Multivariate Shrinkage Sensor (MVSS) for Injection Molding
The injection molding multivariate sensor addresses defects in conventional methods by real-time assessment of shrinkage, temperature, and pressure, ensuring efficient and cost-effective production of molded parts.
Patent Information
- Application Number
- JP2022569202
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-13
- Filing Date
- 2021-05-12
- Publication Date
- 2025-08-27
- Estimated Expiration
- 2041-05-12
AI Technical Summary
Conventional injection molding methods suffer from defects due to fluctuations in viscosity, temperature, and pressure during the injection process, leading to inefficiencies in assessing the sufficiency of molded parts, which are typically evaluated post-molding, incurring additional time and cost.
An injection molding multivariate sensor that captures and calculates shrinkage, temperature, and pressure parameters in real-time, using a plunger with a magnetic source and digital position sensor to determine part sufficiency during molding, integrating sensors for pressure, temperature, and displacement to assess quality immediately.
Enables real-time evaluation of molded part quality, reducing time and cost by providing immediate feedback on sufficiency, ensuring consistent product quality and reducing defects.
Smart Images

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Abstract
Description
[Technical Field]
[0001] Federally Sponsored Research and Development Statement: This invention was made, at least in part, with government support under Grant Nos. 1822271, 02-045309, CMMI-1000816 / 1000551, 1843921 awarded by the National Science Foundation. The U.S. Government has certain rights in this invention. [Background technology]
[0002] background Injection molding is a common manufacturing technique for low-cost, high-volume articles formed from a variety of polymers. Pelletized stock is typically distributed in bulk and delivered to a molding machine for high-pressure injection of molten raw material into a specially prepared mold of the desired shape. A screw or impeller typically applies heat to the raw material to create a high-pressure, flowable melt that fills even complex mold shapes. Summary of the Invention [Means for solving the problem]
[0003] overview The injection molding multivariate sensor captures and calculates shrinkage, temperature, and pressure parameters associated with the injection molded part and calculates sufficiency based on the collected parameters to indicate whether the molded part exceeds minimum sufficiency. The collected parameters include plunger or sliding pin displacement in response to in-mold shrinkage, measured by a magnetic medium in relation to pressure and temperature. The analysis application receives the parameters to calculate molded part sufficiency at the time of molding rather than after post-molding inspection, providing time and cost advantages.
[0004] The design herein is based, in part, on the observation that injection molding offers an economical alternative to the manufacture of components previously accomplished by metalworking, stamping, and die-molding. Polymer pellet stock loaded into a hopper is delivered to a screw or threaded injector, which agitates and extrudes the pellet stock into a viscous molten form (melt), which is heated. The screw also forces the viscous melt under significant pressure into a mold cavity having the shape of the desired molded component. The extruded melt fills the mold by flowing into various gaps and contours within the mold. Unfortunately, conventional approaches to injection molding suffer from the drawback that defects in the molded part can result from fluctuations in viscosity, temperature, and pressure of the molten polymer during injection into the cavity defining the mold.
[0005] As the molten polymer cools inside the cavity, shrinkage occurs. The magnitude and rate of shrinkage, along with temperature and pressure, indicate the sufficiency of the molded part. The configuration herein greatly surpasses traditional approaches to assessing the sufficiency of injection molded parts from integrated shrinkage, pressure, and temperature sensors that track these parameters during cooling and calculate a sufficiency measure for the resulting molded part.
[0006] An injection molding in-mold shrinkage detection sensor device includes a plunger or rod in communication with a cavity defined by the interior volume of the mold. The plunger has a distal end in communication with the cavity and a proximal end having a magnetic source. A digital position sensor adjacent the path of travel of the magnetic source responds to the magnetic source for detecting movement of the plunger based on displacement of the distal end caused by melt shrinkage. Upon injection, melt pressure pushes the plunger out of the cavity, and as the melt cools, the volume contracts, pulling the spring-loaded plunger back slightly within the cavity. A typical range of travel can be on the order of 0.5 mm.
