Machines for temperature control in parts of industrial plants adapted to the formation of products
The machine optimizes temperature control in industrial processes by synchronizing fluid flow with production cycles, reducing energy use and shortening cycles while improving product quality through precise temperature regulation.
Patent Information
- Application Number
- JP2024537396
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-12-20
- Filing Date
- 2022-12-19
- Publication Date
- 2025-12-24
- Estimated Expiration
- 2042-12-19
Smart Images

Figure 0007792002000001 
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Abstract
Description
[Technical Field]
[0001] The present invention relates to the field of industrial thermal conditioning equipment, for example in moulding plants (die casting plants for plastic materials, metals, ceramics etc., endothermic and exothermic chemical reactors, glass processing plants etc.), more particularly to machines for temperature control by industrial users, for example in moulding moulds. [Background technology]
[0002] As is well known, in many industrial processes, including molding processes, for example in die-casting plants for plastic materials, metals, ceramics, etc., or in plants containing endothermic or exothermic reactors, or in glass processing plants, it is necessary to regulate the temperature in certain parts, especially in the parts of the system where the product formation takes place.
[0003] With particular reference to the use of molding dies to shape molded articles, the temperature of the mold body must be regulated in order to optimize the working time and the final quality of the product.
[0004] For example, in plastic injection molding, molten plastic material is injected into a closed mold. The high temperature of the molten material heats the mold. This process requires a certain waiting time after injection to allow the molded part contained in the mold to cool. To shorten this waiting time and ensure a proper temperature profile, the mold is cooled during molding.
[0005] Traditional cooling methods involve ducting the mold through which cooling water passes, with the flow rate and temperature held constant throughout the process and selected based on the desired mold cooling profile.
[0006] This cooling method is very simple and suitable for many types of situations.
[0007] On the other hand, the method of operation of adjusting the temperature of the mold does not provide the best performance results in terms of the overall amount of energy used in the cooling process and the overall speed of the process. Summary of the Invention [Problem to be solved by the invention]
[0008] The object of the present invention is to solve the problems associated with the adjustment of parts of an industrial plant, such as moulds, during the process of forming a product by moulding.
[0009] It is therefore an object of the present invention to provide a machine for temperature control of a part of a plant for an industrial process, such as for example a forming mould, which makes it possible to reduce the amount of energy used when regulating the temperature in the part of the plant that is the subject of thermal regulation.
[0010] Another important object of the present invention is to provide a machine for temperature control of parts of a plant for industrial processes, such as moulds, which makes it possible to speed up the product formation process.
[0011] Another important object of the present invention is to provide a machine for temperature control of forming dies that makes it possible to optimize the temperature profile of a part of a product forming plant in order to improve the quality of the product. [Means for solving the problem]
[0012] The above and other objects that will become more apparent hereinafter are achieved by a machine for temperature control of a product-forming section, preferably but not limited to a mould, of an industrial plant, the machine comprising at least one temperature-regulating hydraulic circuit adapted to be operatively connected to the product-forming section of the industrial plant, a temperature-regulating fluid circulating within the hydraulic circuit, the hydraulic circuit comprising: a variable flow type recirculation pump for the temperature control liquid; a delivery section downstream of the pump for delivering the temperature-regulating fluid from the hydraulic circuit to a product-forming section of the industrial plant; a return section for returning the temperature-regulating fluid from the product forming section of the industrial plant to the hydraulic circuit; a heat exchange unit for a temperature-regulating fluid, arranged between the return part and the pump, in which the temperature of the temperature-regulating fluid is regulated; The machine further includes an electronic control and management device configured with at least one value for an operating temperature of the temperature conditioned liquid and at least one predetermined time-based pump flow rate variation profile, according to which the pump moves the temperature conditioned liquid over time at a variable flow rate according to the predetermined flow rate variation profile upon receiving a synchronization signal at a predetermined instant in an industrial process of product formation in the portion of the plant being temperature conditioned.
[0013] Preferably, it is adapted to be connected to a product forming mould, whereby the part of the plant to be temperature regulated is the mould. In the following, explicit reference will be made to the mould and to the moulding process using that mould. It should be noted that the embodiments of the machine described below, although relating to moulds, are also applicable when the machine can be connected to the delivery or return of product forming parts of industrial plants other than moulding plants, such as products made in chemical reactors or other equipment.
[0014] Thus, the receipt of a synchronization signal at a predetermined moment in the industrial process of forming a product in the part of the plant to be temperature-controlled relates to the movement of the temperature-controlled fluid by a pump with a variable flow rate according to a predetermined time-based flow rate change profile. The synchronization signal can be any signal that correlates to a phase (or moment) in the production cycle of the industrial process of forming a product. This phase or moment must be constantly repeated at the same moment in the production cycle. For example, in the case of a molding process in a mold, the production cycle includes constantly repeating moments such as the closing of the mold, the start of the injection of material into the mold (in the case of injection molding) or the introduction of material into the mold, the end of the injection phase, the start of maintaining pressure in the mold, or the command to release the purge gas that the injection press sends to the mold after injection, or the opening of the mold at the end of the cycle. Each of these can determine a synchronization signal.
