Display device, control device, and injection molding machine

JP2024060935A5Pending Publication Date: 2025-06-30SUMITOMO HEAVY IND LTD
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Patent Information

Application Number
JP2022168530
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2022-10-20
Publication Date
2025-06-30

AI Technical Summary

Technical Problem

Conventional display devices for injection molding machines separate the display of current and predicted power consumption data on different screens, making it difficult for users to easily compare actual and comparative power consumption information.

Method used

A display device that integrates performance and comparison information on the same screen, allowing users to view and compare actual power consumption with arbitrarily set conditions, including past data and predicted values, facilitating efficient power consumption analysis.

Benefits of technology

Enables easy comparison and analysis of power consumption data, aiding in setting more efficient molding conditions by displaying actual and comparative power consumption information simultaneously.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a technique that enables a simple comparison of power consumption for injection molding, set at the discretion of a user.SOLUTION: A display device shows a display screen with information about injection molding. The display screen simultaneously shows an actual results information display field, which shows actual results information about power consumption measured during execution of the injection molding, and a comparison information display field, which shows comparison information about power consumption during the injection molding, for comparison with the actual results information about power consumption, in the same display format as that of the actual results information display field.SELECTED DRAWING: Figure 5
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Description

[Technical field]

[0001] The present disclosure relates to a display device, a control device, and an injection molding machine. [Background technology]

[0002] Patent Document 1 discloses a control device for an injection molding machine that measures the power consumption during injection molding, calculates the amount of power, and displays it on a display device. This control device has a dedicated display screen for displaying the power consumption, and can display the amount of power together with conversion information. The conversion information includes, for example, information related to a future prediction obtained based on a conversion database of power consumption relative to changes in molding conditions.

[0003] Conventional display devices display current data and predicted data, but switch between displaying the current data and displaying the predicted data on separate screens (see, for example,

[0043] of Patent Document 1). Therefore, the current data and the predicted data are not displayed on the same screen. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] JP 2009-292155 A Summary of the Invention [Problem to be solved by the invention]

[0005] Incidentally, when a user adjusts the power consumption of injection molding, it is preferable to provide, on the same screen, the actual power consumption of the injection molding in operation and comparative information in the same form as this actual power consumption.

[0006] The present invention provides a technique that enables easy comparison of the actual power consumption amount of injection molding with comparative information. [Means for solving the problem]

[0007] According to one aspect of the present invention, there is provided a display device that displays a display screen having information on injection molding, the display screen displaying together an actual information display section that displays actual information on the amount of power consumption measured when the injection molding is performed, and a comparison information display section that displays comparison information on the amount of power consumption of the injection molding for comparison with the actual information on the amount of power consumption in the same display format as the actual information display section. Effect of the Invention

[0008] According to one aspect, it is possible to easily compare the power consumption amounts of injection molding that are arbitrarily set by the user. [Brief description of the drawings]

[0009] [Figure 1] FIG. 2 is a diagram showing a state when mold opening is completed in the injection molding machine according to the embodiment. [Diagram 2] FIG. 2 is a diagram showing a state during mold clamping of the injection molding machine according to the embodiment. [Diagram 3] FIG. 2 is a functional block diagram illustrating an example of components of a control device. [Figure 4] FIG. 2 is a diagram showing an example of a molding cycle process. [Diagram 5] FIG. 2 is a diagram showing an example of a display screen of the display device according to the first embodiment. [Figure 6] FIG. 11 is a diagram partially illustrating a display screen according to a second embodiment. [Figure 7] FIG. 13 is a diagram showing an example of a process-specific screen section according to a modified example. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0010] Hereinafter, an embodiment of the present disclosure will be described with reference to the drawings. In the drawings, the same components are denoted by the same reference numerals, and duplicated descriptions may be omitted.

[0011] (injection molding machine) Fig. 1 is a diagram showing a state of an injection molding machine according to an embodiment when mold opening is completed. Fig. 2 is a diagram showing a state of an injection molding machine according to an embodiment when mold clamping is performed. In this specification, the X-axis direction, the Y-axis direction, and the Z-axis direction are perpendicular to each other. The X-axis direction and the Y-axis direction represent the horizontal direction, and the Z-axis direction represents the vertical direction. When the mold clamping device 100 is of a horizontal type, the X-axis direction is the mold opening / closing direction, and the Y-axis direction is the width direction of the injection molding machine 10. The negative side of the Y-axis direction is called the operation side, and the positive side of the Y-axis direction is called the anti-operation side.

[0012] As shown in FIG. 1 and FIG. 2, the injection molding machine 10 includes a mold clamping device 100 that opens and closes a mold device 800, an ejector device 200 that ejects a molded product molded by the mold device 800, an injection device 300 that injects a molding material into the mold device 800, a moving device 400 that moves the injection device 300 forward and backward relative to the mold device 800, a control device 700 that controls each component of the injection molding machine 10, and a frame 900 that supports each component of the injection molding machine 10. The frame 900 includes a mold clamping device frame 910 that supports the mold clamping device 100, and an injection device frame 920 that supports the injection device 300. The mold clamping device frame 910 and the injection device frame 920 are each installed on the floor 2 via a leveling adjuster 930. The control device 700 is disposed in the internal space of the injection device frame 920. Hereinafter, each component of the injection molding machine 10 will be described.

[0013] (mold clamping device) In the description of the clamping unit 100, the moving direction of the movable platen 120 during mold closing (for example, the positive direction of the X-axis) is the front, and the moving direction of the movable platen 120 during mold opening (for example, the negative direction of the X-axis) is the rear.

[0014] The mold clamping device 100 performs mold closing, pressure increase, mold clamping, depressurization, and mold opening of the mold device 800. The mold device 800 includes a fixed mold 810 and a movable mold 820.

[0015] The mold clamping apparatus 100 is, for example, a horizontal type, and the mold opening and closing direction is horizontal. The mold clamping apparatus 100 has a fixed platen 110 to which a fixed mold 810 is attached, a movable platen 120 to which a movable mold 820 is attached, and a movement mechanism 102 that moves the movable platen 120 in the mold opening and closing direction relative to the fixed platen 110.

[0016] The stationary platen 110 is fixed to the mold clamping unit frame 910. A stationary mold 810 is attached to the surface of the stationary platen 110 that faces the movable platen 120.

[0017] The movable platen 120 is disposed so as to be movable in the mold opening / closing direction relative to the mold clamping unit frame 910. A guide 101 for guiding the movable platen 120 is disposed on the mold clamping unit frame 910. A movable mold 820 is attached to the surface of the movable platen 120 facing the fixed platen 110.

[0018] The moving mechanism 102 advances and retreats the movable platen 120 relative to the fixed platen 110, thereby performing mold closing, pressurization, mold clamping, depressurization, and mold opening of the mold apparatus 800. The moving mechanism 102 has a toggle support 130 disposed at a distance from the fixed platen 110, a tie bar 140 connecting the fixed platen 110 and the toggle support 130, a toggle mechanism 150 that moves the movable platen 120 in the mold opening and closing direction relative to the toggle support 130, a mold clamping motor 160 that operates the toggle mechanism 150, a motion conversion mechanism 170 that converts the rotational motion of the mold clamping motor 160 into linear motion, and a mold thickness adjustment mechanism 180 that adjusts the distance between the fixed platen 110 and the toggle support 130.

[0019] The toggle support 130 is disposed at a distance from the fixed platen 110, and is placed on the mold clamping unit frame 910 so as to be freely movable in the mold opening and closing direction. The toggle support 130 may be disposed so as to be freely movable along a guide laid on the mold clamping unit frame 910. The guide of the toggle support 130 may be the same as the guide 101 of the movable platen 120.

[0020] In this embodiment, the fixed platen 110 is fixed to the mold clamping unit frame 910, and the toggle support 130 is arranged so as to be freely movable in the mold opening and closing direction relative to the mold clamping unit frame 910, but the toggle support 130 may be fixed to the mold clamping unit frame 910, and the fixed platen 110 may be arranged so as to be freely movable in the mold opening and closing direction relative to the mold clamping unit frame 910.

[0021] The tie bar 140 connects the fixed platen 110 and the toggle support 130 at a distance L in the mold opening / closing direction. A plurality of tie bars 140 (for example, four) may be used. The plurality of tie bars 140 are arranged parallel to the mold opening / closing direction and extend according to the mold clamping force. At least one tie bar 140 may be provided with a tie bar strain detector 141 that detects strain of the tie bar 140. The tie bar strain detector 141 sends a signal indicating the detection result to the control device 700. The detection result of the tie bar strain detector 141 is used for detecting the mold clamping force, etc.

[0022] In this embodiment, the tie bar strain detector 141 is used as a clamping force detector for detecting the clamping force, but the present invention is not limited to this. The clamping force detector is not limited to the strain gauge type, and may be a piezoelectric type, a capacitive type, a hydraulic type, an electromagnetic type, or the like, and the attachment position is not limited to the tie bar 140.