[0007] BRIEF DESCRIPTION OF THE DRAWINGS The above and other objects, features, and advantages of the present invention will become apparent from the following description of specific embodiments of the invention, as illustrated in the accompanying drawings, in which like reference characters generally refer to the same parts throughout the various views. The drawings are not necessarily to scale, and emphasis instead is placed upon illustrating the principles of the invention. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a contextual diagram of an injection molding production environment suitable for use with the arrangements herein. [Figure 2A] 2 shows a simplified diagram of a molding sequence in the environment of FIG. 1 by using a multivariate shrinkage sensor as defined herein. [Figure 2B] 2 shows a simplified diagram of a molding sequence in the environment of FIG. 1 by using a multivariate shrinkage sensor as defined herein. [Figure 2C] 2 shows a simplified diagram of a molding sequence in the environment of FIG. 1 by using a multivariate shrinkage sensor as defined herein. [Figure 2D] 2 shows a simplified diagram of a molding sequence in the environment of FIG. 1 by using a multivariate shrinkage sensor as defined herein. [Figure 3] FIG. 2B is a schematic diagram of a control application operable by the multivariate shrinkage sensor (MVSS) of FIGS. 2A-2D. [Figure 4] FIG. 4 is a side cutaway view of the MVSS of FIGS. 2 and 3. [Figure 5] MVSS installed in a molding apparatus operable according to the configuration of FIGS. 1-4 is shown. [Figure 6A] FIG. 4 shows the MVSS sensor used to control a molding operation. [Figure 6B] FIG. 4 shows the MVSS sensor used to control a molding operation. [Figure 6C] FIG. 4 shows the MVSS sensor used to control a molding operation. [Figure 6D]FIG. 4 shows the MVSS sensor used to control a molding operation. [Figure 6E] FIG. 4 shows the MVSS sensor used to control a molding operation. [Figure 6F] FIG. 4 shows the MVSS sensor used to control a molding operation. DETAILED DESCRIPTION OF THE INVENTION
[0009] Detailed Description The following description presents an example of an injection molding environment in which a multivariate shrinkage sensor (hereinafter, sensing element) is used in conjunction with an injection molding system to monitor shrinkage and related parameters related to the quality of molded parts, evaluate quality based on the collected parameters, and recommend whether the molded parts are suitable for deployment based on quality control (QC) standards. While a typical molding process usually encounters a small number of internal molds, shrinkage sensing along with related parameters of temperature and molding pressure provide direct quality indicators of the molded product. In contrast, conventional approaches involve post-molding analysis of samples to evaluate and confirm the quality batch of molded parts, incurring additional time and cost.
[0010] FIG. 1 is a contextual diagram of an injection molding production environment suitable for use with the present invention. Injection molding is most economical when a single mold can be reused for many molding units. Thus, the injection molding environment 10 may employ multiple molding machines 20. Each molding machine uses a hopper 22 for receiving raw molding material feedstock 24, typically in pellet form. A variety of polymers and plastics may be employed as feedstock, and any suitable feedstock may be employed as described below. The hopper 22 delivers the feedstock to a helical impeller 32, or injection tube 30, typically having a helical surface, for directing the feedstock into a mold 50. The injection tube typically employs a heater 34 to melt or fluidize the feedstock 24 as it is forced into the mold 50 by the impeller 32. A drive source 26 typically generates significant pressure on the feedstock as it moves along the injection tube 30.
[0011] In the mold 50, an injection interface 52 is in fluid communication with the mold 50 to define a high pressure input to the mold and is responsive to an injector 54 to receive a melt of molten raw material. The melt fills a cavity within the mold to form a molded article defined by the interior contours of the mold 50. The mold 50 may take any suitable form to accommodate the desired molded article and is typically defined in at least two parts 50-1, 50-2 so that a hydraulic actuator 56 can separate the mold halves for ejection of the molded article.
[0012] 2A-2D show simplified diagrams of a molding sequence in the environment of FIG. 1 using a multivariate shrinkage sensor element for injection molding quality sensing as defined herein. Referring to FIGS. 1-2D, sensor element 100 includes an elongated plunger 110 in communication with a cavity 112 defined by the interior volume of a mold. Elongated plunger 110 has a distal end in communication with cavity 112 and a proximal end responsive to a biasing force. A magnetic source 120 is attached to or near the proximal end, and a position sensor 122 is responsive to magnetic source 120 for detecting movement of plunger 110 based on displacement of the distal end resulting from shrinkage of injected melt 130 contained in cavity 112.