[0015] For example, by varying the flow rate, i.e., unit amount, of the temperature-regulating liquid in the molding mold over time, the amount of heat exchanged between the mold and the temperature-regulating liquid over time can be varied. Therefore, by knowing the temperature of the molding material in the mold over time—in other words, the temperature of the mold if not regulated by the temperature-regulating liquid—it is possible to program appropriate changes in the amount of temperature-regulating liquid circulating in the mold. By supplying the appropriate amount of temperature-regulating liquid at the appropriate moment to achieve a desired mold temperature profile over time, desirable mold temperature control can be achieved. It should be noted that this control operation does not envision inverse control of the mold temperature, but simply envisions supplying a given amount of temperature-regulating liquid at a predetermined, i.e., programmed, required moment before the start of the process.
[0016] Indeed, taking the example of a forming cycle of an industrial process, such as molding, which comprises a mold closure, a forming phase and a subsequent mold opening, the machine according to the invention makes it possible to introduce a flow of temperature-regulating liquid into the mold, the flow rate of which varies in a predetermined manner over time in the forming cycle, and this variation is synchronized with the forming cycle, for example based on a synchronization signal from the molding plant. For example, the predetermined moment in the molding process at which the above-mentioned synchronization takes place may be the moment the mold is closed, which is associated with the signal leading to the mold closure, i.e. the start of the forming phase.
[0017] For example, the mold may be associated with a sensor that detects the opening and closing of the mold and may be operably connected to an electronic device that can instruct the machine to coincide or synchronize the initiation of a time-based pump flow rate change profile with the closing of the mold.
[0018] Similarly, as mentioned above, the predetermined moment in the molding process at which the synchronization is performed can be related to other moments in the forming cycle than the moment of mold closure: for example, in the case of injection molding, synchronization may be performed at the start of the injection phase, or at the start of a typical phase of the molding process involving "post-pressurization", i.e., the period during which pressure is maintained for a certain time immediately after injection, or when a command is given to release the purge gas that an injection press typically sends to the mold after injection, or when a command is given to switch from mold open to mold closure.
[0019] The ability to deliver the right amount of temperature-regulating fluid at the most appropriate time, rather than always using a constant flow rate, allows for optimization of the operating temperature. For example, when varying the flow rate of temperature-regulating fluid (in this case, coolant) to cool a mold, the operating temperature of the temperature-regulating fluid can be much lower than when the flow rate is constant. Indeed, a lower flow rate of temperature-regulating fluid can be used at a low (constant) operating temperature when less cooling is required, and a higher flow rate of temperature-regulating fluid (at the same low, constant temperature) can be used when more heat exchange is required, i.e., when more cooling is required. With a conventional constant flow rate, the operating temperature cannot be lowered because the mold would be cooled too much, and therefore a higher average temperature must be used (for a longer period than with the innovative variable flow rate system described herein).
[0020] Preferably, the pump is of a type having a variable speed impeller, whereby varying the speed of the variable speed impeller varies the pump flow rate, and thus a predetermined time-based pump flow rate variation profile can correspond to a predetermined time-based impeller speed variation profile.
[0021] More preferably, the pump comprises an inverter adapted to manage the rotational speed of the pump's variable-speed impeller, such that a predetermined time-based pump flow rate variation profile can be adapted by the inverter to a predetermined profile of variation in the power supply frequency of the pump's electric motor. Compared to known technologies for pumps with impellers whose rotational speed can be varied, for example, by a servomotor, the use of a pump with an inverter as shown herein proves to be particularly innovative and advantageous. The servomotor is an electromechanical device that acts directly on the fluid in the pump, and the inverter is simply a power frequency converter that allows the pump to be managed in an optimal and simplified way in relation to variations in its speed.
[0022] The use of a pump with a variable speed impeller allows better control of the variation in the flow rate of the temperature regulating liquid, which allows the use of lower operating temperatures and shorter molding cycles, thereby achieving better results in terms of heat exchange at the most appropriate moment in the molding cycle.
[0023] In a preferred embodiment, the heat exchange unit for the temperature regulating liquid is located between the return portion and the pump, i.e. the pump is downstream of the heat exchange unit. In other embodiments, the pump can be located upstream of the heat exchange unit, i.e. the pump is located between the return portion and the heat exchange unit.
[0024] According to a preferred embodiment, downstream of the heat exchange unit and upstream of the access area for the temperature-regulating liquid in the molding tool, a heating device is provided for heating the temperature-regulating liquid, so that the temperature-regulating liquid entering the heating device can be heated up to the operating temperature, if necessary. Preferably, the heating device is downstream of the pump.