[0023] The toggle mechanism 150 is disposed between the movable platen 120 and the toggle support 130, and moves the movable platen 120 relative to the toggle support 130 in the mold opening / closing direction. The toggle mechanism 150 has a crosshead 151 that moves in the mold opening / closing direction, and a pair of link groups that bend and stretch with the movement of the crosshead 151. Each of the pair of link groups has a first link 152 and a second link 153 that are connected to bendable and stretchable by a pin or the like. The first link 152 is attached to the movable platen 120 by a pin or the like so as to be swingable. The second link 153 is attached to the toggle support 130 by a pin or the like so as to be swingable. The second link 153 is attached to the crosshead 151 via a third link 154. When the crosshead 151 is advanced or retreated relative to the toggle support 130, the first link 152 and the second link 153 bend and stretch, and the movable platen 120 advances or retreats relative to the toggle support 130.

[0024] The configuration of the toggle mechanism 150 is not limited to the configuration shown in Figures 1 and 2. For example, although the number of joints in each link group is five in Figures 1 and 2, it may be four, and one end of the third link 154 may be connected to a joint between the first link 152 and the second link 153.

[0025] The mold clamping motor 160 is attached to the toggle support 130 and operates the toggle mechanism 150. The mold clamping motor 160 advances and retreats the crosshead 151 relative to the toggle support 130, thereby bending and extending the first link 152 and the second link 153 and advancing and retreating the movable platen 120 relative to the toggle support 130. The mold clamping motor 160 is directly connected to the motion conversion mechanism 170, but may also be connected to the motion conversion mechanism 170 via a belt, a pulley, or the like.

[0026] The motion conversion mechanism 170 converts the rotational motion of the mold clamping motor 160 into the linear motion of the crosshead 151. The motion conversion mechanism 170 includes a screw shaft and a screw nut that screws onto the screw shaft. A ball or roller may be interposed between the screw shaft and the screw nut.

[0027] The mold clamping unit 100 performs a mold closing process, a pressure increase process, a mold clamping process, a pressure release process, a mold opening process, and the like under the control of the control device 700.

[0028] In the mold closing process, the mold clamping motor 160 is driven to move the crosshead 151 forward at a set moving speed to a mold closing completion position, thereby moving the movable platen 120 forward and bringing the movable mold 820 into contact with the fixed mold 810. The position and moving speed of the crosshead 151 are detected by using, for example, a mold clamping motor encoder 161. The mold clamping motor encoder 161 detects the rotation of the mold clamping motor 160 and sends a signal indicating the detection result to the control device 700.

[0029] The crosshead position detector that detects the position of the crosshead 151 and the crosshead movement speed detector that detects the movement speed of the crosshead 151 are not limited to the mold clamping motor encoder 161, and general devices can be used. Furthermore, the movable platen position detector that detects the position of the movable platen 120 and the movable platen movement speed detector that detects the movement speed of the movable platen 120 are not limited to the mold clamping motor encoder 161, and general devices can be used.

[0030] In the pressure increasing step, the mold clamping motor 160 is further driven to move the crosshead 151 further forward from the mold closing completion position to the mold clamping position, thereby generating a mold clamping force.

[0031] In the mold clamping process, the mold clamping motor 160 is driven to maintain the position of the crosshead 151 at the mold clamping position. In the mold clamping process, the mold clamping force generated in the pressure increase process is maintained. In the mold clamping process, a cavity space 801 (see FIG. 2) is formed between the movable mold 820 and the fixed mold 810, and the injection device 300 fills the cavity space 801 with liquid molding material. The filled molding material is solidified to obtain a molded product.

[0032] The number of cavity spaces 801 may be one or more. In the latter case, multiple molded products are obtained at the same time. An insert material may be placed in a part of the cavity space 801, and another part of the cavity space 801 may be filled with a molding material. A molded product in which the insert material and the molding material are integrated is obtained.

[0033] In the depressurization process, the mold clamping motor 160 is driven to move the crosshead 151 back from the mold clamping position to the mold opening start position, thereby moving the movable platen 120 back and reducing the mold clamping force. The mold opening start position and the mold closing completion position may be the same position.

[0034] In the mold opening process, the mold clamping motor 160 is driven to move the crosshead 151 backward at a set moving speed from the mold opening start position to the mold opening completion position, thereby moving the movable platen 120 backward and separating the movable mold 820 from the fixed mold 810. After that, the ejector unit 200 ejects the molded product from the movable mold 820.

[0035] The setting conditions in the mold closing process, the pressure increase process, and the mold clamping process are set together as a series of setting conditions. For example, the moving speed and position of the crosshead 151 in the mold closing process and the pressure increase process (including the mold closing start position, the moving speed switching position, the mold closing completion position, and the mold clamping position) and the mold clamping force are set together as a series of setting conditions. The mold closing start position, the moving speed switching position, the mold closing completion position, and the mold clamping position are arranged in this order from the rear side to the front, and represent the start point and the end point of the section in which the moving speed is set. The moving speed is set for each section. There may be one or more moving speed switching positions. The moving speed switching position does not have to be set. Only one of the mold clamping position and the mold clamping force may be set.

[0036] The setting conditions in the depressurization process and mold opening process are set in the same manner. For example, the movement speed and position of the crosshead 151 in the depressurization process and mold opening process (mold opening start position, movement speed switching position, and mold opening completion position) are set together as a series of setting conditions. The mold opening start position, movement speed switching position, and mold opening completion position are arranged in this order from the front to the rear, and represent the start and end points of the section in which the movement speed is set. The movement speed is set for each section. There may be one or more movement speed switching positions. The movement speed switching position does not have to be set. The mold opening start position and the mold closing completion position may be the same position. Also, the mold opening completion position and the mold closing start position may be the same position.

[0037] It should be noted that the moving speed and position of the movable platen 120 may be set instead of the moving speed and position of the crosshead 151. Moreover, the clamping force may be set instead of the position of the crosshead (e.g., the clamping position) or the position of the movable platen.

[0038] Incidentally, the toggle mechanism 150 amplifies the driving force of the mold clamping motor 160 and transmits it to the movable platen 120. The amplification ratio is also called the toggle ratio. The toggle ratio changes according to the angle θ between the first link 152 and the second link 153 (hereinafter also referred to as the "link angle θ"). The link angle θ is determined from the position of the crosshead 151. When the link angle θ is 180°, the toggle ratio is maximum.

[0039] When the thickness of the mold device 800 changes due to replacement of the mold device 800 or a temperature change of the mold device 800, a mold thickness adjustment is performed so that a predetermined clamping force is obtained during mold clamping. In the mold thickness adjustment, for example, the distance L between the fixed platen 110 and the toggle support 130 is adjusted so that the link angle θ of the toggle mechanism 150 becomes a predetermined angle at the mold touch time when the movable mold 820 touches the fixed mold 810.

[0040] The mold clamping device 100 has a mold thickness adjustment mechanism 180. The mold thickness adjustment mechanism 180 adjusts the mold thickness by adjusting the distance L between the fixed platen 110 and the toggle support 130. The mold thickness adjustment is performed, for example, between the end of a molding cycle and the start of the next molding cycle. The mold thickness adjustment mechanism 180 has, for example, a screw shaft 181 formed at the rear end of the tie bar 140, a screw nut 182 held rotatably and immovably on the toggle support 130, and a mold thickness adjustment motor 183 that rotates the screw nut 182 screwed onto the screw shaft 181.

[0041] The screw shaft 181 and the screw nut 182 are provided for each tie bar 140. The rotational driving force of the mold thickness adjustment motor 183 may be transmitted to the multiple screw nuts 182 via a rotational driving force transmission unit 185. The multiple screw nuts 182 can be rotated synchronously. Note that by changing the transmission path of the rotational driving force transmission unit 185, it is also possible to rotate the multiple screw nuts 182 individually.

[0042] The rotational drive force transmission unit 185 is composed of, for example, gears. In this case, a driven gear is formed on the outer periphery of each screw nut 182, a drive gear is attached to the output shaft of the mold thickness adjustment motor 183, and an intermediate gear that meshes with the multiple driven gears and the drive gear is rotatably held in the center of the toggle support 130. Note that the rotational drive force transmission unit 185 may be composed of a belt, a pulley, or the like, instead of gears.

[0043] The operation of the mold thickness adjustment mechanism 180 is controlled by a control device 700. The control device 700 drives the mold thickness adjustment motor 183 to rotate the screw nut 182. As a result, the position of the toggle support 130 relative to the tie bar 140 is adjusted, and the interval L between the fixed platen 110 and the toggle support 130 is adjusted. Note that a plurality of mold thickness adjustment mechanisms may be used in combination.

[0044] The distance L is detected using a mold thickness adjustment motor encoder 184. The mold thickness adjustment motor encoder 184 detects the amount of rotation and the direction of rotation of the mold thickness adjustment motor 183, and sends a signal indicating the detection result to the control device 700. The detection result of the mold thickness adjustment motor encoder 184 is used to monitor and control the position of the toggle support 130 and the distance L. Note that the toggle support position detector that detects the position of the toggle support 130 and the distance detector that detects the distance L are not limited to the mold thickness adjustment motor encoder 184, and general detectors can be used.