[0013] In FIG. 2A, melt 130 begins to flow through injection interface 52, which may simply be a high-pressure conduit from injection tube 30 of FIG. 1 to force melt 130 into the mold. When filled in FIG. 2B, elongated plunger 110 is flush with pressure-injected melt 112 at depth 132 (shown from the proximal end). As melt 112 cools and hardens, shrinkage occurs, causing melt 112 to contract as it tends to pull away from the mold wall (shown in FIG. 2C). Cooling channels 51 also assist in temperature management. Because mold depth 134 differs from injection depth 132 based on shrinkage 133, elongated plunger 110 extends into the mold cavity to accommodate shrinkage (shown in FIG. 2D). The displacement of the elongated plunger, calculated from the difference between injection depth and mold depth, defines shrinkage 133, which is used to assess the quality of the hardened molded article 130′, as discussed further below.
[0014] FIG. 3 is a schematic diagram of a control application operable with the multivariate shrinkage sensor (MVSS) of FIGS. 2A-2D. Referring to FIGS. 1-3, in a production environment 10, a batch of molded articles 150 emerges from the mold 50 as the cured molded articles 130' are ejected from the mold 50. These typically undergo an evaluation and / or sorting process to verify the sufficiency of each molded article 150. For example, a conveyor 140 may transport the molded articles 150 to a sorting device 142. The sorting device employs a diverter or selector driven by an actuator 146 to divert the molded articles 150 to different bins 144-1, 144-2 (generally 144) for containing acceptable molding material 150-1 and unacceptable molding material 150-2. Other suitable sorting and manufacturing equipment may be employed. In contrast, conventional approaches typically store unsorted batches of articles for subsequent testing and analysis.
[0015] The arrangement herein employs a signal 300 from an in-mold sensor element 100 for accelerated or immediate evaluation. The sensor element 100 calculates the signal 300 with an analysis circuit 320 in response to the position sensor 100 receiving a displacement signal 302. The displacement signal 302 indicates the distance traveled by the plunger 110 during the injection phase to fill the mold 50 and during the cooling phase defined by the shrinkage of the molding 112 within the filled mold.
[0016] The analysis circuit 320 may communicate with a mold quality application 322 having logic 324 for calculating whether the corresponding molded article 150 is acceptable and sends a verification signal 310 to the actuator 146. The sensor element 100 may also include additional sensors for generating signals related to mold temperature 304, melt temperature 306, and molding pressure 308, which are discussed further below in FIG.
[0017] The analysis circuit 320 may be encoded on a PCB (printed circuit board) located adjacent the proximal end of the elongated plunger for heat dissipation, such that the analysis circuit is integrated with or electrically connected to the position sensor 122 for generating the displacement signal 302. The analysis circuit may also receive sensor data for one or more of a pressure signal 308 indicative of the fluid pressure of the injected melt, a melt temperature signal 306 indicative of the temperature of the injected melt, and a mold temperature signal 304 indicative of the temperature of the mold 50 resulting from the injected melt 112. An adjacent computing system 321 launches and runs an application 322 for generating the verification 310.
[0018] Analysis circuit 320 is coupled to a mold quality application 322 configured to generate a verification signal 310 indicating whether the molded article 150 resulting from the cooled melt is sufficient for use based on displacement signal 302 and at least one of pressure signal 308, melt temperature signal 306, and mold temperature signal 304. The mold quality application may also employ a graphic user interface 352 (GUI) visible on a drawing device 350 in response to a user interface 354, such as a keyboard and mouse. GUI 352 may draw and receive control parameters 356 related to quality and control parameters of molded article 150, as discussed further below. Typically, analysis circuit 320 is located on sensor element 100 to receive raw signal data, such as voltage signals, from the sensor, and analysis application 322 is located on a remote PC or user computing device to receive displacement, pressure, mold temperature, and melt temperature, although any suitable mode of communication between analysis circuit 320 and analysis application 322 may be contemplated.
[0019] The most important consideration in molded part quality is the final dimensions of the molded part after shrinkage. Therefore, the quality application is configured to calculate the final dimensions of the molded part based on the shrinkage calculated from the displacement signal. While shrinkage is determined from the displacement signal as the melt cools and shrinks, overall quality is also affected by the pressure, volume, and temperature (PvT) relationship of the injected melt flowing through the mold cavity and geometry. Typically, the pressure-volume-temperature relationship provides the post-molding shrinkage. Post-molding shrinkage is the shrinkage that occurs when the injected part cools from the injection temperature to room temperature. Only the internal mold dimensions (e.g., the narrowness of the channel through which the high-pressure melt is forced) play a role. Therefore, the quality application is further configured to calculate a verification signal based on the pressure-volume-temperature (PvT) relationship to correlate the viscosity of the melt with the rate (velocity) of introduction into the cavity. When analyzing the quality of a molten molded part, viscosity and velocity provide complete process monitoring and control of the plastic part fabrication process. In this context, the fabrication process may follow other plastic fabrication processes, including injection molding.
