned devices.
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[0077] If all this is not the case and the temperature drops (e.g., 10° C.) below a preset temperature, the invention generates an information that a closing of the valve pin is avoided. This is to prevent the closing of the valve pin and will lead to damage because of too cold (hardened) plastic material. If a temperature drops really fast below a certain temperature (when the plastic material solidifies), the valve pin should not be allowed to move because of the risk of damage.
[0078] In a possible embodiment, the hot runner process controller has a bypass function that allows to go on with production by bypassing one or more of the mentioned deactivation information. The activation of the bypass function should be logged. The bypass function is only activated after entering a password and all data during the bypassed is logged.
[0079] The hot runner process controller has an extensive leakage detection to prevent damage (e.g., overheating or electrical short circuits) which is implemented by plastic leakage detectors and show if plastic material is in an area where it does not belong. The content of the application (U.S. application Ser. No. 16/802,874) is introduced herein with reference. Flow sensors of cooling water or oil are used to determine derivation of standard flow amount. If a certain amount is exceeded, a leakage is probable and information has to be generated to deactivate the system. The same approach can be used for air or other fluids. Pressure sensors could be used for the leak detection. Furthermore, predefined information patterns can be used to determine a leak. Sudden repetitive pressure loss might indicate a leak.
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[0081] All of these sensors can be used to determine if cycle time is not constant or a pause is exceeded. If exceeded, the system needs to (produce an alarm) reduce the heat for certain plastic material (risk of degenerated plastic material of even risk of explosion). Information should to be generated to warn the operator or deactivate the injection molding machine.
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[0083] According to
[0084] In
[0085] 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.
LIST OF REFERENCE NUMERALS
[0086] 1=Hot runner system (inlet nozzle, manifold, actuator, nozzle) [0087] a=Inlet nozzle [0088] b=Manifold [0089] c=Nozzle [0090] 2=Gate to be opened or closed by valve pin [0091] 3=Actuator (hydraulic or pneumatic) to drive open or closing of valve pin [0092] 4=Valve pin close pipe/hose [0093] 5=Valve pin open pipe/hose [0094] 6=Solenoid valves [0095] 7=Sensor to detect movement of actuation medium [0096] 8=Coupling to customer driving power supply (air, oil, electric) and cooling [0097] 9=Cooling circuit [0098] 10=Sensor to detect movement of cooling medium or sensor to detect movement and amount per time [0099] 11=Temperature sensor to detect if temperature of actuator is exceeded [0100] 12=Sensor to detect cooling medium temperature at the cooling exit and entry [0101] 13=Sensor to detect valve pin position [0102] 14=Sensor to detect air humidity (e.g. to detect cooling water leakage) [0103] 15=Vibration sensor to detect movement or vibrations. Can be used to detect cycles (e.g. as a cycle counter) [0104] 16=Strain gage or sensor to detect bending of hot runner or mold [0105] 17=Customer driven solenoid valve 18 and or 18′ =Solenoid driven valve to block media flow [0106] 19=Power cable for Heaters (P; N) [0107] 20=Thermocouple cable (+; −) [0108] 21=Cable from additional thermocouple to supervise temperature if split supervising with original thermocouple is not possible [0109] 22=Interface to customer plug for power [0110] 23=Interface to customer plug for temperature control (can also be mixed wired on one or several plugs with power) [0111] 24=Hot runner process controller [0112] 25=Line to switch thermocouple /temperature sensor into a interrupted position or to a voltage position where the customer controller thinks the system is hotter than allowed [0113] 25′ =Line to switch the power line to disconnected [0114] 26=Contactor or contactors or relay or relays to switch thermocouple/temperature sensor connection [0115] 27=Contactor or Contactors to interrupt the power line [0116] 28=Thermocouple in flow channel [0117] 29=e-actuator to drive open or closing of valve pin [0118] 30=Power line for e-actuator [0119] 31=Sensor line for e-actuator [0120] 32=Coupling to customer cooling [0121] 33=Controller for e-actuators [0122] 34=Power line (e.g. 230V) form customer [0123] 35=Signal line from injection machine e. g. for injection start signal [0124] 36=Valve pin in inlet nozzle in close position=>Flow of plastic is stopped/not possible [0125] 37=Valve pin in inlet nozzle in open position=>Flow of plastic is allowed