[0045] The mold clamping apparatus 100 may have a mold temperature regulator that regulates the temperature of the mold apparatus 800. The mold apparatus 800 has a flow path for a temperature control medium therein. The mold temperature regulator regulates the temperature of the mold apparatus 800 by regulating the temperature of the temperature control medium supplied to the flow path of the mold apparatus 800.

[0046] Incidentally, the mold clamping unit 100 of this embodiment is of a horizontal type in which the mold opening and closing direction is horizontal, but it may be of a vertical type in which the mold opening and closing direction is vertical.

[0047] Although the mold clamping apparatus 100 of the present embodiment has a mold clamping motor 160 as a drive unit, it may have a hydraulic cylinder instead of the mold clamping motor 160. Also, the mold clamping apparatus 100 may have a linear motor for opening and closing the mold, and an electromagnet for mold clamping.

[0048] (Ejector device) In describing the ejector unit 200, similar to the description of the mold clamping unit 100, the direction of movement of the movable platen 120 during mold closing (e.g., the positive direction of the X-axis) will be referred to as the forward direction, and the direction of movement of the movable platen 120 during mold opening (e.g., the negative direction of the X-axis) will be referred to as the rearward direction.

[0049] The ejector unit 200 is attached to the movable platen 120 and moves forward and backward together with the movable platen 120. The ejector unit 200 has an ejector rod 210 that ejects a molded product from the mold device 800, and a drive mechanism 220 that moves the ejector rod 210 in the movement direction of the movable platen 120 (X-axis direction).

[0050] The ejector rod 210 is arranged so as to be able to move forward and backward in a through hole of the movable platen 120. The front end of the ejector rod 210 contacts an ejector plate 826 of the movable mold 820. The front end of the ejector rod 210 may or may not be connected to the ejector plate 826.

[0051] The drive mechanism 220 includes, for example, an ejector motor and a motion conversion mechanism that converts the rotational motion of the ejector motor into the linear motion of the ejector rod 210. The motion conversion mechanism includes a screw shaft and a screw nut that screws onto the screw shaft. A ball or roller may be interposed between the screw shaft and the screw nut.

[0052] The ejector unit 200 performs an ejection process under the control of the control unit 700. In the ejection process, the ejector rod 210 advances from the standby position to the ejection position at a set moving speed, thereby advancing the ejector plate 826 and ejecting the molded product. After that, the ejector motor is driven to move the ejector rod 210 backward at the set moving speed, and the ejector plate 826 backward to the original standby position.

[0053] The position and moving speed of the ejector rod 210 are detected, for example, by using an ejector motor encoder. The ejector motor encoder detects the rotation of the ejector motor and sends a signal indicating the detection result to the control device 700. Note that the ejector rod position detector that detects the position of the ejector rod 210 and the ejector rod moving speed detector that detects the moving speed of the ejector rod 210 are not limited to the ejector motor encoder, and general types can be used.

[0054] (injection device) In the description of the injection device 300, unlike the description of the mold clamping device 100 and the description of the ejector device 200, the movement direction of the screw 330 during filling (e.g., the negative X-axis direction) is described as the forward direction, and the movement direction of the screw 330 during metering (e.g., the positive X-axis direction) is described as the rearward direction.

[0055] The injection device 300 is installed on a slide base 301, and the slide base 301 is disposed so as to be movable forward and backward with respect to the injection device frame 920. The injection device 300 is disposed so as to be movable forward and backward with respect to the mold device 800. The injection device 300 touches the mold device 800 and fills a cavity space 801 in the mold device 800 with a molding material. The injection device 300 has, for example, a cylinder 310 for heating the molding material, a nozzle 320 provided at the front end of the cylinder 310, a screw 330 disposed in the cylinder 310 so as to be movable forward and backward and rotatable, a metering motor 340 for rotating the screw 330, an injection motor 350 for moving the screw 330 forward and backward, and a load detector 360 for detecting a load transmitted between the injection motor 350 and the screw 330.

[0056] The cylinder 310 heats the molding material supplied to the inside from a supply port 311. The molding material includes, for example, a resin. The molding material is formed, for example, in the shape of pellets, and is supplied to the supply port 311 in a solid state. The supply port 311 is formed at the rear of the cylinder 310. A cooler 312 such as a water-cooled cylinder is provided on the outer periphery of the rear of the cylinder 310. A first heater 313 such as a band heater and a first temperature detector 314 are provided on the outer periphery of the cylinder 310, forward of the cooler 312.

[0057] The cylinder 310 is divided into a plurality of zones in the axial direction (e.g., the X-axis direction) of the cylinder 310. A first heater 313 and a first temperature detector 314 are provided in each of the plurality of zones. A set temperature is set in each of the plurality of zones, and the control device 700 controls the first heater 313 so that the detected temperature of the first temperature detector 314 becomes the set temperature.

[0058] The nozzle 320 is provided at the front end of the cylinder 310, and is pressed against the mold device 800. A second heater 323 and a second temperature detector 324 are provided on the outer periphery of the nozzle 320. The control device 700 controls the second heater 323 so that the detected temperature of the nozzle 320 becomes the set temperature.

[0059] The screw 330 is disposed in the cylinder 310 so as to be rotatable and movable forward and backward. When the screw 330 is rotated, the molding material is sent forward along the spiral groove of the screw 330. As the molding material is sent forward, it is gradually melted by heat from the cylinder 310. As the liquid molding material is sent forward of the screw 330 and accumulates in the front part of the cylinder 310, the screw 330 is moved backward. Thereafter, when the screw 330 is moved forward, the liquid molding material accumulated in front of the screw 330 is injected from the nozzle 320 and filled into the mold device 800.

[0060] A check ring 331 is attached to the front of the screw 330 so as to be movable back and forth as a check valve for preventing the backflow of molding material from the front to the rear of the screw 330 when the screw 330 is pushed forward.

[0061] When the screw 330 is moved forward, the backflow prevention ring 331 is pushed backward by the pressure of the molding material in front of the screw 330, and moves backward relatively to the screw 330 to a blocking position (see FIG. 2) where the flow path of the molding material is blocked. This prevents the molding material accumulated in front of the screw 330 from flowing backward.

[0062] On the other hand, when the screw 330 is rotated, the backflow prevention ring 331 is pushed forward by the pressure of the molding material sent forward along the spiral groove of the screw 330, and moves forward relatively to the screw 330 to an open position (see FIG. 1) where the flow path of the molding material is opened. As a result, the molding material is sent forward of the screw 330.

[0063] The backflow prevention ring 331 may be either a co-rotating type that rotates together with the screw 330 or a non-co-rotating type that does not rotate together with the screw 330.

[0064] The injection device 300 may have a drive source for moving the backflow prevention ring 331 back and forth between the open position and the closed position relative to the screw 330.

[0065] The metering motor 340 rotates the screw 330. The drive source for rotating the screw 330 is not limited to the metering motor 340, and may be, for example, a hydraulic pump.

[0066] The injection motor 350 advances and retreats the screw 330. A motion conversion mechanism that converts the rotational motion of the injection motor 350 into the linear motion of the screw 330 is provided between the injection motor 350 and the screw 330. The motion conversion mechanism has, for example, a screw shaft and a screw nut that screws onto the screw shaft. A ball or roller may be provided between the screw shaft and the screw nut. The drive source that advances and retreats the screw 330 is not limited to the injection motor 350, and may be, for example, a hydraulic cylinder.

[0067] The load detector 360 detects the load transmitted between the injection motor 350 and the screw 330. The detected load is converted into pressure by the control device 700. The load detector 360 is provided on a load transmission path between the injection motor 350 and the screw 330, and detects the load acting on the load detector 360.

[0068] The load detector 360 sends a signal of the detected load to the control device 700. The load detected by the load detector 360 is converted into pressure acting between the screw 330 and the molding material, and is used to control and monitor the pressure that the screw 330 receives from the molding material, the back pressure on the screw 330, the pressure that the screw 330 acts on the molding material, and the like.

[0069] The pressure detector for detecting the pressure of the molding material is not limited to the load detector 360, and a general detector may be used. For example, a nozzle pressure sensor or a mold internal pressure sensor may be used. The nozzle pressure sensor is installed in the nozzle 320. The mold internal pressure sensor is installed inside the mold device 800.

[0070] The injection device 300 performs a metering process, a filling process, a pressure holding process, and the like under the control of the control device 700. The filling process and the pressure holding process may be collectively referred to as the injection process.

[0071] In the metering process, the metering motor 340 is driven to rotate the screw 330 at a set rotation speed, and the molding material is sent forward along the spiral groove of the screw 330. As a result, the molding material is gradually melted. As the liquid molding material is sent forward of the screw 330 and accumulates at the front of the cylinder 310, the screw 330 is moved backward. The rotation speed of the screw 330 is detected, for example, by using a metering motor encoder 341. The metering motor encoder 341 detects the rotation of the metering motor 340 and sends a signal indicating the detection result to the control device 700. Note that the screw rotation speed detector that detects the rotation speed of the screw 330 is not limited to the metering motor encoder 341, and a general one can be used.