[0020] 4 is a side cutaway view of the MVSS of FIGS. 2 and 3, illustrating signal generation in more detail. Referring to FIGS. 1-4, the sensor element 100 further includes a pressure sensor 410 embedded within the elongated plunger 110 such that the elongated plunger 110 is in slidable communication with the housing 400 for advancing and retracting the elongated plunger 110 from the mold 50 based on pressure exerted by the fluid melt 130 within the cavity 112.
[0021] The pressure sensor 410 is defined by a piezoelectric element disposed in linear interference communication with the proximal end 113 and distal end 111 of the elongated plunger 110. The piezoelectric element is positioned to experience a compressive force between a biasing force from a spring 414 and a counter force 415 from the injected melt 130. In an exemplary arrangement, the biasing force 414 includes a spring positioned to advance the elongated plunger 110 into the cavity 112. Pressure exerted by the fluid melt 130 acting against the biasing force induces compression within the elongated plunger 110. The piezoelectric element has insulating washers 412 on either side and generates a pressure signal based on a piezoelectric response due to the compression. Alternative configurations may include alternative sensing media such as strain gauge, capacitive, or bimetal-based displacement transducer media.
[0022] A temperature sensor 420 is disposed at the distal end 111 of the elongated plunger 110 to emit a melt temperature signal 306 based on the temperature of the injected melt 112. The temperature sensor further includes an infrared lens 422 for passing radiant energy to the temperature sensor 420 in response to the radiant energy to generate the melt temperature signal 306. For example, the melt temperature sensor 420 may include a thermopile 424, a spacer, and a zinc selenide lens as the filter 422.
[0023] The distal end 111 also includes a resistive sensor 430, such as a thermistor or thermocouple, within the elongated plunger 110 for generating a mold temperature signal 304 based on the temperature of the mold as the injected melt 112 fills the cavity. Recall that the temperature of the melt 112 is an important factor in the flow and hardening of the melt, and that heat within the melt generally transfers to the mold 50 as the melt 112 is injected and cools / hardens. Tracking the melt temperature and mold temperature based on the respective signals 306, 304 is discussed further below in FIG. 6F.
[0024] In a particular configuration, thermopile 424 includes a thermistor for conductive sensing of the mold temperature, as it is positioned to receive emitted infrared energy indicative of the melt temperature. Alternatively, thermocouples or other resistance-based sensors for contact-based sensing of either the melt or the mold may be employed.
[0025] Returning to the position sensor 122, a Hall effect sensor may be employed in which a magnet 120 attached to the elongated plunger 110 moves towards the mold 50 prior to injection, is pushed back during injection, and finally moves again towards the mold 50 as the cooled melt 112 contracts, generating the displacement signal 302.
[0026] While the sensor element 100 can be implemented in any suitable manner to provide the displacement signal 302, mold temperature signal 304, melt temperature signal 306, and pressure signal 308, a specific configuration is as follows: The pressure sensing sensor 410 and in-mold shrinkage measurement sensor 122 are placed within a 23 mm outer diameter sensor housing 400. The sensor housing assembly is placed onto a 25 mm outer diameter sensor base with six countersunk screws to form the sensor body. The sensor base component provides space for wiring and integrated electronics, including the analysis circuit 320. For in-mold shrinkage sensing, the position sensor 122 and magnet 120 are placed within slots in the sensor housing and PZT (piezoelectric) housing components, respectively. The position sensor and magnet remain facing each other during sensor operation, and the position sensor remains stationary during operation. For pressure sensing, a PZT ring and insulator washer assembly is seated inside the PZT housing, which in turn sits on a compression spring. The PZT housing with the PZT ring, washer, and magnet and compression spring stays in the sensor housing part along with the position sensor. There is a clearance of 0.025 mm between the PZT housing OD and the sensor housing ID for smooth sliding of the PZT housing.
