Extrusion press machine
09707606 ยท 2017-07-18
Assignee
Inventors
Cpc classification
B21C23/215
PERFORMING OPERATIONS; TRANSPORTING
B21C23/01
PERFORMING OPERATIONS; TRANSPORTING
B21C31/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B21C23/21
PERFORMING OPERATIONS; TRANSPORTING
B21C23/01
PERFORMING OPERATIONS; TRANSPORTING
B21C27/04
PERFORMING OPERATIONS; TRANSPORTING
B21C31/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An extrusion press machine includes an end platen, a die, a container, container cylinders which move the container back and forth, a stem that pushes a billet in the container, and a main cylinder at the front end of the stem is provided and by which the stem can freely slide front and back, the extrusion press machine further including a plurality of hydraulic valves that supply hydraulic oil in the main cylinder to the container cylinders and which operate before the stem and the container retract in movement when discharging compressed air in the container after upset of the billet and further including a hydraulic valve that discharges hydraulic oil in the main cylinder into a tank, the hydraulic valves connected by a hydraulic pipeline, and the main cylinder and the container cylinders being able to be connected.
Claims
1. An extrusion press machine comprising an end platen, a die, a container, container cylinders which move said container back and forth, a stem for pushing a billet in the container, and a main cylinder at the front end of which the stem is provided and by which the stem can freely slide front and back, said extrusion press machine further comprising a plurality of hydraulic valves which directly supply hydraulic oil inside said main cylinder to said container cylinders and which operate before said stem for pushing the billet and said container retract in movement when discharging compressed air in the container after upset of the billet and further comprising an additional hydraulic valve which discharges hydraulic oil in said main cylinder into a tank, said plurality of hydraulic valves connected by a hydraulic pipeline, and said main cylinder and said container cylinder connected directly thereto, wherein the hydraulic pipeline which feeds the hydraulic oil in the main cylinder to the container cylinders is provided with an accumulator for pressurized fluid reuse in operation that controls clearance between the container and the die, said accumulator is positioned between said plurality of hydraulic valves, each of said plurality of hydraulic valves further comprising an adjacent check valve in a pipeline extending between the main cylinder and the container cylinders.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
DESCRIPTION OF EMBODIMENTS
(4) The configuration of an extrusion press machine according to the embodiments will be explained below using the attached drawings. As shown in
(5) The main cylinder 12 which generates the extrusion action force houses a ram 13 and can push this toward the container 18. Reference numeral 19 is a container holder to which a container 18 is attached. At the front end part of the ram 13, the extrusion stem 24 is attached to a cross head 22 in a state projecting out toward the container 18 so as to be arranged concentrically with the billet holding hole of the container. Therefore, if driving the main cylinder 12 to advance the cross head 22, the extrusion stem 24 is inserted in the billet holding hole of the container 18 and the back end part of the held billet 20 is pushed to extrude a product.
(6) At the main cylinder 12, a plurality of side cylinders 15 are attached parallel to an extrusion axis. Rods 15A of the cylinders are connected to the cross head 22. Due to this, as a preparatory process to the extrusion process, the extrusion stem 24 is initially advanced to a position close to the container 18 (no load advance). The extrusion operation is performed using both of the main cylinder 12 and the side cylinders 15.
(7) Further, as the process after the extrusion, the extrusion stem 24 is moved to a position separated from the container 18 for supplying a billet 20 to the container 18 (no load retraction).
(8) On the end platen 10, a plurality of container cylinders 17 are attached parallel to the extrusion axis. Rods 17A of the cylinders are connected to the container holder 19. Due to this, the container 18 is moved to be able to approach and separate from the die 16.
(9) Further, the main cylinder 12 is provided with a prefill valve 23 which supplies and discharges hydraulic oil inside the main cylinder 12 when moving the extrusion stem 24 to an initial extrusion position as a preparatory process and a billet supply position after end of extrusion and basically comprises a valve body 23A, prefill cylinder 23B, and valve 23C. The valve 23C is driven by the prefill cylinder 23B and opens or closes a passage between an oil tank 25 and the main cylinder 12 in accordance with the extrusion operation. The container cylinders 17 which advance and retract the container 18 are provided at the end platen 10 in this configuration, but it is also possible to provide them at the main cylinder 12 in another configuration.