[0025] According to a preferred embodiment, the hydraulic circuit comprises a tank for the temperature-regulating fluid interposed between the pump and the heat exchange unit, the tank being (a) at ambient pressure or (b) closed and held at a given pressure range not including ambient pressure, and preferably operatively connected to a branch for charging the temperature-regulating fluid from a supply network external to the machine.
[0026] According to a preferred embodiment, the machine is provided with an integrated thermal conditioning device therein. The thermal conditioning device is adapted to supply the heat exchange unit with a thermal conditioning fluid adapted to exchange heat with the temperature regulating fluid. Preferably, the thermal conditioning device, together with the heat exchange unit, forms a refrigeration system integrated in the machine. The refrigeration system comprises, for example, a compressor, a condenser, an evaporator, and a storage tank, each of which has variable dimensions calculated as a function of the required refrigeration power. If the temperature regulating fluid is a cooling fluid, the heat exchange unit is in fact the evaporator of the refrigeration system. If the temperature regulating fluid is a heating fluid, the heat exchange unit is a condenser.
[0027] In another embodiment, the machine comprises a thermal conditioning device formed by a refrigeration system integrated in the machine, the refrigeration system comprising, for example, a compressor, a condenser, an evaporator and an expander, each of which has variable dimensions calculated as a function of the required refrigeration power, and which is adapted to supply a heat exchange unit with a thermal conditioning fluid adapted to exchange heat with the temperature conditioning fluid, in which case the thermal conditioning device and the heat exchange unit are separate elements and are connected only by a pipe for passing the thermal conditioning fluid.
[0028] In another embodiment, the thermal conditioning unit of the machine is operably connected to a source of thermal conditioning fluid external to the machine, for example, the thermal conditioning unit is a heat exchanger interconnected with an external refrigeration and heating source derived from a centralized system of the plant in which it is installed, or is connected to an external refrigeration system.
[0029] According to another aspect, the invention relates to a machine for temperature control of a part of an industrial plant adapted to forming products, according to one or more of the following clauses:
[0030] Appendix 1: A machine for temperature control of a part of an industrial plant adapted to form a product, comprising at least one temperature-regulating hydraulic circuit adapted to be operatively connected to a product-forming part of the industrial plant adapted to form a product, wherein a temperature-regulating fluid circulates in the hydraulic circuit, the hydraulic circuit comprising: a variable flow type recirculation pump for the temperature control liquid; a delivery section downstream of the pump for delivering the temperature-regulating fluid from the hydraulic circuit to a product-forming section of the industrial plant; a return section for returning the temperature-regulating fluid from the product forming section of the industrial plant to the hydraulic circuit; a heat exchange unit for a temperature-regulating fluid, arranged between the return part and the pump, in which the temperature of the temperature-regulating fluid is regulated; the machine further comprising an electronic control and management device configured with at least one value for an operating temperature of the temperature conditioned liquid and at least one predetermined time-based pump flow rate variation profile according to which the pump moves the temperature conditioned liquid over time at a variable flow rate according to the predetermined flow rate variation profile upon receiving a synchronization signal at a predetermined moment in the industrial process of product formation in the part of the plant to be temperature conditioned.
[0031] Appendix 2: The machine of Appendix 1, wherein the pump is of a type having a variable speed impeller, whereby varying the speed of the variable speed impeller varies the pump flow rate, and wherein the predetermined time-based pump flow rate change profile corresponds to the predetermined time-based impeller speed change profile.
[0032] Appendix 3: The machine of Appendix 1, wherein the pump comprises an inverter adapted to manage the rotational speed of the variable speed impeller of the pump, whereby a predetermined time-based pump flow rate variation profile is caused by the inverter to correspond to a predetermined profile of pump power supply frequency variation.
[0033] Appendix 4: In the machine according to any one of appendices 1 to 3, a heating device for the temperature-regulating liquid is provided downstream of the heat exchange unit and upstream of the delivery section to the product forming section of the industrial plant, the heating device being adapted to heat the temperature-regulating liquid to an operating temperature if necessary when the temperature of the temperature-regulating liquid entering the heating device is low, and preferably the heating device is downstream of the pump.
[0034] Appendix 5: A machine according to any one of appendices 1 to 4, wherein the hydraulic circuit comprises a tank for temperature-regulating fluid interposed between the pump and the heat exchange unit, the tank being at ambient pressure or being closed and held in a pressure range not including ambient pressure, preferably the tank being operatively connected to a branch for charging with temperature-regulating fluid from a supply network external to the machine.
