Wire saw
09827624 ยท 2017-11-28
Assignee
Inventors
Cpc classification
B23D57/0053
PERFORMING OPERATIONS; TRANSPORTING
Y10T83/707
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23D57/0084
PERFORMING OPERATIONS; TRANSPORTING
Y10T83/141
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B23D59/001
PERFORMING OPERATIONS; TRANSPORTING
B23D57/0069
PERFORMING OPERATIONS; TRANSPORTING
B26D2007/013
PERFORMING OPERATIONS; TRANSPORTING
Y10T83/68
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B26D3/16
PERFORMING OPERATIONS; TRANSPORTING
B23D57/0061
PERFORMING OPERATIONS; TRANSPORTING
B23Q9/0042
PERFORMING OPERATIONS; TRANSPORTING
Y10T83/7487
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
Y10T83/424
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
B26D3/16
PERFORMING OPERATIONS; TRANSPORTING
B26D7/01
PERFORMING OPERATIONS; TRANSPORTING
B23Q9/00
PERFORMING OPERATIONS; TRANSPORTING
B23D57/00
PERFORMING OPERATIONS; TRANSPORTING
B23D59/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device for cutting a length of pipe includes a clamp portion for clamping around a length of pipe and a bow moveable with respect to the clamp portion that retains a loop of diamond embedded wire. The device further includes a feed for driving the bow with respect to the clamp portion and a detector for detecting bending of the wire and a control responsive to the detector for controlling feed rates. The device is made of modular parts and has synchronizing arms for clamping around a length of pipe. In one embodiment, the wheels are retained in enclosures with slots through which the cutting wire passes.
Claims
1. A device for cutting an object under water comprising a clamp that at least partially encircles said object for retaining said device to said object, a bow moveable with respect to said clamp, a plurality of wheels on said bow, a cutting wire loop on said wheels, an enclosure surrounding one of said wheels, said enclosure having a slot therein adjacent a portion of said one of said wheels wherein said cutting wire extends through said slot to an outer surface of said one of said wheels; said clamp includes a first and a second moveable arm for extending around said object for retaining said object, said first moveable arm driven by a first cylinder and said second moveable arm driven by a second cylinder, a mechanical synchronization between said first cylinder and said second cylinder wherein said first moveable arm and said second moveable arm move in unison to encircle said object, a frame, and said frame having a plurality of mountings located thereon for receiving one of said first and second moveable arms at any one of said plurality of mounting locations wherein said one of said first and second moveable arms will grasp a range of sizes of pipe at each of said mounting locations that is different from a range of sizes of pipe that can be grasped at any other of said plurality of mounting locations.
2. The device of claim 1 wherein one of said first and second moveable arms has a roller at a distal end thereof for rolling along a surface of said object.
3. The device of claim 1 wherein said device further comprises a motor on said bow for rotating said cutting wire loop around said wheels, a feed drive connected between said clamp and said bow for moving said bow relative to said clamp to thereby urge said cutting wire against said object, a take-up wheel on said bow and engaging said cutting wire loop, a detector for detecting a bending of said cutting wire between outer ends of said bow, and a control responding to said detector, and connected to said feed drive wherein a feed rate is varied with cutting wire bending.
4. The device of claim 1, wherein the enclosure is a first enclosure and said one of said wheels is a first wheel, the device further comprising a second enclosure surrounding a second wheel of said plurality of wheels, and said second enclosure having a slot therein adjacent a portion of said second wheel wherein said cutting wire extends through said slot to an outer surface of said second wheel, and wherein rotational force from said second wheel is not applied to water surrounding said second enclosure.
5. The device of claim 1, wherein said enclosure includes a first half including a first lip wrapping around a circumference of said one of said wheels and a second half including a second lip wrapping around the circumference of said one of said wheels, wherein said first and second lips extend toward each other, and wherein said first and second lips meet each other at a portion of the circumference of said one of said wheels and do not meet each other at another portion of said circumference of said one of said wheels to provide said slot in the enclosure.
6. A device for cutting an object under water comprising a clamp that at least partially encircles said object for retaining said device to said object, a bow moveable with respect to said clamp, a plurality of wheels on said bow, wherein said plurality of wheels are rotatable relative to said bow, a cutting wire loop on said wheels, an enclosure surrounding one of said wheels, wherein said enclosure is fixed relative to said bow and said one of said wheels is rotatable relative to said enclosure, and said enclosure having a slot therein adjacent a portion of said one of said wheels wherein said cutting wire extends through said slot to an outer surface of said one of said wheels; said one of said wheels has first and second spaced apart large diameter side walls and a smaller diameter annular floor between said side walls, said one of said wheels further having a first wheel portion including said first large diameter side wall and said annular floor, said first wheel portion attached to a shaft on said device, said one of said wheels also having a second wheel portion including said second larger diameter side wall, said second wheel portion attachable to said first wheel portion by one or more removable fasteners, and an annular insert between said spaced apart side walls and around said annular floor wherein said annular insert is replaceable by removing said plurality of removable fasteners and removing said second wheel portion without removing said first wheel portion from said shaft.