(10) Referring to
(11) Hydraulic oil is supplied through a solenoid directional control valve 41 to the main cylinder 12 and through a solenoid directional control valve 36 to the side cylinders 15 for the extrusion operation. Reference numeral 42 is a solenoid directional control valve which drains the hydraulic oil which is sealed under pressure in the main cylinder 12 at the time of a burp cycle after upset of the billet 20 and at the time of the end of the extrusion process. By energizing the solenoid, a throttle valve is switched to and the pressure inside the main cylinder 12 is opened through the tank line until close to atmospheric pressure.
(12) As shown in the figure, the hydraulic pressure circuit 31 has pressure sensors 45 and 46 which detect the hydraulic pressures of the main cylinder 12, side cylinders 15, and container cylinders 17 attached to it. The pressure sensor 46 detects a predetermined pressure in the side cylinders 15 when the stem 24 advances, the billet 20 is held in the container 18, and the end face of the billet 20 abuts against the die 16. The detected pressure signal is sent to the control device whereby, under instruction by the control device, the process for holding the billet 20 is ended and the process of upset of the billet 20 is shifted to.
(13) The pressure sensor 45 detects a predetermined pressure in the main cylinder 12 which acts on the ram 13 in the process of upset of the billet 20. The detected pressure signal is sent to a control device whereby, under instruction by the control device, the process of upset of the billet 20 is ended and the burp cycle is shifted to.
(14) The side cylinders 15 are controlled by the solenoid directional control valve 36, the container cylinders 17 are controlled by the solenoid directional control valve 35, and the prefill valve 23 is controlled by the solenoid directional control valve 37. The desired solenoid is energized or de-energized to operate the actuators (cylinders).
(15) Further, solenoid directional control valves 38 and 39 are provided for communicating and connecting the main cylinder 12 and the container cylinders 17 at the refraction movement side (in
(16) The upset and burp cycle of the thus configured extrusion press machine will be explained with reference to
(17) As shown in
(18) In (C) the pressure inside of the main cylinder 12 is released whereby the pushing pressure of the extrusion stem 24 which pushes against the container 18 through the billet 20 is released and the pressure which has been stored at the head sides of the container cylinders 17 causes the container 18 to move to retract. The billet 20 sticks to the inside wall of the container, so refraction movement of the container 18 causes the billet 20, extrusion stem 24, and main cross head 22 along with the ram 13 to retract. When this retraction distance becomes about 1 mm, the deaeration is completed. Further, in (D) the solenoid directional control valves 41 and 36 are operated to supply hydraulic oil from the hydraulic drive source 30 so as to drive the ram 13 and side cylinders 15 and move the extrusion stem 24 back and forth. (The container moves back and forth through the billet. At this time, the container cylinders are opened to the tank line by a not shown hydraulic valve.) After that, the extrusion operation is started in the state where a predetermined container seal pressure is obtained.
(19) At the time of retraction of the container and ram in the burp cycle, in a conventional extrusion press machine, as shown in
(20) Furthermore, since an accumulator is used for the configuration for storing pressure based on the volume ratio of the main cylinder and container cylinders, even when the volume ratio differs, it is possible to supplement the amount of the hydraulic oil which is supplied to the container cylinders.
(21) As explained above, in the retraction operation of the container and ram in the conventional burp cycle, instead of a configuration controlling the amount of discharge of the hydraulic pump to supply hydraulic oil to the container cylinders, a configuration is adopted which supplies hydraulic oil inside the main cylinder to slightly retract the container and ram. For this reason, there are the advantages that the burp cycle time can be shortened and the productivity of the extrusion press machine can be improved. Further, since the hydraulic oil of the main cylinder is reutilized for the retraction operation of the container and ram, the effect is exhibited that it is possible to slash the amount of energy consumed.
REFERENCE SIGNS LIST
(22) 10 end platen 12 main cylinder 13 ram 16 die 17 container cylinder 18 container 20 billet 24 extrusion stem 38, 39, 42 solenoid directional control valve 45, 46 pressure sensor P1 upset pressure P2 equilibrium pressure