[0035] Appendix 6: The machine according to any one of appendices 1 to 5, comprising a thermal conditioning device adapted to supply a thermal conditioning fluid to the heat exchange unit, the thermal conditioning fluid being adapted to exchange heat with the temperature regulating fluid, preferably comprising: Together with a heat exchange unit, it forms a refrigeration system that is entirely within the machine, and the heat exchange unit forms the compressor, condenser, or evaporator for the refrigeration system; a refrigeration unit which is a separate element from the thermal conditioning unit, the refrigeration unit being adapted to supply the thermal conditioning unit with a thermal conditioning fluid for conditioning the thermal conditioning fluid by heat exchange.
[0036] Appendix 7: A machine according to any one of appendices 1 to 5, wherein the heat exchange unit has an inlet pipe and an outlet pipe for supplying a heat conditioning liquid and is operably connected to a heat conditioning system external to the machine.
[0037] Appendix 8: A machine according to any one of appendices 1 to 7, wherein the delivery and return parts for the temperature conditioned liquid are adapted to be operatively connected to pipes in the mould so as to be able to deliver the temperature conditioned liquid into the mould, to condition the temperature, and to return the reconditioned temperature conditioned liquid.
[0038] Appendix 9: A machine according to any one of appendices 1 to 8 adapted to operate cyclically, wherein the electronic control and management device comprises: receiving a signal from the forming part of the industrial plant to be temperature-regulated, The signal can be synchronized with the flow rate change profile for the pump, so that from a given moment in the machine's operating cycle, the pump's flow rate can be changed in a predetermined way.
[0039] Clause 10: The machine of clause 9 adapted to cool the mould, the machine is adapted to receive a closing signal for a mold that is subject to temperature regulation; The temperature-regulating liquid is pumped into the mold at a constant operating temperature during the molding phase, and a phase of adjusting the temperature of the temperature-regulating liquid before feeding it into the mold is envisaged for temperature values lower than the operating temperature. In a molding cycle including mold close-open-close, a flow rate change profile for the temperature control fluid entering the mold is synchronized with the molding cycle based on a mold close signal to provide a low initial flow rate value for gradually cooling the mold and a subsequent higher flow rate value greater than the initial flow rate value for more intense cooling of the mold.
[0040] Clause 11: The machine of clause 10, wherein the machine does not receive a closure signal from the mold within a given time interval: Change the pump flow rate profile to keep the flow rate low to gradually cool the mold. the value for the working temperature of the temperature-regulating liquid entering the mold preferably corresponds to the temperature value of the mold at the moment the mold is closed, · Following a time interval without a signal, when a new mold closure signal is received, the flow rate change profile of the temperature regulating fluid entering the mold returns to the predetermined profile for a normal molding cycle. [Brief explanation of the drawings]
[0041] The invention will become clearer from the following description and the accompanying drawings which show non-limiting examples of the invention. [Figure 1] FIG. 1 shows a layout of the machines according to the invention in relation to a forming plant. [Figure 2]2 is a graph showing several molding cycles of the plant shown in FIG. 1, with time on the X-axis and mold temperature, temperature of the temperature control liquid, and flow rate of the temperature control liquid on the Y-axis. [Figure 3] 2 is a graph showing several molding cycles of a molding plant having a machine for temperature regulation of the molds according to the prior art, as shown in FIG. 1; [Figure 4] 2, but showing a waiting phase without forming in the plant shown in FIG. 1. [Figure 5] 2, but showing the start phase of a new molding cycle after a waiting phase without molding in the plant shown in FIG. [Figure 6] 2 is a machine layout according to the invention with variations relative to the situation shown in FIG. 1; [Figure 7] 7 is a machine layout according to the invention with variations relative to the situation shown in FIGS. 1 and 6. DETAILED DESCRIPTION OF THE INVENTION
[0042] Referring to the figures described above, a machine for temperature control of a mould according to a first embodiment of the present invention is indicated generally by the reference numeral 10 .
[0043] The machine 10 is installed in a moulding plant, generally designated A, for example a moulding plant of the type which involves the injection of plastic material into moulds. This plant A comprises a mould, designated B, and an injection press, designated C.
[0044] The machine 10 comprises a hydraulic circuit 11 adapted to thermostat (in this case cool) the mould B by means of a thermostating fluid (i.e. cooling fluid), preferably water (but which may also be other liquids such as oil and water with glycol), and the hydraulic circuit 11 is therefore operatively connected to the mould B for circulating the thermostating fluid therein.
[0045] More specifically, the hydraulic circuit 11 includes a pump 12 for circulating a temperature control liquid of a variable flow rate type (details will be described later).
[0046] Downstream of the pump 12 there is a first part 13 for delivering temperature-regulating fluid from the hydraulic circuit to the mould B.
[0047] Advantageously, the hydraulic circuit 11 comprises a second portion 14 for returning the temperature conditioned liquid from the mould back to the hydraulic circuit.