[0027] The temperature sensing system (thermopile and ZnSe window) is located within the elongated plunger 110, which defines a temperature sensor pin that matches the sensor head pin as part of the overall elongated plunger 110. Alternatively, in addition to ZnSe, other quartz crystals, gemstones, and / or crystal stones may be employed as the window through which light can be transmitted. For example, sapphire, ruby, or topaz may be employed based on factors such as cost, durability, or temperature compatibility.
[0028] The sensor head pin replicates a standard 6mm ejection pin. The length of the sensor head pin can be customized depending on the mold height by changing the length of the pressure sensor pin.
[0029] The head of the sensor head pin remains in contact with the top surface of the PZT insulating washer, which transfers force to the PZT ring and compression spring. A sensor cover is installed over the sensor housing using flat head screws to trap the head of the sensor head pin, the PZT housing assembly, and the partially compressed spring inside the sensor housing. The sensor housing 400 provides a mechanical stop for the PZT housing beyond 0.5 mm of displacement, which controls the sensor head pin displacement. The selected compression spring fully compresses at pressures above 5 MPa and recovers its free length when the pressure decays below 5 MPa. Other suitable pressure and displacement thresholds may also be employed, and various lips and shelves may be provided to limit the elongated plunger's travel to a predetermined travel, such as 0.5 mm.
[0030] Figure 5 shows the MVSS installed in a molding apparatus operable according to the configuration of Figures 1-4. In the exemplary molding apparatus, a mold 50 is filled by an injector 54 that engages an injection interface 52. The sensor element 100 occupies a cavity insert 500 that is used to eject the molded article 150 and may also be employed for an ejector pin 502, a common fixture on a typical mold 50. This conveniently positions the sensor element 100 away from the cooling lines 51, injection nozzle 54, and other hydraulically actuated components of the mold 50 so as not to interfere with the molding process.
[0031] Because of the ejection pin style of the sensor head pin, the mold 50 employs a standard straight 6 mm hole in the B-side cavity plate 150-1, eliminating space constraints, complex mold construction, and the risk of failure during sensor element 100 installation and maintenance. The sensor body remains within the ejection system. Therefore, mold design and complexity are dramatically reduced, especially for multi-cavity molds. The mold design also still maintains flexibility for efficient cooling system design, even with smaller parts and multi-cavity molds, leaving the cooling passages 51 unobstructed. Preferably, all metal components, except for the pressure and temperature sensor pins, are fabricated from 316L stainless steel. These two pins are made from hardened steel (HI3) with a hardness of 55 HRC, so they can withstand continuous damage for periods exceeding one million molding cycles while also protecting the temperature sensing system. All steel components meet tight tolerances to ensure proper function and robust operation of the sensor at the high heat and pressure experienced by the melt 130.
[0032] 6A-6F show the MVSS sensor (sensor element) 100 of FIG. 4 used to control a molding operation. In polymer injection molding, a molding machine 20 melts solid plastic pellets into a hot melt 130 and injects the hot melt into a mold cavity to fill a cavity 112. Upon entering the mold, the plastic melt begins to cool and solidify due to the mold cooling system. Within the mold cavity, the plastic material undergoes "in-mold shrinkage" during solidification. Due to in-mold shrinkage, the molded part is smaller than the mold cavity. The plastic materials most commonly used in molding applications exhibit high shrinkage rates of 0.005-0.1 mm / mm, which limits the dimensional tolerances of many molded parts.
[0033] 1-6F, the molding process for molded article 150 begins with sensor element 100 extending elongated plunger 110 into cavity 122, biased by a spring and ledge that limits movement to within a predetermined threshold (such as 0.5 mm as shown in FIG. 6A). It should be noted that elongated plunger 110 collectively refers to a slidable assembly (including mold and melt temperature sensors, piezoelectric pressure sensor, and magnetic source) that all move as a single unit when moved into or out of the mold.
[0034] In FIG. 6B , melt 130 flows into the cavity in a high-pressure, high-temperature molten state when elongated plunger 110 extends 0.5 mm from distal end 111. Mold 50 has a passageway for insertion of the elongated plunger via insertion of either an ejector pin or a dedicated port or opening. Elongated plunger 110 has a range of movement between a flush position and a fill position, such that the fill position is defined by distal end 111 of the elongated plunger extending into cavity 112. The flush position is defined by the distal end of the elongated plunger flush with the surface of cavity 112, and the range of movement is based on the shrinkage expected in the molded part. In the disclosed approach, this displacement distance is 0.5 mm, although any suitable predetermined range may be employed. The distal end of the elongated plunger defines a sensor head pin that remains protruding until polymer melt 130 contacts the top surface of the ZnSe window (infrared filter 422) at the distal end.