[0072] In the metering process, in order to restrict abrupt retraction of the screw 330, a set back pressure may be applied to the screw 330 by driving the injection motor 350. The back pressure on the screw 330 is detected, for example, by using a load detector 360. When the screw 330 retracts to the metering completion position and a predetermined amount of molding material is accumulated in front of the screw 330, the metering process is completed.

[0073] The position and rotation speed of the screw 330 in the metering process are set together as a series of setting conditions. For example, a metering start position, a rotation speed switching position, and a metering completion position are set. These positions are arranged in this order from the front to the rear, and represent the start and end points of the section in which the rotation speed is set. The rotation speed is set for each section. There may be one or more rotation speed switching positions. The rotation speed switching positions do not have to be set. In addition, a back pressure is set for each section.

[0074] In the filling step, the injection motor 350 is driven to move the screw 330 forward at a set moving speed, and the liquid molding material accumulated in front of the screw 330 is filled into the cavity space 801 in the mold device 800. The position and moving speed of the screw 330 are detected, for example, by using an injection motor encoder 351. The injection motor encoder 351 detects the rotation of the injection motor 350 and sends a signal indicating the detection result to the control device 700. When the position of the screw 330 reaches a set position, switching from the filling step to the pressure holding step (so-called V / P switching) is performed. The position where the V / P switching is performed is also called the V / P switching position. The set moving speed of the screw 330 may be changed depending on the position of the screw 330, time, etc.

[0075] The position and movement speed of the screw 330 in the filling process are set together as a series of setting conditions. For example, a filling start position (also called an "injection start position"), a movement speed switching position, and a V / P switching position are set. These positions are arranged in this order from the rear side to the front, and represent the start and end points of the section for which the movement speed is set. The movement speed is set for each section. There may be one or more movement speed switching positions. The movement speed switching positions do not have to be set.

[0076] An upper limit value for the pressure of the screw 330 is set for each section in which the moving speed of the screw 330 is set. The pressure of the screw 330 is detected by a load detector 360. When the pressure of the screw 330 is equal to or lower than the set pressure, the screw 330 is advanced at the set moving speed. On the other hand, when the pressure of the screw 330 exceeds the set pressure, the screw 330 is advanced at a moving speed slower than the set moving speed so that the pressure of the screw 330 is equal to or lower than the set pressure, for the purpose of protecting the mold.

[0077] After the position of the screw 330 reaches the V / P switching position in the filling process, the screw 330 may be temporarily stopped at the V / P switching position, and then the V / P switching may be performed. Immediately before the V / P switching, instead of stopping the screw 330, the screw 330 may be moved forward or backward at a slow speed. In addition, the screw position detector that detects the position of the screw 330 and the screw movement speed detector that detects the movement speed of the screw 330 are not limited to the injection motor encoder 351, and general detectors may be used.

[0078] In the holding pressure step, the injection motor 350 is driven to push the screw 330 forward, and the pressure of the molding material at the front end of the screw 330 (hereinafter also referred to as "holding pressure") is maintained at a set pressure, and the molding material remaining in the cylinder 310 is pushed toward the mold device 800. The molding material that is insufficient due to cooling contraction in the mold device 800 can be replenished. The holding pressure is detected, for example, by a load detector 360. The set value of the holding pressure may be changed depending on the elapsed time from the start of the holding pressure step. The holding pressure and the holding time for which the holding pressure is held in the holding pressure step may each be set multiple times, or may be set collectively as a series of setting conditions.

[0079] In the dwelling step, the molding material in the cavity space 801 in the mold device 800 is gradually cooled, and when the dwelling step is completed, the entrance to the cavity space 801 is blocked by the solidified molding material. This state is called a gate seal, and prevents the molding material from flowing back from the cavity space 801. After the dwelling step, the cooling step is started. In the cooling step, the molding material in the cavity space 801 is solidified. A measuring step may be performed during the cooling step in order to shorten the molding cycle time.

[0080] Incidentally, the injection device 300 of this embodiment is of an in-line screw type, but may be of a pre-plastication type or the like. An injection device of the pre-plastication type supplies molding material molten in a plasticization cylinder to an injection cylinder, and injects the molding material from the injection cylinder into a mold device. A screw is disposed in the plasticization cylinder so as to be rotatable but unable to move forward or backward, or a screw is disposed so as to be rotatable and able to move forward or backward. Meanwhile, a plunger is disposed in the injection cylinder so as to be able to move forward or backward.

[0081] Furthermore, the injection device 300 of this embodiment is a horizontal type in which the axial direction of the cylinder 310 is horizontal, but may be a vertical type in which the axial direction of the cylinder 310 is vertical. A mold clamping device to be combined with the vertical injection device 300 may be either a vertical type or a horizontal type. Similarly, a mold clamping device to be combined with the horizontal injection device 300 may be either a horizontal type or a vertical type.

[0082] (Mobile device) In the description of the moving device 400, similar to the description of the injection device 300, the moving direction of the screw 330 during filling (for example, the negative X-axis direction) is the front, and the moving direction of the screw 330 during metering (for example, the positive X-axis direction) is the rear.

[0083] The moving device 400 moves the injection device 300 forward and backward relative to the mold device 800. In addition, the moving device 400 presses the nozzle 320 against the mold device 800 to generate a nozzle touch pressure. The moving device 400 includes a hydraulic pump 410, a motor 420 as a drive source, a hydraulic cylinder 430 as a hydraulic actuator, and the like.

[0084] The hydraulic pump 410 has a first port 411 and a second port 412. The hydraulic pump 410 is a pump that can rotate in both directions, and by switching the rotation direction of the motor 420, it draws in hydraulic fluid (e.g., oil) from one of the first port 411 and the second port 412 and discharges it from the other port, thereby generating hydraulic pressure. Note that the hydraulic pump 410 can also draw in hydraulic fluid from a tank and discharge the hydraulic fluid from one of the first port 411 and the second port 412.

[0085] The motor 420 operates the hydraulic pump 410. The motor 420 drives the hydraulic pump 410 with a rotational direction and rotational torque according to a control signal from the control device 700. The motor 420 may be an electric motor or an electric servo motor.

[0086] The hydraulic cylinder 430 has a cylinder body 431, a piston 432, and a piston rod 433. The cylinder body 431 is fixed to the injection device 300. The piston 432 divides the inside of the cylinder body 431 into a front chamber 435 as a first chamber and a rear chamber 436 as a second chamber. The piston rod 433 is fixed to the fixed platen 110.

[0087] A front chamber 435 of the hydraulic cylinder 430 is connected to a first port 411 of the hydraulic pump 410 via a first flow path 401. The hydraulic fluid discharged from the first port 411 is supplied to the front chamber 435 via the first flow path 401, thereby pushing the injection unit 300 forward. The injection unit 300 is moved forward, and the nozzle 320 is pressed against the fixed die 810. The front chamber 435 functions as a pressure chamber that generates a nozzle touch pressure of the nozzle 320 by the pressure of the hydraulic fluid supplied from the hydraulic pump 410.

[0088] On the other hand, the rear chamber 436 of the hydraulic cylinder 430 is connected to the second port 412 of the hydraulic pump 410 via the second flow path 402. The hydraulic fluid discharged from the second port 412 is supplied to the rear chamber 436 of the hydraulic cylinder 430 via the second flow path 402, thereby pushing the injection unit 300 backward. The injection unit 300 is moved backward, and the nozzle 320 is separated from the fixed mold 810.

[0089] In this embodiment, the moving device 400 includes the hydraulic cylinder 430, but the present invention is not limited to this. For example, instead of the hydraulic cylinder 430, an electric motor and a motion conversion mechanism that converts the rotational motion of the electric motor into the linear motion of the injection device 300 may be used.

[0090] (Control device) The control device 700 is configured, for example, by a computer, and has a CPU (Central Processing Unit) 701, a storage medium 702 such as a memory, an input interface 703, and an output interface 704 as shown in Fig. 1 and Fig. 2. The control device 700 performs various controls by causing the CPU 701 to execute a program stored in the storage medium 702. The control device 700 also receives signals from the outside via the input interface 703, and transmits signals to the outside via the output interface 704.

[0091] The control device 700 repeatedly performs a metering process, mold closing process, pressure increase process, mold clamping process, filling process, pressure holding process, cooling process, pressure release process, mold opening process, and ejection process, thereby repeatedly manufacturing molded products (see also FIG. 4). A series of operations for obtaining a molded product, for example, the operations from the start of a metering process to the start of the next metering process, is also called a "shot" or a "molding cycle." The time required for one shot is also called the "molding cycle time" or "cycle time."

[0092] One molding cycle includes, for example, a metering process, a mold closing process, a pressure increase process, a mold clamping process, a filling process, a pressure holding process, a cooling process, a pressure release process, a mold opening process, and an ejection process, in this order. The order here refers to the order in which each process starts. The filling process, the pressure holding process, and the cooling process are performed during the mold clamping process. The start of the mold clamping process may coincide with the start of the filling process. The completion of the pressure release process coincides with the start of the mold opening process.

