METHOD AND DEVICE FOR MAKING WIRE BASKETS
20190143397 ยท 2019-05-16
Inventors
Cpc classification
B21F27/12
PERFORMING OPERATIONS; TRANSPORTING
B21F45/00
PERFORMING OPERATIONS; TRANSPORTING
B21F15/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A device and method for making a wire basket, the device having a spinning fixture with a top plate with an outer periphery, arms attached at a top end at the periphery of the top plate and projecting downwardly, such that bottom ends of the arms collectively form a circular arrangement having a diameter greater than the diameter of the top plate, a means for guiding wire onto the spinning fixture such that the wire is wound onto the spinning fixture in a preselected pattern, and contacts to maintain the wire onto the spinning fixture in preselected locations, and the method including providing an apparatus for delivery of wire through a wire feed and for translating the wire feed lineally along a traverse, providing a spinning fixture for winding wire thereon, and winding a preselected pattern of wire onto the spinning fixture by translating the wire feed along the transverse.
Claims
1. A device for making a wire basket, comprising: a) a rotatable spinning fixture with a circular top plate with an outer periphery; b) at least three arms attached at a top end at the periphery of the top plate and projecting downwardly at angle theta relative to the vertical, such that bottom ends of the arms collectively form a circular arrangement having a diameter greater than the diameter of the top plate; c) a means for guiding wire onto the spinning fixture such that, as the spinning fixture is rotated, the wire is wound onto the spinning fixture in a preselected pattern; and d) the spinning fixture includes contacts to maintain the wire on to the spinning fixture in preselected locations.
2. The device claimed in claim 1, wherein the guiding means comprises a wire feed connected to a traverse which is adapted to translate the wire feed along the traverse which is oriented substantially parallel to the arms at an angle theta relative to the vertical.
3. The device claimed in claim 2, wherein the traverse comprises a traverse guide and a traverse drive operatively coupled to the wire feed, the wire feed being moveable along the length of the traverse guide by the traverse drive.
4. The device claimed in claim 3, wherein the contacts are prongs which extend away from a top surface of each arm.
5. The device claimed in claim 4, wherein each of the arms comprises a longitudinal member and a side plate positioned adjacent the longitudinal member with at least two prongs extending from the side plate.
6. The device claimed in claim 5, wherein the side plate is retractably coupled to the longitudinal member, the side plate having: an extended position, where the prongs extend beyond the top surface of the longitudinal member; and a retracted position, where the prongs are situated below the top surface of the longitudinal member.
7. The device claimed in claim 6, wherein each of the arms further comprises a spring coupled to the side plate to bias the side plate in the extended position.
8. The device claimed in claim 7, further comprising a release actuator operatively coupled to each side plate to shift the side plates into the retracted position.
9. The device claimed in claim 8, further comprising a welding apparatus having welding electrodes for forming welds at preselected locations on the wire.
10. The device claimed in claim 9, wherein the welding apparatus is substantially oriented parallel to the arms at an angle theta relative to the vertical.
11. The device claimed in claim 10, further comprising at least three additional arms without side plates, the three additional arms attached at the top end at the periphery of the top plate alternately with the arms and projecting downwardly at angle theta relative to the vertical.
12. A method for making a wire basket, comprising: a) providing a traverse apparatus for delivery of wire through a wire feed and for translating the wire feed lineally along a traverse; b) providing a rotatable spinning fixture for winding wire thereon, the wire being received from the wire feed and wound onto the spinning fixture; and c) winding a preselected pattern of wire onto the spinning fixture by selectively translating the wire feed along the transverse.
13. The method claimed in claim 12, wherein winding the preselected pattern of wire onto the spinning fixture further comprises rotating the spinning fixture while selectively translating the wire feed along the transverse
14. The method claimed in claim 13, wherein the spinning fixture comprises elongate members having a top surface, the winding step comprising directing the wire onto contacts extending above the top surfaces of the longitudinal member to form the preselected pattern of wire.
15. The method claimed in claim 14, further comprising forming welds at preselected locations on the formed wire pattern.
16. The method claimed in claim 15, wherein the spinning fixture comprises side plates retractably coupled to the elongate members, the contacts being prongs fixed to the side plates, the method further comprising retracting the side plates such that the prongs are situated below the top surface of the longitudinal member.
17. The method claimed in claim 16, wherein the preselected wire pattern is formed with a single strand of wire.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The present invention will now be described by way of example only with reference to the following drawings in which:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0028] First referring to
[0029] Referring now to
[0030] Referring now to
[0031] Referring now to
[0032] Copper arms without prongs 416 are long, rectangular members while copper arms with prongs 418 include the same long rectangular member with side plates 422 that have retractable positioning prongs 420. Each copper arm with prongs 418 has three positioning prongs 420: lower prong 424, middle prong 426 and upper prong 428.
[0033] Now referring to
[0034] The movement of piston rod 520 in a downward direction 514 causes the unfolding of straight linkage 510 and L-shaped linkage 512 which in turn opens shear blades 506, as shown in
[0035] Referring now to
[0036] The reader will note referring to
[0037] The reader will also note that top plate 410 has an upper diameter 489 and there is a lower diameter 487 which is the distance of the lower tips 485 to the common center line of the wire basket apparatus.
