This application is based on and claims priority under 35 USC 119 from Japanese Patent Application No. 2021-085804 filed on May 21, 2021, the contents of which are incorporated herein by reference.
The present disclosure relates to a twin injection molding machine in which two injection devices are provided for a mold clamping device.
An injection molding machine includes a mold clamping device for clamping a mold and an injection device for injecting an injection material. When a large molding product is molded, it is necessary to increase a size of the injection device in order to inject a large amount of injection material. However, there is a limit to an increase in size of the injection device. On the other hand, for example, a twin injection molding machine in which two injection devices are provided for one mold clamping device as described in JP H02-72914 A is suitable for molding a large molding product. This is because an injection amount can be shared by the two injection devices.
The twin injection molding machine is provided with two injection devices. Thus, the twin injection molding machine requires a lateral width corresponding to widths of the two injection devices, and there is a problem in that an installation area increases.
Illustrative aspects of the present disclosure provide a twin injection molding machine which prevents or reduces an increase in lateral width and prevents or reduces an increase in installation area.
Other problems and novel features will become apparent from the description of this specification and the accompanying drawings.
A twin injection molding machine includes one mold clamping device and first and second injection devices. Then, the first and second injection devices each include a heating cylinder, a screw in the heating cylinder, and a screw driving device configured to drive the screw. The present disclosure has an arrangement in which the first and second injection devices are disposed symmetrically with respect to a machine center line of the mold clamping device. Then, driving system components such as a hydraulic accumulator and an electric motor provided in the screw driving device of the first injection device and driving system components provided in the screw driving device of the second injection device are both disposed on a side away from the machine center line in the respective screw driving devices.
According to the present disclosure, the increase in lateral width of the twin injection molding machine can be prevented, and the increase in installation area can be prevented.
Hereinafter, illustrative embodiments will be described in detail with reference to the drawings. However, the present invention is not limited to the following illustrative embodiments. In order to clarify the description, the following description and the drawings are simplified as appropriate. In all the drawings, the same elements are denoted by the same reference signs, and repetitive descriptions thereof are omitted. In addition, hatching may be omitted to avoid complicating the drawings.
As shown in
The twin injection molding machine 1 according to the present illustrative embodiment is a so-called metal injection molding machine that melts and injects a metal. However, various features of the first and second injection devices 4A, 4B to be described later are not limited to injection devices that inject a metal. That is, the present disclosure can be similarly applied to a twin injection molding machine including two injection devices that inject a resin.
The mold clamping device 2 includes a fixed platen 6 fixed to a bed 5, a movable platen 7 provided slidably on the bed 5, and a mold clamping housing 8 provided slidably on the bed 5. The fixed platen 6 and the mold clamping housing 8 are connected by a plurality of tie bars 10, and the movable platen 7 is slidably disposed between the fixed platen 6 and the mold clamping housing 8. A toggle mechanism 12 is provided between the mold clamping housing 8 and the movable platen 7. When a driving system component (not shown), for example, a mold clamping motor is driven to bend and stretch the toggle mechanism 12, the movable platen 7 slides to open and close the mold.
In the present illustrative embodiment, the first and second injection devices 4A, 4B are respectively mounted on beds 22A, 22B shown in
Components configuring the first and second injection devices 4A, 4B are also substantially symmetrical with respect to the machine center line C. Therefore, the first injection device 4A which is one of the injection devices will be described, and the description of the second injection device 4B will be omitted unless necessary. Each component of the first injection device 4A is denoted by a reference numeral obtained by combining a number and “A”, and each equivalent component of the second injection device 4B is denoted by a reference numeral obtained by combining the same number and “B”.
The first injection device 4A includes a heating cylinder 14A, a screw (not shown) in the heating cylinder 14A, and a screw driving device 15A that drives the screw. Originally, a rear end portion of the screw is connected to the screw driving device 15A and is driven by the screw driving device 15A. Then, the rear end portion of the screw is to be shown in
The first injection device 4A includes a support structure 18A and a movement mechanism 20A. The support structure 18A is a structure for supporting the heating cylinder 14A, and will be described in detail below. The movement mechanism 20A includes piston cylinder components 21A, 21A, and moves the first injection device 4A toward and away from the mold clamping device 2. The piston cylinder components 21A, 21A are characterized in attachment positions to which end portions of the piston cylinder components 21A, 21A are attached, and will be described later.
In the present illustrative embodiment, the support structure 18A includes support plates including a flange plate 24A and a rear plate 25A. These support plates, that is, the flange plate 24A and the rear plate 25A are connected by a plurality of rods 26A. A flange portion 28A is formed at a center portion of the heating cylinder 14A, and the flange plate 24A fixes and supports the heating cylinder 14A at the flange portion 28A. The flange plate 24A is shown in
As shown in
As shown in
The screw driving device 15A includes a driving source for rotating the screw, that is, a driving system component, and driving system components for driving the screw in an axial direction. In the screw driving device 15A according to the present illustrative embodiment, all of these driving system components are disposed on a side away from the machine center line C in the screw driving device 15A.
