MODULAR UNIT FOR INJECTION-COMPRESSION MOLDING
20170291340 · 2017-10-12
Inventors
Cpc classification
B29C2045/564
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/5655
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/5635
PERFORMING OPERATIONS; TRANSPORTING
B29C2945/76822
PERFORMING OPERATIONS; TRANSPORTING
B29C45/561
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present application describes a modular unit for injection-compression molding (1). The modular unit for injection-compression molding (1) is arranged between the movable platen of the injection machine (21) and the stationary platen of the injection machine (22), in particular in the half-mold bearing face resulting from the division thereof by the opening joint. This modular unit for injection-compression molding (1) allows a substantial reduction of energy spent by reduction of inertial masses involved. The present application describes a modular unit for injection-compression molding (1) to be used in the production of pieces by injection being installed on any thermoplastic molding process.
Claims
1. Modular unit for injection-compression molding positioned between a movable platen of an injection machine and half-mold bearing surface resulting from the division thereof by opening joint by means of a centering ring of the modular unit and comprising: kinematic systems consisting of at least one kinematic converter and at least one sliding wedge; ball screw assembly; ball nut; a servomotor; at least one movable base platen; an hydraulic cylinder consisting of a central hydraulic block and hydraulic cylinder rod; a piloted suction valve; compression springs for cavity sealing rim; cavity sealing rim.
2. Modular unit for injection-compression molding according to claim 1, wherein a connection is provided for pressure oil supply from the pressure line, provided by the injection machine or, when not possible, by any other alternative oil dynamic energy supply.
3. Modular unit for injection-compression molding according to claim 1 wherein hydraulic connections are provided for pressure oil supply to the control oil dynamic assembly.
4. Modular unit for injection-compression molding according to claim 1, wherein the connection between the hydraulic control circuit connecting hoses to at least one hydraulic connection and also to control and command electric signal connections carried out by interface chips between the modular unit assembly, oil dynamic energy assembly, electric control and base machine electric commands and systems are provided.
5. Modular unit for injection-compression molding according to claim 1, wherein the movable base platen is connected to the movable mold structure supporting the core of the mold and the hydraulic cylinder rod.
6. Modular unit for injection-compression molding according to claim 1, wherein a small hydraulic unit consisting of a central hydraulic block with hydraulic accumulator and control valves for controlling the hydraulic cylinder incorporated within said control unit is provided.
7. Modular unit for injection-compression molding according to claim 1, wherein an electric control system is provided.
8. Use of the modular unit for injection-compression molding according to claim 1 in the production of pieces by injecting-compressing thermoplastic polymers to any thermoplastic molding process.
9. Operating method of the modular unit for injection-compression molding according to claim 1, comprising the following steps: fastening said modular unit for injection-compression molding to the movable platen of the injection machine being guided by the centering ring of the modular unit; mounting the mold between the movable base platen of the modular unit and the stationary platen of the injection machine; performing an hydraulic connection to a mold service outlet of the injection machine; setting a sufficient opening by the closure unit so as to create the space between the mold component structures connected to the movable platen of the injection machine and to the stationary platen of the injection machine, respectively mold structure block A and mold structure block B and between the mold core and the piece of the cavity required to the complete extraction of the molded piece; subsequent to maximum expansion of the compression springs of the cavity sealing rim, closing the mold; subsequent to the closing of the mold, filling the mold; once the injection of molten material is complete, beginning a primary compression stage; the servomotor is set in motion triggering the kinematic system; once the movement of the movable base platen has stopped, beginning a final compression stage; once the final piece cooling time has elapsed, extracting the final piece begins; upon ceasing of the movement of the movable base platen into its initial position, opening the mold allowing the withdrawal of the final piece; subsequent to the removal of the final piece, restoring to the initial conditions of the first step of this method.
10. The method according to claim 9, wherein the primary compression stage includes charging oil into the hydraulic cylinder by suction through the piloted suction valve.
11. The method according to claim 9, wherein the closing stage of the mold includes approaching the movable platen of the injection machine to the stationary platen of the injection machine.