[0048] The hydraulic circuit 11 also comprises a heat exchange unit 15 for the temperature-conditioning liquid, arranged between the return section 14 and the pump 12. Here, in this example, the temperature-conditioning liquid is thermally conditioned so that it can release the heat gained in the mold during its cooling and return to a suitable temperature for cooling the mold during the subsequent molding cycle.
[0049] In this embodiment, the heat exchange unit 15 has a first interface side associated with the passage of the temperature regulating liquid and a second interface side adapted to receive heat released by the temperature regulating liquid. Here, the second interface side is operatively connected to a thermal conditioning device 16 adapted to supply the heat exchange unit 15 with a thermal conditioning liquid adapted to exchange heat with the temperature regulating liquid. For example, the thermal conditioning device forms a refrigeration system together with the heat exchange unit. For example, the refrigeration system 15-16 includes a compressor, a condenser, an evaporator, and an expander, and specifically, the heat exchange unit 15 corresponds to an evaporator. This allows the liquid from the mold to be cooled.
[0050] As mentioned above, in another embodiment, the thermal conditioning device 16 is a separate system from the heat exchange unit 15 (again, e.g., a refrigeration system comprising a compressor, a condenser, an evaporator, and an expander) and is adapted to supply the heat exchange unit 15 with a thermal conditioning fluid adapted to exchange heat with the temperature conditioning fluid. In this case, the thermal conditioning device 16 and the heat exchange unit are separate elements and are connected only by a pipe for passing the thermal conditioning fluid through it.
[0051] The hydraulic circuit 11 also comprises a tank 17 for a temperature-regulating fluid, interposed between the pump 12 and the heat exchange unit 15. In this embodiment, the tank 17 is at ambient pressure. In another embodiment, the tank 17 is closed and maintained at a given pressure range not including ambient pressure. Advantageously, the tank 17 is operatively connected to a branch 18 for charging the temperature-regulating fluid from a supply network external to the machine, advantageously closed by a charging valve 18A.
[0052] Downstream of the heat exchange unit 15 and upstream of the section 13 for delivering the temperature-regulating liquid to the mold, a heating device 20 is provided for heating the temperature-regulating liquid, thereby heating the temperature-regulating liquid, if necessary, to an operating temperature (described in more detail below). Preferably, the heating device 20 (e.g., a type that utilizes the Joule effect against an electrical resistance) is located between the pump 12 and the delivery section 13. For example, the heating device 20 is associated with a temperature probe 20A that measures the temperature of the temperature-regulating liquid leaving the heating device and can activate the heating device if the measured temperature is inappropriate.
[0053] As described above, the pump 12 is a variable flow rate pump. More preferably, the pump is an electric pump with a variable speed impeller, and the variability of the flow rate is achieved by changing the speed of the variable speed impeller. To change the speed of the variable speed impeller of the pump 12, the pump is equipped with an inverter 12A. This allows the power supply frequency of the pump's electric motor to be changed, thereby changing the impeller speed. Using a pump with a variable speed impeller allows for greater control over the flow rate of the temperature control liquid, resulting in better results in terms of heat exchange at the most appropriate moment in the molding cycle.
[0054] Advantageously, the machine 10 also comprises an electronic control and management device 30, for example a PLC, operatively connected to the various components of the machine (pump 12, heating device 20, heat exchange unit 15, etc.).
[0055] At least one value related to the operating temperature Te of the temperature adjusting liquid and at least one predetermined time-based flow rate change profile Pl of the pump 12 are set in the electronic device 30. Thus, when a synchronization signal is received at a predetermined moment in the molding process in the mold B, the pump 12 moves the temperature adjusting liquid at a variable flow rate based on the predetermined time-based flow rate change profile. Since fluctuations in the pump flow rate are generated by changes in the impeller speed, i.e., the power supply frequency of the pump's electric motor, the predetermined time-based pump flow rate change profile will correspond to the predetermined time-based impeller speed change profile, i.e., the predetermined power supply frequency change profile of the pump's electric motor by the inverter.
[0056] For example, the synchronization signal at a given moment in the molding process in mold B may be a signal from a sensor 40 operatively connected to the electronic device 30 that detects the closing / opening of mold B. This enables the electronic device to instruct the machine to coincide or synchronize the start of the time-based pump flow rate variation profile Pl with the closing of the mold, i.e., the start of the forming phase.
[0057] By knowing the temperature of the forming material in mold B over time, in other words, what the temperature of the mold would be if not regulated by the temperature regulating liquid, it is possible to program appropriate changes in the amount of liquid circulating in the mold, thereby providing the desired amount of liquid at the right moment to achieve the desired mold temperature profile over time, resulting in the desired mold temperature regulation.
[0058] It should be noted that the sensor 40, such as a microswitch, may be applied to the mold B or may be part of the machine 10.