For example, the driving system components for rotating the screw include a screw rotation servo motor 36A. The screw rotation servo motor 36A is provided on a side away from the machine center line C in the screw driving device 15A. Further, the driving system components for driving the screw in the axial direction include a group of hydraulic accumulators. That is, the driving system components for driving the screw in the axial direction include injection accumulators 38A, 38A, an oil recovery accumulator 39A, and a pilot valve accumulator 40A. All of these components are provided on the side away from the machine center line C in the screw driving device 15A. The pilot valve accumulator 40A drives a pilot valve for controlling a flow rate of a valve to control an injection speed.
The second injection device 4B is configured similarly to the first injection device 4A, and respective components of the second injection device 4B are disposed substantially symmetrically to those of the first injection device 4A with respect to the machine center line C, as described above. That is, the driving system components in the first injection device 4A, and the driving system components in the second injection device 4B are both disposed on the side away from the machine center line C in the screw driving devices 15A, 15B. In this case, the driving system components of the first injection device 4A and the driving system components of the second injection device 4B do not interfere with each other. Therefore, the first and second injection devices 4A, 4B can be brought close to each other as much as possible. As a result, the lateral width W of the twin injection molding machine 1 (see
One end of each of the piston cylinder components 21A, 21A configuring the movement mechanism 20A is fixed to the fixed platen 6 as shown in
As a result of attaching the piston cylinder components 21A, 21A in this way, the piston cylinder components 21A, 21A are long, and a large stroke is secured. Therefore, in the first injection device 4A according to the present illustrative embodiment, as shown in
The twin injection molding machine 1 according to the present disclosure is compared with an injection molding machine in the related art.
The mold clamping device of the injection molding machine 100 in the related art includes a fixed platen 105, a movable platen 106, and a mold clamping housing 107. The fixed platen 105 and the mold clamping housing 107 are connected by a plurality of tie bars 109, and the movable platen 106 is slidably provided between the fixed platen 105 and the mold clamping housing 107. A toggle mechanism 110 is provided between the mold clamping housing 107 and the movable platen 106, and when the toggle mechanism 110 is bent and stretched, the mold is opened and closed.
The injection device 102 of the injection molding machine 100 in the related art includes a heating cylinder 114, a screw (not shown) in the heating cylinder 114, and a screw driving device 115 for driving the screw. Further, a support structure 125 that supports the heating cylinder 114, and piston cylinder components 116, 116 that are movement mechanisms for driving the injection device 102 in a direction of approaching or being separated from the fixed platen 105 are provided.
The screw driving device 115 is provided with a plurality of driving system components. First, a servo motor 117 for rotationally driving the screw is provided. Next, a group of hydraulic accumulators for driving the screw in the axial direction, that is, injection accumulators 118, 118, an oil recovery accumulator 120, and a pilot valve accumulator 121 are provided. In the screw driving device 115, these driving system components are disposed as follows. First, the servo motor 117 and the oil recovery accumulator 120 are provided on one side, and the injection accumulators 118, 118 and the pilot valve accumulator 121 are provided on the other side. Therefore, when the two injection devices 102 are disposed in parallel, the driving system components interfere with each other, so that the injection devices 102 cannot be sufficiently brought close to each other. That is, a lateral width W2 of the injection molding machine 100 increases.
The support structure 125 that supports the heating cylinder 114 of the injection molding machine 100 in the related art includes a flange plate 126, a rear plate 127, and a plurality of rods 129 that connect the flange plate 126 and the rear plate 127. A rear end portion of the heating cylinder 114 is fixed to the rear plate 127, and a flange portion 130 formed at a center portion of the heating cylinder 114 is fixed to the flange plate 126.
As shown in
The twin injection molding machine 1 (see
As shown in
In the twin injection molding machine 1 (see
The injection device 4A which is one of the injection devices has been described, since components configuring the first and second injection devices 4A, 4B are substantially symmetrical with respect to the machine center line C. Each component of the second injection device 4B is denoted by a reference numeral obtained by combining the same number as that of the first injection device 4A and “B”. That is, the second injection device 4B includes the heating cylinder 14B, the screw driving device 15B, a support structure 18B, a movement mechanism 20B, a piston cylinder component 21B, the bed 22B, the flange plate 24B, a rear plate 25B, a rod 26B, a flange portion 28B, a cylinder accommodating portion 30B, a cutout 31B, a driving device frame 33B, a connecting rod 35B, a screw rotation servo motor 36B, an injection accumulator 38B, an oil recovery accumulator 39B, a pilot valve accumulator 40B, and a clevis 42B.
Although the present invention made by the present inventors has been specifically described based on the illustrative embodiments, it is needless to say that the present invention is not limited to the illustrative embodiments described above, and various modifications can be made without departing from the scope of the present invention. A plurality of examples described above can be implemented in combination as appropriate.
Number | Date | Country | Kind |
---|---|---|---|
2021-085804 | May 2021 | JP | national |