[0035] In FIG. 6C, the melt 130 fills the gap 112, and pressure pushes the elongated plunger 110 back from the filled position (extended 0.5 mm) to the flush position (due to the mold cavity surface pressing against the biasing element). When the melt pressure acting on the sensor head pin reaches more than 5 MPa, this pressure pushes the sensor head pin back, transferring the compressive force to the PZT ring 410. Due to a mechanical stop on the sensor housing, the sensor head pin stops moving after a displacement of 0.5 mm. At this point, the elongated plunger is flush with the mold cavity surface and continues to transfer pressure to the PZT ring. The PZT ring therefore provides an output signal corresponding to the pressure acting on the sensor head pin. A Hall-effect position sensor monitors and measures the sensor head pin displacement and position. In FIG. 6D, during the cooling phase of the molding cycle, the polymer melt 130 cools and begins to separate away from the mold cavity wall due to its shrinkage. Therefore, the pressure acting on the elongated plunger continues to decay. The distal end of the elongated plunger 110 remains flush with the mold cavity surface until the pressure acting against the sensor head pin reaches less than 5 MPa.
[0036] At pressures below 5 MPa, the sensor head pin will begin to move upward due to the spring force (depicted in FIG. 6E). A Hall-effect position sensor monitors and measures the upward movement of the sensor head pin in the displacement signal 302. At the end of the molding cycle in FIG. 6E, the mold 50 opens, ejecting the molded part 150 from the mold 50. After the mold opens, no force acts on the sensor head pin. Therefore, the sensor head pin advances to its starting position, protruding 0.5 mm inside the cavity. The difference between the position sensor output from the flush state in FIG. 6C to the advanced state in FIG. 6D indicates the amount of "in-mold shrinkage" 133 the polymer experienced during the molding cycle. Throughout the molding cycle, a thermopile in the temperature sensing system continuously monitors and measures the melt temperature and mold temperature (shown in FIG. 6F). GUI 352 displays these control parameters as a graph 600 along a time axis. 6A-6E. Cavity pressure graph 620 shows the decrease with shrinkage after the peak during injection. Melt and mold temperatures 630 and 640 decrease with temperature and pressure, respectively. Melt and mold temperatures can be used to estimate post-molding shrinkage by using the polymer's coefficient of linear thermal expansion (CLTE) or advanced pressure-volume-temperature (PvT) relationship.
[0037] In an exemplary configuration, raw sensing data is typically based on the voltage or current emanating from each sensing element. Typically, output voltage responses of the position sensor, melt pressure, melt temperature, and mold temperature are obtained. The voltage responses are converted to absolute in-mold shrinkage, pressure, and temperature.
[0038] The Hall effect position sensor, in an exemplary configuration, may be supplied by Melexis Technologies NV (MLX90364) and provides a voltage corresponding to its position relative to a neodymium magnet (3.2 mm square share, 1.6 mm thick). The position sensor is calibrated for a maximum allowable sensor pin travel of (0.5 mm). The selected position sensor may provide analog and digital signals, but for the implemented MVSS, an analog signal was used and converted to absolute position reflected by the displacement signal 302. As previously mentioned, the difference between the position sensor signal at melt contact with the entire mold and the position sensor signal at the end of cooling provides the in-mold shrinkage 133.
[0039] In the analysis circuit 320, with respect to the pressure signal 308, as the polymer melt flows across the MVSS sensor head pin as shown in Figure 4, the pressure exerted on the lens is transferred onto the PZT, causing a charge buildup. The voltage response from the PZT ring 412 (VPZT) is described by the following equation:
number
[0040] As the polymer melt flows across the sensor window, a melt temperature signal 306 is derived when infrared (IR) radiation penetrates the zinc selenide (ZnSe) window and is collected by the thermopile (TP). The voltage response of the TP, VTP, is described by the following equation:
number
[0041] To calculate the mold temperature signal 304, the thermopile includes a thermistor to estimate the reference temperature of the CMOS IR detector (which must be known to calculate the net radiative heat transfer to the thermopile). The 100 kOhm thermistor resistance is supplied by the manufacturer as a function of temperature to within 0.2% absolute error. A voltage divider circuit converts the thermistor's output resistance to a voltage. The value of the reference resistor (10 kOhm) was chosen to linearize the thermistor output within the mold coolant temperature range of interest, between 25°C and 100°C, while scaling the output voltage to the desired range.