12. The method according to claim 9, wherein the final compression stage includes energizing the directional control valve causing piloting of the pilot check valve which opens in order to allow sending high pressure oil contained within the hydraulic accumulator into the chamber of the hydraulic central block.
13. The method according to claim 9, wherein the extraction stage of the final piece includes de-energizing of the directional control valve.
14. The method according to claim 9, wherein the withdrawal of the final piece is held by mold extraction devices.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0059] For an easier understanding of the technique, drawings are herein attached, which represent preferred embodiments and which, however, are not intended to limit the scope of the present application.
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DESCRIPTION OF THE EMBODIMENTS
[0383] The present application describes a modular unit for injection-compression molding to enable the use of standard injection molding machines not prepared thereto in an economic way and without significant change to its original composition.
[0384] Thus, the original closure assembly of the injection machine shall perform the original mold closing and opening function leaving it up to the modular unit to undertake the intermediate stages in an injection-compression molding cycle. In order to undertake the compression action there is no need to move the high mass of the injection machine closure assembly but rather the movable pieces of the mold itself. Thus, controlling the compression movement shall be more precise and easily moldable and less demanding in terms of power, due to significant reduction of mass inertia involved. In general, only one of the mold parts needs to be moved, the one usually designated as core. This movement, which shall correspond to a progressive reduction in the volume of the molding cavity to obtain the desired compression, shall be performed in a first stage, which shall be designated as primary compression, through the kinematic control provided by a servomotor engine.
[0385] Primary compression is carried out until the molding cavity corresponds to a volume proximate to the final volume, i.e. a volume between 102 and 105% of the final volume. The final volume, which shall correspond to the volume of the completely-molded piece, shall be obtained through compression by at least one hydraulic cylinder. This hydraulic force applied during the final molding stage by compression will also allow maintaining the pressure during volume reduction compensation of the molded piece obtained from cooling thereof. The hydraulic pressure and flow rates necessary for hydraulic cylinder operation are obtained from the original machine hydraulic circuit dedicated to the so-called service molds.
[0386] The modular unit for injection-compression molding (1) is a tool that can be used for several molds dedicated to injection with compression, such as the mold for product n (71) and the mold product n+1 (72) shown in
[0387] The modular unit for injection-compression molding (1) is designed to be compatible with EUROMAP and SPI dimensions for injection machine closure assemblies, either in dimensional aspects for clamping to the movable platen of the injection machine (21) to the stationary platen of the injection machine (22), or in operating details such as the positioning of the extraction systems.
[0388] However, modular units may have another version, designed to be installed in the central body of composite or multi-position molds as shown in
[0389]
[0390] The modular unit for injection-compression molding (1) comprises a modular unit structure for simple injection-compression molding (20) positioned on the movable platen of the injection machine (21) through the centering ring of the modular unit (9) and secured by suitable fastening accessories.
[0391] In the structure of the modular unit for simple injection-compression molding (20) kinematic systems, at least one kinematic converter (4) and at least one sliding wedge (5) may be installed, the kinematic converter being driven by the ball screw (2) and ball nut (3) assembly, which is in turn driven by a servomotor. The kinematic system enables accurate displacement and according to the programmed diagram of the movable base platen (6) during the compression stage. This movable base platen (6) is connected to the movable mold structure supporting the mold core (26).
[0392] Within the modular unit structure for simple injection-compression molding (20) is an hydraulic cylinder consisting of a central hydraulic block (7) constituting the jacket for said hydraulic cylinder and the hydraulic cylinder rod (8). This hydraulic cylinder rod (8) is connected to the movable base platen (6) of the module. When loading the central hydraulic block (7) with oil at a proper pressure, the hydraulic cylinder rod (8) will push the movable base platen (6), continuing the movement produced thereon by the ball screw assembly (2).
[0393] The movable base platen (6) features two types of actuation. The first one is promoted by the servomotor that, through the kinematic system consisting of the ball screw (2) and ball nut (3) assembly and the kinematic converter system consisting of at least one kinematic drive (4) and at least one sliding wedge (5).
[0394] This movement by the movable base platen (6) and thus the mold core (26) shown in
[0395] This hydraulic cylinder assembly is powered by a small hydraulic unit, whose oil dynamic power supply will, if possible, be provided by the injection machine, for example in the service molds, or in the case of purely electric injection machines, by a dedicated oil dynamic central supply, from the hydraulic supply point (14) shown in
[0396] The hydraulic unit is composed by a central hydraulic block (7) with hydraulic accumulator (13) and control valves (12) intended to control the supply of high pressure oil to the hydraulic cylinder for controlling thereof embedded in said unit. This oil comes from the hydraulic accumulator (13) which is loaded during non-compression cycle.
[0397] A pilot suction valve (15) allows sucking oil into the chamber of the central hydraulic block (7) when the hydraulic cylinder rod (8), upon the effect of movable base platen (6) traction, when it is moved by the kinematic system driven by servomotor, during primary compression stage.
[0398] Subsequently to the displacement by servomotor, piloting the suction valve (15) is cancelled and the directional control valve (12) is triggered, thus switching state. The pilot check valve (16) will then allow passage of high pressure oil into the hydraulic chamber of the central hydraulic block (7) which shall provide the necessary strength to the final compression stage. At this stage, the movable part of the mold, the mold core (26) compresses the material contained in the volume between said mold core (26) and the mold cavity (25). This compression is performed until the gap between the contact faces of the mold core (26) and mold cavity (25) is null, i.e., until the mold cavity reaches its final volume.
[0399] The primary compression (servo) and the end compression (hydraulic) movements take place only when the mold structure block A (56) and the mold structure block B (57) are completely closed by the action of the injection machine closure system, stationary platen of the injection machine (22) and movable platen of the injection machine (21).
[0400] The hydraulic and servo movement control program can optionally enable the overlapping thereof in order to take advantage from the simultaneity of compressive forces generated by each function (servo and hydraulic). The cycle is controlled by an electric control system (60) integrated in the assembly.
Operating Cycle of a Simple Version of the Modular Unit for Injection-Compression Molding
[0401] The initial operating condition of the modular unit for injection-compression molding (1), which shall be hereinafter described, corresponds to the open mold stage as shown in
[0402] So being, the operating cycle of a simple version of the modular unit for injection-compression molding (1) comprises the following steps: [0403] the modular unit for injection-compression molding (1) is fastened to the movable platen of the injection machine (21) being guided by the centering ring of the modular unit (9); [0404] the mold is mounted between the movable base platen (6) of the modular unit and the stationary platen of the injection machine (22); [0405] hydraulic connection to a mold service outlet of the injection machine (14) is performed; [0406] the closure unit sets a sufficient opening so as to create the space between the mold component structures connected to the movable platen of the injection machine (21) and to the stationary platen of the injection machine (22), respectively mold structure block A (56) and mold structure block B (57) and between the mold core (26) and the piece of the mold cavity (25) required to the complete extraction of the molded piece, whereupon conditions corresponding to the open mold stage are defined.
[0407] In this last stage, the cavity sealing rim (28) is in maximum outflow position which corresponds to the maximum expansion of the compression springs of the cavity sealing rim (29).
[0408] Once the system is in the initial conditions the mold closing stage occurs, as shown in
[0409] The injection machine closure unit performs mold closing step, for such approaching the movable platen of the injection machine (21) to the stationary platen of the injection machine (22). This closing movement is completed when the mold structure pieces, in particular mold structure block A (56) and mold structure block B (57) are joined and are fastened together with the maximum closing force provided by the injection machine closure assembly.
[0410] However, within the mold and due to this mold closure movement, the mold cavity sealing rim (26) comes into contact with the mold cavity structure (25), thus closing the volume between the mold cavity (25) and the mold core (26), the sealing being ensured by the compression provided by compression springs in the cavity sealing rim (29).
[0411] Once the mold is closed, the filling stage of the mold (17) begins, as shown in
[0412] The volume created by closing the mold before injection is greater than the volume occupied by the molten material mass. The sealing of this volume, provided by the mold sealing rim (28) prevents the molten material from flowing out of the molding cavity.
[0413] Once the injection of molten material is complete, the primary compression stage (18) begins, as shown in
[0414] The servomotor is set in motion by actuating the kinematic system consisting of a kinematic converter (4) and sliding wedge (5) via the ball screw (2) and ball nut (3) systems. This movement results in the displacement of the movable base platen (6) supporting the movable piece of the mold with which the mold core (26) is solidary, so that it penetrates more deeply into the interior of the mold cavity (25), reducing the volume of the space between the mold cavity (25) and the mold core (26) containing the injected molten material mass. This volume reduction of the cavity causes the molten material to compress so that once the kinematic system motion is complete, only a residual volume of some percentage units relative to the volume of the geometric form of the final molding remains unfilled.
[0415] The forces opposing the movement correspond to the deformation viscoelastic forces of the molten mass and friction forces developed between the outer layers of the molten polymer and the core and cavity surface when flowing into the free space so as to occupy it.
[0416] The compression of the compression springs in the cavity sealing rim (29) of the mold act, as implied by designation thereof, on the cavity sealing rim (28) while maintaining it adjusted to the mold cavity (25) thus ensuring the sealing of molding volume and that molten mass does not flow out of the molding cavity.
[0417] During the movement of the movable base platen (6), piloting of the pilot suction valve (15) will be present allowing the oil to be sucked into the chamber of the central hydraulic block (7). Piloting of the pilot suction valve (15) shall be complete upon completion of the movable base platen (6) and hydraulic cylinder rod (8) movement and thus also the penetration movement of the mold core (26). At this point the designated primary compression stage of molten material mass is complete with consequent nearly total filling of the mold cavity.
[0418] The final compression stage is then started, as shown in
[0419] A high momentary force onto the movable base platen (6) is thus created and consequently on the mold core (26) which compresses the molten material to its final volume corresponding to the final shape of the piece intended to be produced, before the later shrinks upon cooling and solidifying the melt.
[0420] The high hydraulic pressure will be maintained until the contraction of the molded piece is complete, i.e. until cooling time elapses. At this point, maximum penetration between the mold core (26) and the mold cavity (25) is achieved when the separating surface thereof is neutralized.
[0421] Once the programmed time for cooling the molded piece has elapsed, the extraction stage of the final piece begins, as shown in
[0422] When the extraction stage shown in
Operating Cycle of Complex Versions of the Modular Unit for Injection-Compression Molding
[0423] The modular unit for injection-compression molding (1) with kinematic and hydraulic system modifications can be modified to activate more than one platen. In one embodiment, shown in
[0424] The version shown in
[0425]
[0426] Conditions shown in
[0427] In the beginning of the cycle, the movable platen of the molding machine (21) and the stationary platen of the injection machine (22) move towards each other until complete closure when the mold structure block A (56) and mold structure B (57) are in contact with mold structure unit C (58). With the mold completely closed, as shown in
[0428] Under such conditions, the filling cycle stage begins, as shown in
[0429] Once the filling process is complete, the cycle continues with the primary compression stage, as shown in
[0430] This primary compression stage movement can be modeling through servomotor control according to the characteristics desired for cavity filling influenced by polymer rheological characteristics and cavity geometrical details.
[0431] Subsequently, the final compression stage as shown in
[0432] At the end of compression, the pieces of the mold, particularly the mold cavity piece 1 (31), mold core piece (32), mold cavity piece 2 (37) and mold core piece 2 (38), shall be nearly in contact with merely an initial separation corresponding to molded pieces contraction during the cooling and solidification of molten masses. Once cooling is complete, these pieces shall be in full contact under continuous hydraulic pressure until cooling and hence full contraction take place.
[0433] After cooling stage, the opening movement of the movable platen of the injection machine (21) performs the opening of the mold as illustrated in
[0434]
[0435] The present embodiment is of course in no way restricted to the embodiments herein described and a person of ordinary skill in the art will be capable of providing many modification possibilities thereto without departing from the general idea of the invention as defined in the claims.
[0436] All embodiments described above are obviously combinable with each other. The following claims define further preferred embodiments.