[0038] Please note that the wire basket apparatus rotates about this center line which is shown as small vertical lines in
[0039]
[0040]
[0041]
[0042]
[0043] One loop takes in 420 of rotation whereas 6 loops take in 2520 of rotation. Downward wire forming paths 108 are started on odd-numbered copper arms starting at first copper arm 446, i.e., first copper arm 446, third copper arm 448, fifth copper arm 450, seventh copper arm 452, ninth copper arm 454 and eleventh copper arm 456. Upward wire forming paths 110 are started at the lower prong 424 on even-numbered copper arms, starting at sixth copper arm 451, i.e., sixth copper arm 451, eighth copper arm 453, tenth copper arm 455, twelfth copper arm 457, second copper arm 458, and fourth copper arm 449. The last upward wire forming path starts at the lower prong of fourth copper arm 449 and terminates at second top pin 413, completing the wire basket 104.
[0044] When a new downward wire forming path 108 is started, the wire crosses over top plate 410 from the upper prong 428 of the last copper arm in the previous upward wire forming path 410 to the arm shoulder of the starting copper arm without prongs 416 that starts the next downward wire forming path 108. The steps in forming a wire basket 104 are described in greater detail in
[0045]
[0046] The copper arms without prongs 416 may be made of other suitable material other than copper. For example, it may be a copper alloy, a brass alloy, an aluminium alloy, or in fact be made of steel or some other metallic material which is suitable for the purpose. The reader will further note that the retractable positioning prongs 420 are retracted in order to remove the completed wire basket from the spinning fixture 400 once the desired pattern has been completed.
[0047] In Use
[0048]
[0049] Step 1, shown as 602: wire 102 is fed through the tensioner 312 of wire feed 306 located on traverse apparatus 300.
[0050] Step 2, shown as 604: wire 102 is clamped onto wire jam cleat 444 before being wrapped around first pin 411 located on top of spinning fixture 400.
[0051] Step 3, shown as 606: spinning fixture 400 and traverse apparatus 300 move simultaneously to begin laying wire 302 in first wire forming path 112. Spinning fixture 400 turns counter clockwise in spin direction 408 at the same time that wire feed 306 moves down traverse 302 in traverse downward direction 310.
[0052] Step 4, shown as 608: The simultaneous movement of wire feeder 306 in traverse downward direction 310 and spinning fixture 400 causes wire 102 to abut against arm shoulder 414 of a first copper arm 446 without prongs then against upper prong 428 of second copper arm 447 with prongs.
[0053] Step 5, shown as 610: Wire 102 is then moved over third copper arm 448 without prongs 416 and against middle prong 426 of fourth copper arm 449 with prongs.
[0054] Step 6, shown as 612: Wire 102 is moved over the fifth copper arm 450 and then against lower prong 424 of the sixth copper arm 451, thereby completing the first downward wire forming path 108.
[0055] Step 7, shown as 614: Traverse apparatus 300 changes direction so that wire feeder 306 moves along traverse 302 in the traverse upward direction 308, beginning an upward wire forming path 110, also called the second wire forming path 114, that loops wire 102 around the seventh through twelfth copper arms. The downward wire forming path 108 is reversed, the upward wire forming path 110 continuing until wire 102 abuts against the upper prong 428 of twelfth copper arm 457.
[0056] Step 8, shown as 616: wire 102 is directed across the top plate 410 of spinning fixture 400 to the arm shoulder 414 of the third copper arm 448, which has no prongs.
[0057] Step 9, shown as 618: spinning fixture 400 rotates in a counter clockwise direction so that wire 102 moves over the fourth copper bar 449 without prongs.
[0058] Step 10, shown as 620: the above steps of alternatively laying wire 102 in a first wire forming path 112 followed by a second wire forming path 114 is repeated five more times to complete wire basket 104.
[0059] Step 11, shown as 622: wire 102 is severed from traverse apparatus 300 at top plate 410 with a shear 508.
[0060] Step 12, shown as 624: welding at weld positions 210 begins using weld apparatus 200. In each weld position 210, five side welds 212 and one top weld 214 are completed using side electrodes 202 and top electrodes 204, as shown in
[0061] Step 13, shown as 626: prongs 420 are retracted using prong retraction mechanism 430 by moving side plates 422 upwardly using release actuators 436 to raise fixture ring 438 thereby moving side plates 422 from extended position 432, shown in
[0062] Step 14, shown as 628: wire basket 104 is removed from spinning fixture 400 by simply lifting it vertically off spinning fixture 400 after opening the wire jam cleat 444.
[0063] Wire basket 104 is made from one continuous length of wire and formed and welded in a single continuous operation and includes a star-shaped closed bottom, as shown in
[0064] The advantages of the present invention should be apparent. The present invention provides a method of producing an intricately, symmetrically-patterned wire basket suitable for holding the root systems of trees and shrubs that is nearly fully automated, requiring minimal operator action. The operator is only required to set wire 102 in wire jam cleat 444 at the beginning of the basket forming process and then to release the grippers and remove the basket when it is finished. Due to the diamond shape of wire pattern produced the wire basket will stretch when the top ears are tied together around a tree ball. The basket requires little clamping if any.
[0065] The method is fast, efficient and inexpensive as the entire operation is completed with one continuous length of wire and one rotation of the spinning fixture to weld the basket. The size of the basket can be varied by using different sized spinning fixtures and adjusting how far wire feeder 306 travels up and down traverse 302 accordingly. A variety of complex, symmetrical basket patterns with closed bottoms are also possible by varying the number of copper arms and prongs on the spinning fixture.
[0066] It should be apparent to persons skilled in the arts that various modifications and adaptation of this structure described above are possible without departure from the spirit of the invention the scope of which defined in the appended claim.