[0093] In addition, in order to shorten the molding cycle time, a plurality of processes may be performed simultaneously. For example, the metering process may be performed during the cooling process of the previous molding cycle, or during the mold clamping process. In this case, the mold closing process may be performed at the beginning of the molding cycle. The filling process may be started during the mold closing process. The ejection process may be started during the mold opening process. In the case where an opening / closing valve for opening and closing the flow path of the nozzle 320 is provided, the mold opening process may be started during the metering process. This is because even if the mold opening process is started during the metering process, the molding material will not leak from the nozzle 320 if the opening / closing valve closes the flow path of the nozzle 320.

[0094] Incidentally, one molding cycle may include steps other than the metering step, mold closing step, pressure increase step, mold clamping step, filling step, pressure holding step, cooling step, pressure release step, mold opening step, and ejection step.

[0095] For example, after the dwelling step is completed, a pre-metering suck-back step may be performed in which the screw 330 is retracted to a preset metering start position before the metering step is started. This can reduce the pressure of the molding material accumulated in front of the screw 330 before the metering step starts, and can prevent the screw 330 from suddenly retracting at the start of the metering step.

[0096] Furthermore, after the metering step is completed, a post-metering suck-back step may be performed in which the screw 330 is moved back to a preset filling start position (also called the "injection start position") before the filling step is started. This can reduce the pressure of the molding material accumulated in front of the screw 330 before the filling step is started, and can prevent the molding material from leaking from the nozzle 320 before the filling step is started.

[0097] The control device 700 is connected to an operation device 750 that accepts input operations by a user and a display device 760 that displays a screen. The operation device 750 and the display device 760 may be configured, for example, by a touch panel 770 and may be integrated. The touch panel 770 as the display device 760 displays a screen under the control of the control device 700. For example, the screen of the touch panel 770 may display information such as the settings of the injection molding machine 10 and the current state of the injection molding machine 10. In addition, for example, an operation unit such as a button that accepts an input operation by a user and an input field may be displayed on the screen of the touch panel 770. The touch panel 770 as the operation device 750 detects an input operation on the screen by the user and outputs a signal corresponding to the input operation to the control device 700. Thereby, for example, the user can operate the operation unit provided on the screen while checking the information displayed on the screen to perform settings of the injection molding machine 10 (including input of a setting value). In addition, the user can operate the operation unit provided on the screen to perform an operation of the injection molding machine 10 corresponding to the operation unit. The operation of the injection molding machine 10 may be, for example, the operation (including stopping) of the clamping device 100, the ejector device 200, the injection device 300, the moving device 400, etc. The operation of the injection molding machine 10 may be the switching of a screen displayed on the touch panel 770 serving as the display device 760, etc.

[0098] Incidentally, the operation device 750 and the display device 760 of this embodiment have been described as being integrated as the touch panel 770, but they may be provided independently. Also, a plurality of operation devices 750 may be provided. The operation device 750 and the display device 760 are disposed on the operation side (Y-axis negative direction) of the mold clamping unit 100 (more specifically, the fixed platen 110).

[0099] (Controller details) Next, an example of components of the control device 700 will be described with reference to FIG. 3. Note that each functional block shown in FIG. 3 is conceptual, and does not necessarily have to be physically configured as shown. All or a part of each functional block can be functionally or physically distributed and integrated in any unit. All or any part of each processing function performed by each functional block can be realized by a program executed by a CPU, or can be realized as hardware using wired logic.

[0100] As shown in FIG. 3, the control device 700 includes, for example, a mold clamping control unit 711, an ejector control unit 712, an injection control unit 713, a measurement control unit 714, a display control unit 715, and an input acquisition unit 716. The mold clamping control unit 711 controls the mold clamping unit 100 and performs the mold closing process, the pressure increase process, the mold clamping process, the depressurization process, and the mold opening process shown in FIG. 4. The ejector control unit 712 controls the ejector unit 200 and performs the ejection process. The injection control unit 713 controls the injection drive source of the injection unit 300 and performs the injection process. The injection drive source is, for example, the injection motor 350, but may be a hydraulic cylinder or the like. The injection process includes a filling process and a pressure holding process. The injection process is performed during the mold clamping process. The measurement control unit 714 controls the measurement drive source of the injection unit 300 and performs the measurement process. The metering drive source is, for example, a metering motor 340, but may also be a hydraulic pump, etc. The metering step is performed during the cooling step.

[0101] The filling step is a step of controlling the injection drive source so that the actual value of the moving speed of the injection member provided inside the cylinder 310 becomes a set value. The filling step is a step of moving the injection member forward to fill the inside of the mold device 800 with the liquid molding material (e.g., resin) accumulated in front of the injection member. The injection member is, for example, the screw 330, but may also be a plunger.

[0102] The moving speed of the injection member is detected by a speed detector. The speed detector is, for example, an injection motor encoder 351. In the filling step, the pressure acting on the molding material from the injection member increases as the injection member advances. The filling step may include a step of temporarily stopping the injection member or a step of retracting the injection member immediately before the pressure holding step.

[0103] The pressure holding process is a process of controlling the injection drive source so that the actual value of the pressure acting on the molding material from the injection member becomes a set value. The pressure holding process is a process of replenishing the molding material that is insufficient due to cooling contraction in the mold device 800 by pushing the injection member forward. The pressure is detected using a pressure detector such as the load detector 360. A nozzle pressure sensor or an in-mold pressure sensor may be used as the pressure detector.

[0104] Furthermore, before the start of injection molding, at each step during injection molding, and after the end of injection molding, the display control unit 715 of the control device 700 transmits display screen information relating to injection molding and causes it to be displayed on the display device 760. A plurality of display screens are prepared, and the display control unit 715 is capable of switching between the screens and overlapping the screens.

[0105] Furthermore, the input acquisition unit 716 of the control device 700 acquires information on the operation content when the user operates the operation device 750 based on the display screen displayed on the display device 760. For example, when the setting content of the injection molding is changed by the user, the input acquisition unit 716 stores the setting content in the storage medium 702.

[0106] [First embodiment] Next, an example of a display screen 761 displayed on the display device 760 according to the first embodiment will be described with reference to FIG.

[0107] The display screen 761 displays a setting screen section 762 that displays the setting contents of the injection molding of the injection molding machine 10, and a power screen section 765 that displays the power consumption of the injection molding based on the setting contents. In this specification, "displayed together" refers to a display form in which two screen sections (setting screen section 762, power screen section 765) can be viewed on the same screen without the user manually switching between them. Therefore, as shown in FIG. 5, the setting screen section 762 and the power screen section 765 may be displayed side by side, one above the other, or may be displayed apart from each other (with another screen section between the two screen sections). In the display screen 761 in FIG. 5, the power screen section 765 is disposed above the setting screen section 762 so that the user can easily recognize the power consumption. However, the display screen 761 may have the power screen section 765 disposed below the setting screen section 762, or may have the power screen section 765 disposed side by side with the setting screen section 762.

[0108] The setting screen section 762 allows the user to adjust the settings of the injection molding based on operations such as inputting numerical values ​​and selecting options. The setting screen section 762 displays, for example, the settings of the dwelling process, filling process, and metering process of the injection device 300. The area for the dwelling process displayed in the setting screen section 762 shows the operation details (speed during dwelling, retreating speed, etc.) of the screw 330 in the dwelling process of injection molding, and allows the operation details to be set. For example, if the user changes the speed during dwelling or the process speed, the operation of the screw 330 in the dwelling process changes, and the power consumption also changes. The area for the filling process displayed in the setting screen section 762 shows the operation details (V / P switching position, movement speed, pressure, etc.) of the screw 330 in the filling process of injection molding, and allows the operation details to be set. For example, if the user changes the V / P switching position, movement speed, or pressure, the operation of the screw 330 in the filling process changes, and the power consumption also changes. The metering process area displayed on the setting screen section 762 shows the operation details of the screw 330 in the metering process of injection molding (switching between the pre-metering suck-back process and the post-metering suck-back process, the rotation speed, etc.), and allows the user to set these operation details. For example, if the user changes the pre-metering suck-back process and the post-metering suck-back process switching or the rotation speed, the operation of the screw 330 during the metering process changes, and the amount of power consumption also changes.

[0109] 5, the setting screen section 762 does not display the setting of the clamping force of the clamping unit 100 in the clamping process, or the setting of the ejector unit 200 in the ejection process. This is because the setting of the clamping force of the clamping unit 100 and the setting of the ejector unit 200 require adjustment work after changing the settings for safety. Of course, this is not limiting, and the display device 760 may be configured to display the setting of the mold clamping process or the setting of the ejection process on the display screen 761 and to be changeable.

[0110] On the other hand, the power screen section 765 has a measurement operation screen section 766 for operating the measurement of the power consumption amount, an injection molding total power screen section 767 that displays the power consumption amount (accumulated power amount) during a predetermined measurement period, and a process-specific screen section 768 that displays the power consumption amount for each injection molding process. Note that, in the power screen section 765 in Fig. 5, the measurement operation screen section 766, the injection molding total power screen section 767, and the process-specific screen section 768 are arranged in this order from left to right, but this order may be freely set.