[0042] 3 employs application 322 and logic 324 to receive signals 302, 304, 306, 308 from analysis circuit 320 for performing a method of validating an injection-molded article 150 resulting from injection of melt 130 into mold 50. The validating includes extending an elongated plunger 110, having a distal end 111 in communication with the cavity and a proximal end 113 responsive to a biasing force, into a cavity 112 defined by the interior volume of mold 50. An injector 54 injects a melt defined by a molding material into the cavity through fluid interface 52, which retracts the elongated plunger from the cavity in response to the pressure of the injected melt such that the pressure of the injected melt is detected by a pressure sensor on the elongated plunger. The application measures the detected pressure from the pressure sensor as the elongated plunger retracts so that the distal end is flush with the inner surface of the mold, and measures the displacement distance based on the position signal as the detected pressure subsides to indicate the cooling melt in the cavity and the corresponding movement or displacement of the elongated plunger back into the cavity.
[0043] While the systems and methods defined herein have been particularly shown and described with reference to embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the scope of the invention as encompassed by the appended claims.
Claims
1. an elongated plunger in communication with a cavity defined by an interior volume of the mold, the elongated plunger having a distal end in communication with the cavity and a proximal end responsive to a biasing force; a magnetic source and a pressure sensor mounted to a proximal end of the elongated plunger for movement therewith; a position sensor responsive to the magnetic source for detecting movement of the plunger based on displacement of the distal end from contraction of an injection melt contained in the cavity, the position sensor being fixed adjacent to a path and movement of the plunger and in magnetic communication with the magnetic source to generate a displacement signal; an analysis circuit responsive to said position sensor; Including, The analysis circuit the displacement signal indicating the distance traveled by the plunger during an injection phase to fill the mold and during a cooling phase defined by shrinkage of the molding in the filled mold; a pressure signal from the pressure sensor indicative of the fluid pressure of the injection melt; and a melt temperature signal indicative of the temperature of the injection melt and generate a verification signal for the molded article in the mold.
2. 10. The device of claim 1, further comprising a mold having a passage for insertion of the elongated plunger, the elongated plunger has a range of movement between a flush position and a fill position; the fill position is defined by a distal end of the elongated plunger extending into the cavity; the flush position is defined by the distal end of the elongated plunger flush with a surface of the cavity; The range of movement is based on the expected shrinkage of the molded part.
3. 10. The device of claim 1, further comprising an injection interface in fluid communication with the mold, the injection interface responsive to an injector for receiving a melt, the melt filling the cavity defined by the interior contour of the mold to form a molded article.
4. The device described in claim 1, wherein the pressure sensor is embedded within the elongated plunger, and the elongated plunger is slidably connected to a housing for advancing and retracting from the mold based on pressure exerted by a fluid melt in the cavity.
5. 2. The device of claim 1, wherein the biasing force includes a spring arranged to advance the elongated plunger into the cavity, the pressure exerted by the injected melt acting against the biasing force induces compression in the elongated plunger, and the pressure sensor exhibits a pressure signal based on the compression.
6. 2. The device of claim 1, wherein the pressure sensor is a piezoelectric element disposed in linearly interferometric communication with the proximal and distal ends of the elongated plunger, the piezoelectric element positioned to experience a compressive force between the biasing force and an opposing force from the injected melt.
7. The device of claim 1 , wherein the pressure sensor comprises at least one of a strain gauge, capacitive, or bimetal-based displacement transducer medium.
8. 10. The device of claim 1, further comprising a temperature sensor disposed at the distal end of the elongated plunger, the temperature sensor generating a melt temperature signal based on the temperature of the injected melt.
9. 10. The device of claim 8, wherein the temperature sensor further comprises an infrared lens for passing radiant energy to the temperature sensor, the temperature sensor responsive to the radiant energy for generating the melt temperature signal.
10. 10. The device of claim 8, further comprising a resistance sensor within the elongated plunger, the resistance sensor generating a mold temperature signal based on the temperature of the mold as the injection melt fills the cavity.
