Reconfigurable and reusable flexible membrane mold for casting panels of variable geometry
09539739 ยท 2017-01-10
Inventors
Cpc classification
International classification
B29C33/30
PERFORMING OPERATIONS; TRANSPORTING
B28B7/02
PERFORMING OPERATIONS; TRANSPORTING
B29C43/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A reconfigurable and reusable flexible membrane mold by which architectural panels and the like can be cast into a variety of different sizes and shapes. The membrane mold includes a pair of mirrored sides that are arranged in spaced, opposing alignment so that a gap between the sides can be filled with casting material. Each side of the mold has a flexible forming membrane with a plurality of receiving cups extending therefrom. An array of actuating pins is coupled to each of the forming membranes by way of ball joints standing atop the actuating pins and ball joint connector heads within which the ball joints are received and retained. The ball joint connector heads are received by and embedded within the receiving cups. The flexible forming membranes are responsive to pushing and pulling forces applied thereto by the actuating pin in order to shape the forming membranes.
Claims
1. A reconfigurable membrane mold from which variable geometry objects are cast, said membrane mold including: a flexible forming membrane having a plurality of coupler receiving cavities; a corresponding plurality of coupler connector heads received by and retained within respective ones of said plurality of coupler receiving cavities; an array of actuating pins to receive and apply pushing and pulling forces to said flexible forming membrane to change the shape of said forming membrane depending upon the direction of the pushing and pulling forces being applied to said array of actuating pins; and a plurality of couplers connected to respective ones of said plurality of coupler connector heads, each of said plurality of couplers also being attached to a corresponding one of said array of actuating pins, such that the pushing and pulling forces applied to said array of actuating pins are transferred to said flexible forming membrane by way of said plurality of couplers and the plurality of coupler connector heads to which said plurality of couplers are respectively connected.
2. The reconfigurable membrane mold recited in claim 1, wherein there is a sleeve surrounding each of said array of actuating pins, said plurality of couplers being attached to respective ones of said actuating pins at said sleeves thereof.
3. The reconfigurable membrane mold recited in claim 2, wherein there is a fastener extending through each of said array of actuating pins and the sleeve surrounding said actuating pin so as to attach said sleeve to said actuating pin.
4. The reconfigurable membrane mold recited in claim 1, wherein each of said plurality of couplers is a ball joint.
5. The reconfigurable membrane mold recited in claim 4, wherein each of said plurality of coupler connector heads has a swivel cavity at which to receive a respective one of said plurality of ball joints, such that said plurality of coupler heads can swivel in any direction around respective ones of said plurality of ball joints depending upon the direction of the pushing and pulling forces being applied by said array of actuating pins to said flexible forming membrane to change the shape thereof.
6. The reconfigurable membrane mold recited in claim 5, wherein said plurality of coupler connector heads are responsive to pushing, pulling and swivel forces to correspondingly change the shape of said flexible forming membrane depending upon the direction of the pushing and pulling forces being applied by said array of actuating pins to said flexible forming membrane.
7. The reconfigurable membrane mold recited in claim 5, wherein each of said plurality of coupler connector heads has an opening formed therein lying opposite said swivel cavity and a lip surrounding said opening to engage and retain said plurality of ball joints within said swivel cavities, said ball joints attached to corresponding ones of said array of actuating pins by way of said openings in said plurality of coupler connector heads.
8. The reconfigurable membrane mold recited in claim 1, wherein said flexible forming membrane is manufactured from a moldable material, each of said plurality of coupler connector heads to which respective ones of said plurality of couplers are connected has a flow channel running along a side thereof in which to receive the moldable material from said forming membrane, whereby said plurality of coupler connector heads are embedded within respective ones of said plurality of coupler receiving cavities of said forming membrane.
9. The reconfigurable membrane mold recited in claim 8, wherein each of said plurality of coupler connector heads also has an armature ring extending therearound and having at least one slot formed therein which communicates with said flow channel, the moldable material from said forming membrane being received through the slot of said armature ring and within said flow channel by which said plurality of connector heads are surrounded with the moldable material and thereby anchored within said plurality of coupler receiving cavities of said forming membrane.
10. A reconfigurable membrane mold from which variable geometry objects are cast, said membrane mold having a pair of sides lying opposite one another and separated by a gap in which to receive a casting material, each side of said membrane mold including: a flexible forming membrane having a plurality of ball joint receiving cavities; a corresponding plurality of ball joint connector heads received by and retained within respective ones of said plurality of ball joint receiving cavities; an array of actuating pins to receive and apply pushing and pulling forces to said flexible forming membrane to change the shape of said forming membrane depending upon the direction of the pushing and pulling forces being applied to said array of actuating pins; and a plurality of ball joints connected to respective ones of said plurality of ball joint connector heads, each of said plurality of ball joints also being attached to a corresponding one of said array of actuating pins, such that the pushing and pulling being applied to said array of actuating pins are transferred to said flexible forming membrane by way of said plurality of ball joints and the plurality of ball joint connector heads to which said plurality of ball joints are respectively connected.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENT
(9) Referring to the drawings,
(10) The flexible forming membrane 3 of the one side 1 of the mold shown in
(11) Hollow, cylindrical pin sleeves 16 are coupled to respective ball joint connector heads 5. The arrayed grid of actuating pins 7 is received inwardly of and mated (e.g., adhesively bonded) to the hollow pin sleeves 16. As will be described in greater detail when referring to
(12) The perimeter 12 of the membrane 3 can be polygonal or spline-like having any number of edges depending upon the arrangement of the actuating pins 7. Additionally, the forming face 9 can be customized to integrate a variety of grooves, patterns, or relief designs. The plurality of ball joint receiving cups 14 are initially axially aligned with the arrayed grid of actuation pins 7 by way of the ball joint connector heads 5 and the pin sleeves 16 attached thereto. The thickness of the perimeter 12 between the front forming face 9 and the back face 10 of the forming membrane 3 is variable and dependent on the spacing of the grid of the actuating pins 7. As the pins 7 become less densely packed, the thickness of the perimeter 12 increases proportionately, and vice versa. The length and geometry of the ball joint receiving cups 7 are chosen to buckle or stiffen to accentuate deformity of the membrane 3.
(13) As earlier explained, the ball joint receiving cups 14 which extend from the back face 10 of the flexible forming membrane 3 form cavities that are sized and shaped to accommodate the ball joint connector heads 5 therewithin. During manufacture of the membrane mold 1, the cups 14 of the forming membrane 3 are cast around and bonded to each of the connector heads 5. Thus, the ball joint connector heads 5 will be embedded within the ball joint receiving cups 14 so as to prevent a separation of heads 5 from cups 14 as the forming membrane 3 is shaped by the actuating pins 7.
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(15) As was previously explained while referring to
(16) In this regard, during the manufacture of the flexible membrane mold side (designated 1 in
(17) At the conclusion of the molding process, the casting slots 28 and the casting channels 32 will be filled with molding material to create a reliable anchor by which to hold the ball joint connector head 5 inside the respective ball joint receiving cups 14 of membrane 3. Hence, and as is best illustrated in
(18) Turning now to
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(20) As an advantage of the membrane mold 50 having the pair of mirrored sides 1-1 and 1-2 herein disclosed, at the conclusion of the casting process, pulling forces can be applied to the actuating pins 7 in order to separate the opposing flexible forming membranes 3-1 and 3-2 from one another so that the casting can be removed from the gap 40. The mirrored sides 1-1 and 1-2 of mold 50 may then be reused and reconfigured to form different shapes as needed in the architectural and industrial communities.
(21) As was previously explained, the ball joint connector heads 5 that are embedded within the ball joint receiving cups 14 of the flexible forming membranes 3-1 and 3-2 are adapted to freely swivel around respective ball joints 20. More particularly, as the arrayed grids of actuating pins 7 apply back and forth, pushing and pulling forces along the membranes to impart a corresponding curvature thereto, the ball joint receiving cups 5 will swivel relative to pins 7. That is, while the back and forth moving actuating pins 7 remain parallel to each other during the shaping of the flexible forming membranes 3-1 and 3-2 at the mirrored sides 1-1 and 1-2 of the membrane mold 50, any number of the ball joint connector heads 5 can swivel out of their initial axial alignment with the actuating pins 7 depending upon the curvature imparted to the membranes. Thus, pinpoint shaping of the flexible forming membrane 3-1 and 3-2 can be achieved to produce smooth, high resolution topographical surfaces. What is more, the discrete pin pressures being applied by actuating pins 7 act to smooth out undesirable dimples and thereby permit a continuous curvature of the flexible forming membranes 3-1 and 3-2 in three dimensions.
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