[0111] The measurement operation screen section 766 includes a measurement operation input field 766a in which the power consumption measurement mode can be set, and a comparison information acquisition field 766b in which comparison information for comparing the power consumption is acquired. As will be described in detail later, the comparison information also serves as reference information for comparison with the power consumption in the current injection molding. Therefore, hereinafter, the comparison information may also be referred to as a reference value or reference information, and is indicated by the item "Reference" in Figs. 5 to 7.

[0112] The measurement operation input field 766a has a selection button that displays options in a pull-down menu, for example, by the user's touch operation or by pressing a pointer displayed on the display screen 761 (such as clicking a mouse). The options in the pull-down menu provide multiple numbers of shots or multiple measurement periods for obtaining the power consumption amount, and the user can arbitrarily select from the displayed options. The power consumption amount when the number of shots is 1 is the cumulative amount of power per cycle in each process (measurement process, mold closing process, pressure increase process, mold clamping process, filling process, pressure holding process, cooling process, depressurization process, mold opening process, and ejection process).

[0113] The comparison information acquisition field 766b has an acquisition button that is pressed by the user to acquire the number of shots set in the measurement operation input field 766a or the amount of power consumption used during the measurement period. In other words, the user can obtain comparative information on the amount of power consumption in injection molding by arbitrarily pressing the acquisition button in the comparison information acquisition field 766b. Note that the "pressing operation" by the user in this specification is merely one example of an operation, and it goes without saying that information can be input, acquired, switched, etc. by other operations such as a slide operation on a touch panel.

[0114] The injection molding total power screen section 767 displays two types of power consumption to allow the user to recognize the power consumption of injection molding. Specifically, the injection molding total power screen section 767 has a performance information display section 767a that displays the power consumption measured during the execution of injection molding in operation as performance information, and a comparison information display section 767b that displays the power consumption of injection molding as comparison information to be compared with the performance information of the power consumption. For example, the performance information display section 767a and the comparison information display section 767b are arranged next to each other in the horizontal direction, and a plurality of display items are arranged in the vertical direction.

[0115] Each of the performance information display field 767a and the comparison information display field 767b has a number of display items, namely, "Shot number," "Power consumption of motor," "Power consumption of heater," "Power consumption of peripheral devices," and "Total power consumption." The display item "Shot number" indicates the number of shots in the injection molding. Note that the performance information display field 767a and the comparison information display field 767b may display information such as "date and time" when the comparison information or performance information was acquired, instead of "shot number." Note that in FIG. 5, "Power consumption of motor" is represented as "Motor," "Power consumption of heater" is represented as "Heater," "Power consumption of peripheral devices" is represented as "Peripheral," and "Total power consumption" is represented as "Total."

[0116] The "Motor power consumption" display item displays the cumulative power consumption used by motors (clamping motor 160, metering motor 340, injection motor 350, ejector motor, etc.) during injection molding. The "Heater power consumption" display item displays the cumulative power consumption used by heaters (first heater 313, second heater 323, etc.) during injection molding. The "Peripheral device power consumption" display item displays the cumulative power consumption used by devices other than motors and heaters (various sensors, control device 700, etc.) during injection molding. The "Total power consumption" display item displays the total power consumption of motors, heaters, and peripheral devices.

[0117] In the injection molding total power screen section 767, the actual information display field 767a and the comparison information display field 767b display "shot number", "power consumption of motor", "power consumption of heater", "power consumption of peripheral devices", and "total power consumption" at the same height. For example, when the measurement mode is one shot, the actual information display field 767a displays the accumulated power consumption for each completion of one cycle of injection molding. Therefore, in the actual information display field 767a, each display item is updated in real time every time one cycle of injection molding is completed. For example, the comparison information display field 767b acquires and displays the power consumption for one shot at the time when the user presses the acquisition button in the comparison information acquisition field 766b. This comparison information display field 767b is information that does not change (display is fixed) even if one cycle is completed.

[0118] The injection molding total power screen section 767 displays the actual information display field 767a and the comparative information display field 767b in the same display format. In this specification, the term "same display format" refers to a state in which the user can visually recognize the actual power consumption by using common expressions such as numerical values ​​and charts, and / or common units (Wh, kWh, J, etc.). For example, when the power consumption amount in the actual information display field 767a is displayed as a numerical value, the power consumption amount in the comparative information display field 767b is displayed as a numerical value. It is more preferable to display the actual power consumption amount in the actual information display field 767a in the form of a graph (including a bar display, etc.). In this case, it is more preferable to display the actual power consumption amount in the comparative information display field 767b in the form of a graph (see FIG. 7). This allows the user to visually recognize the actual information on the real-time power consumption amount and the comparative information on the user's arbitrary power consumption amount together, and to easily compare the difference between them.

[0119] In addition, when the measurement operation screen section 766 has a plurality of measurement modes or is in a measurement period, the injection molding total power screen section 767 can change the display of the power consumption amount according to the contents. For example, when the measurement mode is set to 2 shots, the power consumption amount for 2 shots is acquired as comparison information based on the pressing of the acquisition button in the comparison information acquisition section 766b, and is displayed in the comparison information display section 767b. Then, in the performance information display section 767a, the cumulative power consumption amount is displayed for each completion of 2 cycles (2 shots) of injection molding. That is, by displaying the acquired power consumption amount in the performance information display section 767a and the comparison information display section 767b based on the set measurement mode, the user can easily compare the power consumption amounts. Also, for example, when the measurement mode is set to a measurement period of 1 hour, the power consumption amount over 1 hour is acquired based on the pressing of the acquisition button in the comparison information acquisition section 766b, and is displayed in the comparison information display section 767b. Then, in the performance information display section 767a, the cumulative power consumption amount is also displayed for each measurement period (1 hour).

[0120] When the acquisition button in the comparison information acquisition field 766b is not pressed, the injection molding total power screen section 767 may display only the performance information display field 767a corresponding to the measurement mode of the measurement operation screen section 766. At this time, the injection molding total power screen section 767 may change the display form by, for example, moving the position of the performance information display field 767a to the center with respect to the display form in which the performance information display field 767a and the comparison information acquisition field 766b are arranged side by side.

[0121] On the other hand, the process-by-process screen section 768 displays the ratio of the power consumption for each of the plurality of processes to the power consumption for the entire power consumption of one cycle (or measurement period) of the injection molding. This enables the display device 760 to allow the user to recognize information related to the power consumption for each of the plurality of processes.

[0122] However, as described above, there are many steps in injection molding, and even if the power consumption for each step is displayed, the information is difficult for the user to recognize. Therefore, in this embodiment, the steps of injection molding are grouped into five steps, so that the information is easy for the user to recognize. Specifically, the step-by-step screen section 768 includes a mold opening / closing power column 768a, a filling power column 768b, a pressure holding power column 768c, a metering power column 768d, an ejector power column 768e, and a shot number column 768f.

[0123] Each of the display fields 768a to 768e has an item display 769a, a ratio numerical display 769b, and a ratio bar display 769c. That is, the information related to the power consumption of each process of the injection molding is displayed as a ratio of the power consumption of each process to the power consumption of the entire injection molding. This makes it easier for the user to recognize the power consumption of each process. Even if there is a difference between each actual injection molding process and the displayed display fields 768a to 768e, the display is made by a ratio, so that the user can recognize the information related to the power consumption of each process with the difference absorbed (or not included). The display of the process-specific screen section 768 is not limited to a ratio, and may be, for example, a numerical value (actual value), a reduction amount, or a reduction effect (mark, etc.).

[0124] 5, the display columns 768a to 768e are arranged vertically, while the item displays 769a, the percentage numerical value displays 769b, and the percentage bar displays 769c are arranged horizontally, but these arrangements may be reversed. The percentage bar displays 769c, for example, divide the power consumption of the entire injection molding into squares in 10% increments, and are displayed by filling in the squares from left to right according to the percentage of the power consumption. The percentage bar display 781 may be displayed with different shades of color from the left square to the right square.

[0125] The mold opening / closing power column 768a displays the combined ratio of the power consumption of each process (mold closing process, pressure increase process, depressurization process, mold opening process) related to the opening and closing movement (movement not including mold clamping) of the mold clamping apparatus 100 (see also FIG. 4). That is, many users recognize the mold closing process and pressure increase process of the mold clamping apparatus 100 as a series of operations, and similarly, many users recognize the depressurization process and mold opening process of the mold clamping apparatus 100 as a series of operations. For this reason, displaying the combined power consumption in the opening and closing movement of the mold clamping apparatus 100 provides information that is easier for users to understand.

[0126] The charging power field 768b displays the ratio of the power consumption of the filling process to the power consumption of the mold clamping process (see also FIG. 4). The filling process includes power mainly used in the operation of the injection unit 300 and power mainly used in the operation (mold clamping process) of the mold clamping unit 100. By adding up these power consumptions on the same time axis and displaying them in the charging power field 768b as the power consumption of the filling process, the user can easily recognize the power used in the filling process.