11. 9. The device of claim 8, further comprising a thermopile positioned to receive emitted infrared energy indicative of the temperature of the melt, the thermopile comprising a thermistor for conductive sensing of the temperature of the mold.
12. 10. The device of claim 1, wherein the position sensor is a Hall effect sensor, the pressure sensor is a piezoelectric sensor, and the melt temperature sensor includes a thermopile and a zinc selenide lens for generating the melt temperature signal.
13. The analysis circuit is disposed adjacent the proximal end of the elongated plunger for heat dissipation, and the analysis circuit receives the displacement signal and a mold temperature signal indicative of the temperature of the mold resulting from the injected melt; The device of claim 1 , electrically connected to the position sensor for receiving a signal.
14. 14. The device of claim 13, wherein the analysis circuit is coupled to a quality application configured to generate the verification signal indicating whether the molded article resulting from the cooling melt is satisfactory for use based on the displacement signal and at least one of the pressure signal, the melt temperature signal, and the mold temperature signal.
15. The device of claim 14 , wherein the quality application is configured to calculate a final dimension of the molded part based on shrinkage calculated from the displacement signal.
16. 16. The device of claim 15, wherein the quality application is further configured to calculate the verification signal based on a pressure-volume-temperature (PvT) relationship correlating a viscosity of the melt and a rate of introduction into the cavity.
17. 1. A method for verifying an injection molded article resulting from injection of a melt into a mold, comprising: extending an elongated plunger into a cavity defined by an interior volume of a mold, the elongated plunger having a distal end in communication with the cavity and a proximal end responsive to a biasing force and having a magnetic source; injecting a melt defined by a molding material into the cavity through a fluid interface; retracting the elongated plunger from the cavity in response to a pressure of the injection melt, the pressure of the injection melt being detected by a pressure sensor on the elongated plunger; measuring a pressure signal indicative of the sensed pressure from the pressure sensor as the elongated plunger is retracted so that the distal end is flush with the inner surface of the mold; measuring a displacement distance when the sensing pressure weakens to indicate a cooling melt in the cavity; receiving a displacement signal based on sensing the magnetic source, the displacement signal indicating the displacement distance traveled by the plunger during an injection phase to fill the mold and during a cooling phase defined by shrinkage of a molding in the filled mold; receiving a pressure signal from the pressure sensor indicative of a fluid pressure of the injection melt; receiving a melt temperature signal indicative of the temperature of the injection melt; generating a verification signal for a molded article in the mold.
18. 18. The method of claim 17, further comprising extending the elongated plunger into the mold, the mold has a passage for insertion of the elongated plunger; the elongated plunger has a range of movement between a flush position and a fill position; the fill position is defined by the distal end of the elongated plunger extending into the cavity; the flush position is defined by the distal end of the elongated plunger flush with a surface of the cavity; The method wherein the range of movement is based on the shrinkage expected in the molded article.
19. 1. A system for verifying an injection molded article resulting from injection of a melt into a mold, comprising: extending an elongated plunger into a cavity defined by an interior volume of a mold, the elongated plunger having a distal end in communication with the cavity and a proximal end responsive to a biasing force and having a magnetic source; retracting the elongated plunger from the cavity in response to a pressure of the injection melt, the pressure of the injection melt being detected by a pressure sensor on the elongated plunger; measuring a pressure signal indicative of the sensed pressure from the pressure sensor as the elongated plunger is retracted so that the distal end is flush with the inner surface of the mold; measuring a displacement distance when the detection pressure for indicating the cooled melt in the cavity weakens; a sensor element configured to perform injecting a melt defined by a molding material into the cavity through a fluid interface; receiving a displacement signal based on sensing the magnetic source, the displacement signal indicating the displacement distance traveled by the plunger during an injection phase to fill the mold and during a cooling phase defined by shrinkage of a molding in the filled mold; receiving a pressure signal from the pressure sensor indicative of a fluid pressure of the injection melt; receiving a melt temperature signal indicative of a temperature of the injected melt; receiving a mold temperature signal indicative of a temperature of the mold; generating a verification signal indicating whether the molded article resulting from the cooled melt is satisfactory for use based on the displacement signal and at least one of the pressure signal, the melt temperature signal, and the mold temperature signal; For control applications A system including: