Injection moulding apparatus and method for injection moulding and IR-compatible display frame
10730216 ยท 2020-08-04
Assignee
Inventors
Cpc classification
G02B6/43
PHYSICS
B29C45/14065
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/5665
PERFORMING OPERATIONS; TRANSPORTING
G06F3/0421
PHYSICS
B29K2995/0027
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/5635
PERFORMING OPERATIONS; TRANSPORTING
B29C2045/14122
PERFORMING OPERATIONS; TRANSPORTING
B29C45/572
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14336
PERFORMING OPERATIONS; TRANSPORTING
B29L2031/3475
PERFORMING OPERATIONS; TRANSPORTING
B29C45/04
PERFORMING OPERATIONS; TRANSPORTING
B29C45/561
PERFORMING OPERATIONS; TRANSPORTING
G06F2203/04103
PHYSICS
International classification
B29C45/57
PERFORMING OPERATIONS; TRANSPORTING
B29C45/04
PERFORMING OPERATIONS; TRANSPORTING
B29C45/14
PERFORMING OPERATIONS; TRANSPORTING
B29C45/56
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An injection moulding apparatus and method for producing a moulded article is disclosed herein. In a described embodiment, the method comprises: (i) securing a layer of film to a part of a first mould half at step 504; (ii) adjusting relative position of the first mould component and a second mould component to an initial moulding position at step 506 to define a mould cavity; (iii) injecting molten moulding material into the mould cavity at step 508 to enable the molten moulding material to contact the layer of protective film; (iv) moving a movable core at step 510 to compress the molten moulding material in the mould cavity; and (v) cooling the compressed molten moulding material at step 514 to bond the layer of film to the cooled moulding material to form the moulded article.
Claims
1. An IR-transmissible display frame for an IR-touch screen, the display frame comprising: a frame body comprising a top surface and a leading edge; a film formed over the top surface of the frame body and terminating at or adjacent to the leading edge; and an optical waveguide protruding from the frame body and towards the IR-touch screen and which allows IR light to pass through, the waveguide having an external wall from which the IR light exits the waveguide, wherein the external wall is spaced from the leading edge by a parting line offset, and wherein the parting line offset is in the range of 0.2 mm to 0.4 mm.
2. The IR-transmissible display frame according to claim 1, wherein the optical waveguide is integrally formed with the frame body.
3. The IR-touch electronic device comprising the display frame of claim 1.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) An exemplary embodiment will now be described with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENT
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(20) The infrared touch screen 102 allows a user to interact with the displayed contents of the ebook and the infrared touch screen 102 includes an array of infrared LED transmitter and detector pairs (not shown) arranged underneath a frame body 208 of the display frame 200. The array of X-Y infrared LED transmitter and detector pairs are arranged to create an infrared grid just on the screen's surface and when the infrared grid is disrupted (for example by a finger touching on the infrared touch screen 102), the exact location of the disruption is picked up by the detector.
(21) In view of the above, the display frame 200 includes an optical clearance 204 (see
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(26) As shown in
(27) In this embodiment, the cavity depth 608 is about 2 mm (although other values are possible, for example, from 0.3 mm to 1.20 mm) and the lower mould front engagement surface 624a sits lower than the lower mould rear engagement surface 624b to define an optical clearance gap 609 as shown in
(28) The injection moulding apparatus 600 also includes an injection channel and hot runner valve gate needles, and these parts are not shown in the drawings, since these are well known in the art.
(29) At step 502 of
(30) Next, at step 504, a layer of film 628 is positioned and secured to the lower mould cavity 606 against the lower mould component moulding surface 622 as shown in
(31) At step 506, the injection moulding apparatus 600 activates the hydraulic mechanism to adjust a relative position between the upper mould component 602 and the lower mould component 604. Specifically, the upper mould component 602 is moved towards the lower mould component 604 until the upper mould component engagement surface 618 engages with the lower mould component engagement surface 624 at an initial moulding position to form a parting line 630 and the upper mould component moulding surface 616 cooperates with the lower mould component moulding surface 622 to define the shape and size of the mould cavity 606, as shown in
(32) It should be appreciated that there is an offset 632 between the upper mould component 602 and the lower mould component 604, as defined by a difference in alignment of the upper mould component moulding edge 620 relative to the lower mould component moulding edge 626. In this embodiment, the offset is 0.2 mm, and this is shown more clearly in
(33) In the initial moulding position shown in
(34) Next, at step 512, the movable core 610 carrying the upper mould component moulding surface 616 is moved towards the mould cavity 606 at a pre-defined speed of 100 mm/sec and at a pre-defined force of 1000 KN to a pre-defined final position of zero mm to compress the molten material against the layer of film 628. In other words, the movable core 610 is moved relative to the upper mould component 602 to an intermediate moulding position to compress the molten material, as shown in
(35) At step 514, the injection moulding apparatus 600 turns on a cooling mechanism (not shown) to cool the compressed molten plastic material in situ to a temperature of about 60 C. as shown in
(36) At step 516, the upper and lower mould components 602,604 open with the moulded article 634 stuck to the movable core 610 as shown in
(37) It should be appreciated that manufacturing process of
(38) Based on the described embodiment, which uses injection compression, it helps to produce light waveguides with minimal sink marks and thin wall plastic parts. This is executed by the follow three staggered simultaneous movements: (1) The First movement is to inject the hot plastic material via a hot runner valve gate system through the core into the open cavity space. (2) The Second movement (which begins towards the end of the First Movement, but before the First Movement is completed) is to slide back the mold core plate and shut the valve gate system as soon as the pre-defined plastic material is injected. (3) The Third movement is to move the core forward and compress the injected plastic material until the final part wall thickness is achieved.
(39) The described embodiment is able to minimize sink marks on the moulded article 634, and is able to achieve a much thinner moulded article 634 such as a wall thickness of 0.30 mm to 1.20 mm. Further, it is possible to minimize stress in the moulded article which is normally present from conventional high speed injection moulding of plastic resin. The described embodiment also minimizes warping, bending, twisting and distortion of the final moulded article.
(40) In view of the offset 632 along the parting line 630, the described embodiment is able to achieve a more accurate formation of the optical waveguide 216 since the optical clearance 204 can be formed precisely. If the moulded article 634 includes the inlay 210, the described embodiment ensures that the inlay 210 is prevented from protruding beyond a certain location, and also ensures that light is blocked from exiting the display frame 200 where the light should not.
(41) With the injection moulding method 500, the moulded article 634 (such as the display frame 200) may be formed as a single integrated part together with the optical light waveguide 216 in a single process step, termed as a single shot process. It should also be appreciated that there may be a number of optical light waveguides spaced from each other, but nonetheless, these light waveguides may similarly be integrally formed with the frame body 208. The light source for the grid may be invisible to the human eye (below 380 nm or above 780 nm) or the grid may be formed by light which is visible to the human eye (380 nm-780 nm). The arrangement of the array of LED transmitter and detector pairs may be in a pre-determined direction, whether side-ways, perpendicular or in any pre-defined direction, or just onto the 3-dimensional part surface.
(42) Such an ebook may provide other functions. For example, the ebook may use a light source which is visible to human eye and using the light waveguides which are built into the frame body 208 to illuminate (switch on and off) outer and/or inner circumference of the display frame, or to illuminate (switch on and off) symbols on the frame body 208 based on functions being executed or a message being displayed to the user on the device.
(43) Based on the proposed method, a more accurate and yet smaller optical clearance 204 may be achieved. In this way, lights beams from the LED transmitters are able to pass through the light waveguide 216 and exit the light waveguide 216 to form respective light beams across the surface of the touch screen 104 and the light beams enter corresponding detectors on the other side of the frame 202. In this way, the infrared grid is formed. If one of the light beams is interrupted between its source and the detector, the detector and its electronics convert such interruption into electrical signals which can start or stop one or more functions, or to execute or automate one or more functions.
(44) The precision of the infrared grid is defined by the space and direction between the light waveguides which generate the infrared grid, and can vary from less than 1 mm to any specified dimension. The function of this grid is that one side acts as a light beam source and the opposite side acts as a sensor (i.e. detector/receiver) of this radiation. The light waveguides which are built into the frame 202 are the physical connection between the light beam source (visible or invisible) and its exit point on the plastic surface on one side, and the opposite side of the plastic part where the same light beam enters a defined second light guide and is the physical connection to the sensor (receiver) and its electronics. The bonding of the inlay 210 with the plastic resin also strengthens and improves the structural rigidity of the display frame, and thereby enables the display frame to be thinner. In other words, the inlay 210 or film 628 may carry decorations, texture or haptic designs, and/or provide structural reinforcement to the display frame.
(45) The described embodiments should not be construed as limitative. For example, the ebook may use either infrared red (IR) light or visible or other non-visible light source to generate the light grid. Also, the moulded article 634 may not be the display frame 200 and the moulded article 634 may be a frame for an electronic interactive display device, such as telephones (for example, smart phone display), personal computers (e.g. computer monitors or screens), electronic tablets or interactive display devices used in automotive vehicles or aircrafts (for example, GPS screens, entertainment or infotainment display devices on board cars or airplanes) etc.
(46) In the described embodiment, the parting line offset 223 is indicated as 0.2 mm but this may vary between 0.2 mm to 0.4 mm.
(47) Having now fully described the invention, it should be apparent to one of ordinary skill in the art that many modifications can be made hereto without departing from the scope as claimed.