[0127] Similarly, the pressure holding power field 768c displays the ratio of power consumption of the pressure holding process to the power consumption of the mold clamping process (see also FIG. 4). The pressure holding process includes power mainly used in the operation of the injection unit 300 and power mainly used in the operation (mold clamping process) of the mold clamping unit 100. By adding up these power consumptions on the same time axis and displaying them in the pressure holding power field 768c as the power consumption of the pressure holding process, the user can easily recognize the power used in the pressure holding process.

[0128] The metered power column 768d displays the ratio of power consumption of the pressure holding process in the mold clamping process (see also FIG. 4). In this metering process, the metering motor 340 performs metering while the injection unit 300 performs the cooling process, and the mold clamping unit 100 continuously performs the mold clamping process. Therefore, by summing up the power consumption on the same time axis and displaying it in the metered power column 768d as the power consumption of the metering process, the user can easily recognize the power used in the metering process.

[0129] In the injection molding machine 10, when the cooling process is longer than the metering process, a time lag occurs between the metering process and the depressurization process (mold opening movement), and the clamping unit 100 and the injection unit 300 continue to use power during this time lag. However, since this time lag is small compared to the overall time of injection molding, the power consumption of the time lag is not intentionally displayed. Alternatively, the injection molding machine 10 may calculate and display the power consumption of the time lag so as to include it in the power consumption of the metering process, for example.

[0130] The ejector power column 768e displays the percentage of the power consumption in the ejection process for removing a molded product after the mold clamping unit 100 has been opened (see also FIG. 4). This allows the user to recognize the power consumption in the operation of the ejector unit 200.

[0131] As shown in FIG. 3, the control device 700 includes a comparison information display control section 715a and a performance information display control section 715b in order to display the amount of power consumption on the power screen section 765 described above.

[0132] When the comparison information display control unit 715a recognizes that the user has pressed the acquisition button in the comparison information acquisition field 766b, it acquires and displays the comparison information on the power consumption according to the injection mode set in the measurement operation screen unit 766 at that time. For example, the comparison information display control unit 715a acquires the power consumption of one shot of injection molding at the time when the acquisition button is pressed as comparison information and displays it in the comparison information display field 767b. In acquiring the power consumption, the comparison information display control unit 715a calculates the power consumption of the motor, the power consumption of the heater, and the power consumption of the peripheral devices individually, and further calculates the total power consumption of the motor, the heater, and the peripheral devices.

[0133] On the other hand, the performance information display control unit 715b acquires and displays performance information on the power consumption according to the injection mode set in the measurement operation screen unit 766. For example, the performance information display control unit 715b repeatedly acquires the power consumption for each shot of injection molding, and updates the display of the performance information display field 767a. In acquiring the power consumption, the performance information display control unit 715b calculates the power consumption of the motor, the power consumption of the heater, and the power consumption of the peripheral devices individually, and further calculates the total power consumption of the motor, the heater, and the peripheral devices. In addition, the performance information display control unit 715b also individually calculates the power consumption of each display field (mold opening / closing power field 768a, filling power field 768b, pressure holding power field 768c, metering power field 768d, ejector power field 768e: see FIG. 5) of the process-specific screen unit 768.

[0134] As described above, the control device 700 (display device 760) of the injection molding machine 10 displays the power consumption record information and the power consumption comparison information together on the same injection molding total power screen section 767. Therefore, the display device 760 can easily compare the power consumption comparison information of injection molding, which is arbitrarily set by the user (acquired by pressing the acquire button), with the power consumption record information measured in injection molding. This allows the user to directly compare the injection molding record information with the comparison information acquired in the past, and makes it easier to recognize the change in power consumption due to the settings of injection molding. Moreover, by displaying the comparison information and the record information together, the consideration of the power consumption reduction policy, etc. can be completed on one screen, and the molding conditions can be set more efficiently.

[0135] Moreover, the comparison information is acquired based on a predetermined operation (press operation) by the user on the comparison information acquisition field 766b of the display screen 761. Therefore, the display device 760 can easily acquire and display the power consumption amounts that the user wants to compare. Furthermore, the display device 760 can display the power consumption amounts of injection molding divided into a plurality of types (motor, heater, peripheral device) so that the power consumption amounts of the plurality of types can be compared. Then, the display screen 761 can display the shot number information (or date and time information) when the comparison information was acquired, so that the user can reliably recognize the timing when the comparison information was acquired.

[0136] In the power consumption display, the power consumption per one cycle of injection molding can be set, so that the user can easily grasp the power consumption used in one cycle. Alternatively, in the power consumption display, the power consumption for injection molding over a predetermined measurement period can be set, so that the user can easily grasp the power consumption for the entire measurement period.

[0137] It is to be noted that the injection molding machine 10, the control device 700, and the display device 760 are not limited to the above embodiment, and may of course be modified in various ways. For example, in the above embodiment, the power consumption in the performance information display field 767a and the power consumption in the comparison information display field 767b are displayed as numerical values. However, the power consumption in the performance information display field 767a and the power consumption in the comparison information display field 767b may be displayed in a form of a bar graph of the power consumption or a waveform graph showing the fluctuation of the power consumption over time. Even in this case, the display form is easy for the user to compare the power consumption. Moreover, the comparison information in the comparison information display field 767b is not limited to being displayed based on the user's operation, and may be automatically displayed under the control of the control device 700. For example, the comparison information display field 767b may move the previous performance information to the comparison information and display it every time the molding conditions of the injection molding are changed, or may automatically calculate the power consumption and display it as the comparison information every time the molding conditions of the injection molding are changed. Furthermore, the comparison information display field 767b may display, as the comparison information, values ​​before the molding conditions of the injection molding are changed, values ​​for a predetermined period in the past, an average value for a predetermined number of shots in the past, and the like.

[0138] In addition, in the display device 760 according to the first embodiment, the acquisition of the comparative information of the power consumption is triggered by the user pressing the acquisition button in the comparison information acquisition field 766b. However, the comparative information of the power consumption may use past information measured and stored in past injection molding, or may use estimated information estimated from the settings of the injection molding. Hereinafter, the display device 760 according to the second embodiment, which displays the past information or estimated information on the display screen 761A, will be described.

[0139] Second Embodiment 6, the display screen 761A according to the second embodiment displays a past data screen section 790 that displays past information in addition to the setting screen section 762 and the power screen section 765. For example, the past data screen section 790 is disposed adjacent to the power screen section 765 (above the power screen section 765 in FIG. 6).

[0140] The past information includes "power consumption of the motor", "power consumption of the heater", "power consumption of peripheral devices", and "total power consumption" as information on power consumption, and also has the settings of the injection molding (the contents displayed on the setting screen section 762). Furthermore, the past information may be the power consumption of a plurality of shots during an arbitrary measurement period of the user ("power consumption of the motor", "power consumption of the heater", "power consumption of peripheral devices", and "total power consumption").

[0141] This measurement period is linked to the measurement mode of the measurement operation input field 766a, and may be configured so that the user can appropriately select from a plurality of periods, such as the most recent one hour, two hours, ..., 12 hours, one day, one week, one month, etc. "Power consumption of the motor", "power consumption of the heater", "power consumption of peripheral devices", and "total power consumption" can be said to be the power consumption used in the selected measurement period. In addition to the power consumption during operation, the past information may also include the standby power amount set as a reserve. The standby power amount can also be displayed for each of "power consumption of the motor", "power consumption of the heater", "power consumption of peripheral devices", and "total power amount". The display device 760 can show the user the power information and the ratio of power that can be supplied to the injection molding machine 10 by using the power consumption during operation and the standby power amount.

[0142] The past data screen section 790 has a display area 791 that allows the user to actually view past information, and a file call button 792 for calling up past information. The display area 791 has an implementation period display field 791a that shows the measurement period described above, and a result display field 791b that shows information on "power consumption of the motor," "power consumption of the heater," "power consumption of peripheral devices," and "total power consumption" for a specific implementation period.

[0143] The file call button 792 is a button for reading out past information for each shot during the measurement period (or past information according to the measurement mode settings) displayed in the display area 791 based on a user's pressing operation. The file call button 792 may display a list of one or more pieces of past information stored in the storage medium 702 based on a user's pressing operation, and allow the user to select. The list of past information displayed at this time preferably displays the shot number, the date and time when the power consumption was measured, the total power consumption, etc. Furthermore, the display area 791 may display information selected by the user's first selection operation (e.g., one click) from the list of past information called up by the file call button 792 in a result display field 791b of the display area 791.

[0144] Then, the display device 760 displays the information selected by the user's second selection operation (e.g., double-clicking) from the list of past information in the comparison information display field 767b of the power screen section 765. This enables the display device 760 to smoothly reflect the past information stored in the storage medium 702 in the comparison information. At this time, the setting contents of the injection molding linked to the past information are displayed in the setting screen section 762 together with the past information. Therefore, the user can easily compare the acquired actual power consumption information with the power consumption of the setting contents created in the past while checking the setting contents, and can easily recognize the effect of improvement from the past.