[0059] It should also be noted that the control operation does not contemplate inverse control of mold temperature, but simply the delivery of a given amount of temperature-regulating fluid at a required moment, predetermined (i.e., programmed) before the start of the process. In fact, the electronic device 30 is provided with a "recipe," i.e., settings for a set of predetermined operating parameters based on a particular molding process.
[0060] Indeed, for a forming cycle of a given molding process, which includes a mold closing, a forming phase, and a subsequent mold opening, the machine introduces a flow of temperature regulating fluid into the mold at a flow rate that varies over the time of the forming cycle, where the variation is synchronized with the forming cycle based on, for example, a mold closing signal from a sensor.
[0061] FIG. 2 is a graph illustrating an example of a molding process that includes the injection of plastic material into a mold B.
[0062] In this example, the injection press cycle lasts 33 seconds, i.e., every 33 seconds the mold closes, the plastic material is injected under pressure, the mold is held under pressure for a period of time, the mold is opened with a waiting period during which the part is removed, and then the mold closes again and the cycle begins again.
[0063] The hydraulic circuit 11 of the machine 10 is connected to the cooling ducts of the mold B by a delivery section 13 and a return section 14 .
[0064] In this case, the temperature control liquid sent to the mold for cooling has a substantially constant operating temperature Te, for example 23°C, the fluctuation interval of this value being less than ±3°C, more preferably less than ±1°C.
[0065] In FIG. 2, the temperature of the cooling water sent to the mold is indicated by a dashed line.
[0066] The operating temperature is ensured, for example, by the heating device 20 (or the heat exchange unit 15 if there is no heating device). For example, a temperature probe 20A measures the temperature of the cooling water leaving the heating device, and if the temperature is lower than a set temperature Te, the heating device 20 heats the cooling water until it reaches the temperature Te.
[0067] Returning to the molding cycle, at time t0 the mold closes and injection of the plastic material begins at time t1 (2 seconds after the mold is closed in the example shown in the graph). The mold close / open signal is shown in the graph by the dashed line S.
[0068] As described above, the electronic device 30 is loaded with a predetermined time-based flow rate change profile P1 for the pump 12, synchronized with the mold closure. At moment t0, i.e., upon receipt of the mold closure signal (or after a certain delay, if so programmed), the electronic device 30 communicates with the inverter 12A to maintain the pump motor power frequency, i.e., the rotational speed of the pump impeller, according to the preset profile. For example, during the first few seconds, the pump speed, i.e., the coolant flow rate, remains constant at a value V0 (corresponding to about 15% of the maximum pump impeller speed), and from moment t2, it increases significantly (the coolant flow rate in liters / minute is shown by a continuous line in the graph) to a peak value V1 (reached at moment t4) corresponding to 95% of the maximum pump impeller speed. The pump speed (i.e., flow rate) is then rapidly reduced again to the initial flow rate / speed V0 and remains constant until the end of the cycle. (Note that the change in pump motor power frequency may be stepped, i.e., passing from one frequency to the next without passing through intermediate frequencies; also note that the change in flow rate is clearly continuous and not stepped.)
[0069] The graph in Figure 2 also shows the evolution of the mold temperature (measured at sample points) during the process cycle. This is indicated by the dashed double-dot line. As shown, the mold temperature rises from the closing of the mold (for example, from a value Ti of 75°C) until just after the end of the plastic material injection phase (t1), and then drops until just after the end of the post-pressurization phase t3. Upon mold opening, at moment t5, the mold temperature rises again until it reaches the initial temperature Ti of 75°C.
[0070] Figure 3 shows a graph for the molding of the same part (using the same mold) molded in the example graph shown in Figure 2, except that in this case the conventional technique of cooling the mold by sending cooling water through the mold's cooling ducts is used. In both examples, the starting temperature Ti (the mold's arrival in the molding cycle) is clearly the same. As can be easily seen in the second example shown in Figure 3, the cooling water flow rate is constant throughout the cycle, the operating temperature Te is much higher than in the previous example (constant at about 60°C), and the cycle length is longer (about 40 seconds).
[0071] Returning to the machine according to the invention, if the molding process is interrupted for any reason (for example the injection press is stopped), the electronic control and management unit 30 changes the management parameters of the machine.
[0072] If there is no signal from the process (meaning that in the above example the mold closing signal has not arrived) for a time longer than the threshold Dtx, for example 15 minutes, the electronic device 30 activates the standby mode at the moment tx (i.e. t0+Dtx), which keeps the mold in a preheated state.
[0073] In this regard, see the example graph shown in FIG.
[0074] After the cycle end time (33 seconds from time t0 in the above example), if there is no signal from the process (e.g., a mold closing signal to start a new cycle) during the time interval Dtx, the electronic device 30 commands the heating device 20 to heat the temperature control liquid to the preheating temperature Ti', e.g., the mold closing temperature Ti, i.e., 75°C. The pump flow rate, i.e., the speed of its impeller, is changed to a high value, e.g., the maximum possible speed value Vm (in any case a value greater than the value V1 expected during the cycle for maximum cooling effect), e.g., 100% of the possible speed (i.e., the maximum achievable flow rate). In this way, the mold is gradually heated and a new mold closing signal is awaited, so that the molding cycle can start again as described above.
[0075] Upon receiving a new signal from the process (see graph in Figure 5), the electronic device 30 changes the process parameters again at the instant t0' and switches back to production mode, thus bringing the cooling water temperature from the preheat temperature Ti' to the operating temperature Te for the start of the cycle (23°C in the previous example).
[0076] The first cycle C1 after the waiting / preheating period is "abnormal" because it takes time for the actual temperature of the cooling water to reach the new temperature Te.
[0077] The pump 12 speed naturally varies as a function of process synchronization, i.e., according to a preset time. Also, at moment t4' of cycle C1', the "hard" cooling at speed V1 is switched to "soft" cooling at speed V0 as defined above. From the start of the second molding cycle after shutdown, the temperature is already approaching the operating temperature. A return to full process performance is achieved after four to five molding cycles, depending on various factors, such as mold dimensions, the power of the heating and heat exchange units, and various heat distributions.
[0078] In the embodiment described above, the machine 10 is substantially automated and provides substantially the following external connections to the machine: hydraulic connections to metal, application of microswitches 40 to metal, loading branch 18 to tank 18, electrical wiring of the machine to external systems, and any electronic cabling from the electronics to other parts of the plant.
[0079] In particular, the heat exchange unit 15 and the heat conditioning device 16 form an integrated system inside the machine.
[0080] As shown schematically in FIG. 6, in another embodiment, the thermal conditioning device 16′ may be external to the machine 10 and may be part of a conditioning system within the plant in which the machine operates, for example, and may serve multiple users.
[0081] In this example, a machine is shown in which a single hydraulic circuit is connected to the mold, allowing temperature-controlled fluid to enter the mold at a given temperature and exit the mold at a different temperature. Here, the mold is provided with a single heat exchange process (a single flow of temperature-controlled fluid at a given temperature leaving the mold). In another embodiment, such as the machine 100 shown in FIG. 7, the machine has multiple hydraulic circuits 11, 11', 11" arranged in parallel with each other to differentiate heat exchange options in different parts of the mold. Each hydraulic circuit includes a delivery section 13, 13', 13" and a return section 14, 14', 14" and a pump with an inverter 12, 12', 12", a heating device 20, 20', 20", and a heat exchange unit 15, 15', 15", each operatively connected to an electronic control and management unit 20. The inlet and outlet portions of the second interface sides of the thermal exchange units 15, 15', 15'' are connected in parallel with one another and operatively connected to the inlets and outlets for the thermal regulating fluids by a thermal regulating device 116 external to the machine 100 (although in alternative embodiments the thermal regulating device may be internal as in the embodiment shown in FIG. 1). The operation of the machine is substantially similar to that described above, with each of the thermal regulating fluids having its own temperature and flow rate profile. Its use is synchronized with the others.
[0082] It should be noted that the above examples represent non-limiting possible embodiments of the present invention, which may be varied in form and arrangement without departing from the scope of the underlying concept of the invention. The reference signs in the appended claims are intended only to facilitate understanding in view of the above description and the accompanying drawings, and do not limit the scope of protection.
Claims
1. 1. A machine for temperature control of a product-forming section of an industrial plant including a mould for forming a product, said machine comprising at least one temperature-regulating hydraulic circuit adapted to be operatively connected to said product-forming section of said industrial plant for forming a product, a temperature-regulating fluid circulating through said hydraulic circuit; The hydraulic circuit includes: a pump for recirculating said temperature-regulating liquid, of the variable flow type; a delivery section downstream of the pump for delivering the temperature control liquid from the hydraulic circuit to the product forming section of the industrial plant; a return section for returning the temperature regulating fluid from the product forming section of the industrial plant to the hydraulic circuit; a heat exchange unit for said temperature control liquid, in which said temperature control liquid is temperature-controlled; Equipped with the machine further comprises an electronic control and management device configured with at least one value for an operating temperature of the temperature regulating liquid and at least one predetermined time-based pump flow rate variation profile, wherein the pump moves the temperature regulating liquid over time at a variable flow rate based on the pump flow rate variation profile when a synchronization signal is received at a predetermined moment in the industrial process of product formation in the product formation section of the industrial plant to be temperature regulated in accordance with the pump flow rate variation profile; the machine is adapted to operate cyclically; The electronic control and management device receiving a signal from the product formation section of the industrial plant that is to be temperature regulated; the signal can be synchronized with a flow rate change profile for the pump, so that from a given moment during the operating cycle of the machine, the flow rate of the pump can be changed in a predetermined manner; the machine is adapted to cool the mold; the machine is adapted to receive a closing signal for the forming tool from the product forming section of the industrial plant comprising the forming tool that is subject to temperature regulation; the temperature control liquid is fed by the pump to the mould at a constant operating temperature during the moulding phase, and a phase is provided in which the temperature of the temperature control liquid is adjusted before being fed to the mould for temperature values lower than the operating temperature, in a molding cycle including close-open-close of the molding mold, the pump flow rate change profile for the temperature regulating liquid entering the molding mold is synchronized with the molding cycle based on the close signal to provide a low initial flow rate value for gradually cooling the molding mold and a subsequent high flow rate value greater than the initial flow rate value for more intense cooling of the molding mold; the pump is of a type having a variable speed impeller, whereby varying the speed of the variable speed impeller varies the flow rate of the pump, and the predetermined time-based pump flow rate variation profile corresponds to a predetermined time-based impeller speed variation profile; machine.
2. 2. The machine of claim 1, wherein the pump comprises an inverter adapted to manage the rotational speed of the variable speed impeller of the pump, whereby the predetermined time-based pump flow rate variation profile corresponds by the inverter to a predetermined profile of variation in power supply frequency of the pump.
3. 2. The machine according to claim 1, wherein a temperature-adjusted liquid heating device is provided downstream of the heat exchange unit and upstream of the delivery section to the product forming section of the industrial plant, the heating device being adapted to heat the temperature-adjusted liquid to the operating temperature if necessary when the temperature of the temperature-adjusted liquid entering the heating device is low.
4. The machine of claim 3 , wherein the heating device is downstream of the pump.
5. 2. The machine of claim 1, wherein the hydraulic circuit comprises a tank for the temperature-regulating fluid interposed between the pump and the heat exchange unit, the tank being at ambient pressure or being closed and held in a pressure range not including ambient pressure.
6. 6. The machine of claim 5, wherein the tank is operatively connected to a branch for charging the temperature-regulating fluid from a supply network external to the machine.
7. Equipped with a heat regulator, The machine of claim 1 , wherein the thermal conditioning device is adapted to supply the heat exchange unit with a thermal conditioning fluid adapted to exchange heat with the temperature conditioned fluid.
8. 8. The machine of claim 7, wherein the heat conditioning device together with the heat exchange unit form a refrigeration system entirely within the machine, the heat exchange unit forming a condenser or evaporator for the refrigeration system.
9. 8. The machine of claim 7, wherein the thermal conditioning device is a refrigeration unit that is a separate element from a thermal conditioning unit, the refrigeration unit being adapted to supply a thermal conditioning fluid to the thermal conditioning unit for conditioning the temperature conditioning fluid by heat exchange.
10. 10. The machine of claim 1, wherein the heat exchange unit has inlet and outlet pipes for supplying a heat conditioning fluid and is operably connected to a heat conditioning system external to the machine.
11. 2. The machine of claim 1, wherein the heat exchange unit for the temperature conditioned fluid is located between the return part and the pump.
12. 2. The machine of claim 1, wherein the delivery and return portions for the temperature conditioned fluid are adapted to be operatively connected to pipes within the mold so as to deliver the temperature conditioned fluid into the mold for temperature conditioning and return the reconditioned temperature conditioned fluid.
13. 2. The machine of claim 1, wherein the product forming section of the industrial plant comprises a forming tool that is subject to regulation, and the machine is adapted to regulate the temperature of the forming tool, the regulation being cooling or heating or both.
14. if the machine does not receive a signal from the product forming section of the industrial plant that includes the mold to be temperature regulated within a given time interval, modifying the pump flow rate profile to maintain a low flow rate in order to gradually cool the mold; the value for the operating temperature of the temperature regulating liquid entering the mould is increased; - when a new signal is received following the time interval without the signal, the temperature regulating fluid flow rate change profile into the molding tool returns to the predetermined profile for a normal molding cycle; 10. The machine of claim 1.
15. 15. The machine according to claim 14, wherein the value for the operating temperature of the temperature-regulating liquid entering the mould is raised to a value corresponding to the temperature value of the mould at the moment the mould is closed.
16. The synchronization signal at a given moment of the industrial process of product formation in the product formation part of the industrial plant that is to be temperature regulated is - Mould closure signal, - Molding mold opening signal, a signal to initiate injection of molding material into the mold; a signal to terminate injection of molding material into the mold; a signal for the injection press to release purge gas into the mold after injection; any signals sent by said industrial plant relating to a phase of the formation process that is always repeated at the same moment in the formation cycle; and Any signal sent by the industrial plant relating to a phase of the forming process that is always repeated at the same moment in the forming cycle, including the opening and closing of the forming tool.
2. The machine of claim 1, wherein the
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