[0145] Furthermore, the measurement operation screen section 766 of the display screen 761A has a prediction calculation section 766c and a batch change section 766d. For example, when the user changes the settings of the injection molding on the setting screen section 762 (see FIG. 5) and then presses the prediction button in the prediction calculation section 766c, the control device 700 (display control section 715) calculates prediction information of the power consumption according to the settings. That is, the prediction information is an example of the estimated information in this specification. Then, the display control section 715 displays the calculated prediction information of the power consumption as comparison information in the comparison information display section 767b.

[0146] Specifically, the display control unit 715 includes a prediction unit (not shown) that calculates predicted information using the setting contents acquired via the input acquisition unit 716 and a function of power consumption stored in advance (or a database in which the operation of the motor, heater, and peripheral devices are associated with the power consumption). The calculation of the predicted information by the prediction unit corresponds to an example of "estimation" in this specification. The prediction unit calculates predicted information of the power consumption for each motor, heater, and peripheral device according to the display form of the comparison information display field 767b, and further calculates predicted information of the total power consumption of these. This allows the display device 760 to smoothly display the calculated predicted information in the comparison information display field 767b. Therefore, the user can easily compare the power consumption in the actual information display field 767a with the power consumption in the comparison information display field 767b predicted based on the setting contents, and can recognize the difference between the predicted information and the actual information due to the change. In addition, the comparison with the predicted information is not limited to actual information, and the display device 760 may be configured to display the predicted information in the actual information display field 767a in response to a user operation, and to allow the user to compare the predicted information with the comparison information in the comparison information display field 767b.

[0147] The collective change field 766d is disposed below the forecast calculation field 766c. The collective change field 766d has a collective change button for collectively changing the power consumption displayed in the comparison information display field 767b of the power screen section 765 and the settings in the setting screen section 762 associated therewith. In other words, the display control section 715 can set the settings currently displayed in the setting screen section 762 to new settings by the user pressing the collective change button.

[0148] For example, the user can reflect the tentative molding conditions to the current molding conditions by pressing the batch change execution button after visually checking the difference between the predicted information based on the changed tentative molding condition settings and the actual power consumption information. Conversely, the display control unit 715 prevents the tentative molding conditions from being reflected as the settings during operation until the batch change button is pressed. This makes it possible to predict the power consumption due to changes in the settings even when the injection molding machine 10 performs production fully automatically, and allows the user to consider a policy for changing the settings without stopping production.

[0149] In addition, when the user presses the Batch Change button in the Batch Change field 766d while past information is displayed in the comparison information display field 767b, the setting contents of the past information may also be changed collectively. This allows the injection molding machine 10 to easily reuse the past information.

[0150] [Modifications] Furthermore, the display control unit 715 (see FIG. 3) may be configured to change the display form of the step-by-step screen section 768 based on a trigger such as pressing the acquisition button in the comparison information acquisition field 766b (or pressing the prediction button, selecting past information, etc.). For example, as shown in FIG. 7, a step-by-step screen section 768A according to a modified example switches the horizontally adjacent portions (percentage numerical display 769b, percentage bar display 769c) of an item display 769a to a step-by-step comparison display section 780 in a plurality of display fields 768a to 768e.

[0151] The process-by-process comparison display section 780 displays a ratio bar display 781 and a numerical display 784 of the reduction effect side by side. The ratio bar display 781 divides the power consumption of the entire injection molding into squares in increments of 10%, for example, and displays the squares by filling them in from left to right according to the ratio of the power consumption. The ratio bar display 781 may be displayed with different shades of color from the left square to the right square.

[0152] Also, the bar display 781 of the ratio for each of the plurality of display columns 768a to 768e is divided into two stages, vertically, with a comparison bar display 782 on the upper side and a performance bar display 783 on the lower side. Each comparison bar display 782 is a process comparison information display column that displays the ratio of the power consumption in the comparison information (reference information) (the ratio of the power consumption of each process to the power consumption of the entire injection molding) (see also FIG. 5). In contrast, each performance bar display 783 is a process performance information display column that displays the ratio of the power consumption in the performance information (the ratio of the power consumption of each process of the performance information to the power consumption of each process of the comparison information). Note that the bar display 781 may indicate the ratio of the power consumption of each process to the power consumption of the entire injection molding in the performance bar display 783, and indicate the ratio of the power consumption of each process of the comparison information to the power consumption of each process of the performance information in the comparison bar display 782.

[0153] The ratio of the power consumption of each process in the actual information to the power consumption of each process in the comparison information can be rounded off to an increase or decrease of multiple resolution levels (0%, 25%, 50%, 75%, 100%, etc.) without having to calculate a detailed ratio. For example, if the detailed ratio is less than 12.5%, it is rounded off to 0%, and if it is 12.5% ​​or more but less than 37.5%, it is rounded off to 25%. This makes the information easier for the user to recognize.

[0154] 7, when the ratio of the power consumption in the mold opening and closing process of the comparison information (reference information) is 20% of the total power consumption in the injection molding, two squares are filled in the comparison bar display 782. On the other hand, if the power consumption in the mold opening and closing process of the performance information is approximately 50% of the power consumption in the mold opening and closing process of the comparison information, the display control unit 715 fills one square in the performance bar display 783 (reducing one square). Furthermore, the display control unit 715 displays a 50% reduction in the ratio numerical display 784.

[0155] Also, for example, if the ratio of power consumption in the filling process of the comparison information is 36% of the total power consumption in the injection molding, four squares are filled in the comparison bar display 782. On the other hand, if the power consumption in the filling process of the performance information is approximately 75% of the power consumption in the filling process of the comparison information, the display control unit 715 will fill three squares in the performance bar display 783 (reducing one square). Furthermore, the display control unit 715 will display a 25% reduction in the ratio numerical display 784.

[0156] In this way, the display device 760 can compare the actual information and the comparison information for each of the multiple processes of injection molding using the process-specific screen section 768. Moreover, the process-specific screen section 768 allows the user to easily visually recognize the change in the amount of power consumption in each process by displaying the comparison bar display 782 and the actual bar display 783 together. Moreover, the information becomes even easier for the user to understand by expressing the reduction effect of the amount of power consumption numerically using the numerical display 784 of the ratio of the adjacent positions. Note that, when prediction information is applied as the comparison information, for example, the ratio of the amount of power consumption of the comparison bar display 782 to the actual bar display 783 can be displayed to allow the user to smoothly recognize the reduction effect of the amount of power consumption according to the settings.

[0157] The display device 760, the control device 700, and the injection molding machine 10 according to the embodiments disclosed herein are illustrative and not restrictive in all respects. The embodiments can be modified and improved in various forms without departing from the spirit and scope of the appended claims. The matters described in the above embodiments can be configured in other ways as long as they are not inconsistent, and can be combined as long as they are not inconsistent. [Explanation of symbols]

[0158] 10 injection molding machine 700 Control device 760 Display device 761 Display screen 767a Performance information display section 767b Comparison information display field

Claims

1. A display device that displays a display screen having injection molding information, wherein the display screen includes a performance information display column that displays performance information on the power consumption measured during the injection molding, and a comparison information display column that displays comparison information on the power consumption of the injection molding for comparison with the performance information on the power consumption in the same display form as the display form of the performance information display column, and the two are displayed together, display device.

2. The display screen, together with the comparison information display column, displays information on the shot number or date and time when the comparison information was acquired, The display device according to claim 1.

3. The injection molding machine that performs the injection molding and the injection molding include a plurality of target objects that consume power in the injection molding, The display screen displays information related to the power consumption for each of the plurality of target objects, The display device according to claim 1.

4. The plurality of target objects include a plurality of types of equipment, The display screen separately and individually displays information related to the power consumption for the first device and the second device, The display device according to claim 3.

5. The plurality of types of equipment include a motor and a heater, The display screen separately and individually displays information related to the power consumption for the motor and the heater, The display device according to claim 4.

6. The plurality of target objects include a plurality of processes divided for the injection molding, The display screen has a process-specific screen section that separately and individually displays information related to the power consumption for each of the plurality of processes, The display device according to claim 4.

7. The process-specific screen section includes a process performance information display column that displays, as information related to the power consumption for each of the plurality of processes, the ratio of the performance information on the power consumption for each of the plurality of processes to the entire injection molding, and a process comparison information display column that displays the ratio of the comparison information on the power consumption for each of the plurality of processes to the entire injection molding set arbitrarily by the user, The display device according to claim 6.

8. The display device displays a reduction effect for each of the plurality of target objects, The display device according to claim 3.

9. The display screen has an operation input section that receives an input of an operation for processing the comparison information, The display device according to claim 1.

10. The display screen displays the comparison information on the power consumption of the injection molding processed based on a predetermined operation of the user on the operation input section, The display device according to claim 9.

11. A control device that causes the display screen to be displayed on the display device according to any one of claims 1 to 10.

12. An injection molding machine having the control device according to claim 11. ​