7. The device of claim 6, wherein said enclosure includes a first half including a first lip wrapping around a circumference of said one of said wheels and a second half including a second lip wrapping around the circumference of said one of said wheels, wherein said first and second lips extend toward each other, and wherein said first and second lips meet each other at a portion of the circumference of said one of said wheels and do not meet each other at another portion of said circumference of said one of said wheels to provide said slot in the enclosure.
8. The device of claim 6, wherein the enclosure is a first enclosure and said one of said wheels is a first wheel, the device further comprising a second enclosure surrounding a second wheel of said plurality of wheels, and said second enclosure having a slot therein adjacent a portion of said second wheel wherein said cutting wire extends through said slot to an outer surface of said second wheel, and wherein rotational force from said second wheel is not applied to water surrounding said second enclosure.
9. A device for cutting an object while under water, said device comprising a clamp that at least partially encircles said object for retaining said device to said object, a bow moveable with respect to said clamp, a plurality of wheels on said bow wherein each of said wheels has an annular groove in an outer surface thereof, a cutting wire loop on said wheels wherein said wire loop is received in said annular groove of said plurality of wheels, one of said wheels having first and second spaced apart large diameter side walls and a smaller diameter annular floor between said side walls, said one of said wheels further having a first wheel portion including said first large diameter side wall and said annular floor, said first wheel portion attached to a shaft on said device, said one of said wheels also having a second wheel portion including said second larger diameter side wall, said second wheel portion attachable to said first wheel portion by one or more removable fasteners, and an annular insert between said spaced apart side walls in the annular groove and around said annular floor wherein said annular insert is replaceable by removing said plurality of removable fasteners and removing said second wheel portion without removing said first wheel portion from said shaft.
10. The device of claim 9 wherein said wheel is a drive wheel and said first wheel portion is non-rotatably attached to said shaft and said shaft drivingly connected to a motor wherein said motor and said drive wheel rotate said cutting wire loop around said wheels.
11. The device of claim 10 wherein said one of said wheels is enclosed in a clamshell having a first half extending around said first wheel portion and a second half extending around said second wheel portion and wherein said first half will remain attached to said device while said second half and said second wheel portion are removed to replace said annular insert.
12. The device of claim 11 wherein said clamshell has a slot therein adjacent a portion of said one of said wheel wherein said cutting wire extends through said slot to an outer surface of said one of said wheels, wherein rotational force from said one of said wheels is not applied to water surrounding said wheel enclosure.
13. The device of claim 12 wherein said device further comprises a motor on said bow for rotating said cutting wire loop around said wheels, a take-up wheel on said bow and engaging said cutting wire loop, a detector for detecting a bending of said cutting wire between staid-outer ends of said bow, and a control responding to said detector, and connected to said feed drive wherein a feed rate is varied with cutting wire bending.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A better understanding of the invention will be had after a reading of the following detailed description taken in conjunction with the drawings wherein:
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
(17)
(18)
(19)
(20)
(21)
(22)
(23)
(24)
(25)
DETAILED DESCRIPTION OF PREFERRED EMBODIMENT
(26) Referring to
(27) Mounted with respect to the frame 14 are first and second arm assemblies each of which includes an upper arm 20, 22 attached to the frame 14 and a lower arm 21, 23 movable with respect to the associated upper arms 20, 22 for reaching around the outer circumference of the pipe 12 and retain the frame 14 firmly against the pads 15-18. The machine 10 further includes a bow 24 having a central portion 26 and two generally arched arms 28, 30 having guide wheels 32, 34 at the distal ends thereof. Positioned near the central portion 26 is a drive wheel 36 which is drivingly rotated by an appropriate motor 38. Mounted on the opposite side of the central portion 26 is a take-up wheel 40, and wrapped around the four wheels 32, 34, 36, 40 is a loop of diamond embedded wire 42 of the type commonly known in the art. To cut across the length of pipe 12, the bow 24 is retained to the frame 14 by a plurality of elongate vertically oriented parallel tracks 43, 44, 45 attached on the frame 14 with each track 43, 44, 45 receiving a slideable track follower 46, 47, 48 mounted on the bow 24 so as to be longitudinally moveable in a plane perpendicular to the length of the pipe 12. The bow 24 is driven with respect to the frame 14 by a threaded feed shaft 49 rotated by a motor 51 to thereby force the portion of the wire 42 that extends between wheels 32, 34 at the ends of the arms 28, 30 through the pipe 12 to sever the pipe 12.
(28) As best shown in
(29) Referring to
(30) The lower arm members 94, 96 are elongate in shape having first ends 98, 100 joined together by a pin that extends through a pivot eye 102 at the distal end of a piston rod 104 that is moveable by the cylinder 90. A pivot pin 92 retains the lower arm 21 to the upper arm 20 and extends through holes 106, 108 that are centrally located in each of the lower arm members 94, 96 such that extension of the piston rod 104 causes the second ends 110, 112 of the lower arm members 94, 96 to be urged towards the surface of a length of pipe fitted between the lower necks at the outer edges 56, 58 of the frame plates 50, 52. A roller 114 is rotatably retained by a pin 115 between the second ends 110, 112 such that the distal end of the lower arm members 94, 96 will roll against the surface of a pipe 12 as the arm members adjust around the surface thereof.
(31) Referring to
(32) Referring to
(33) Referring to
(34) The mounting 145 includes a pair of plates 139, 140 each of which generally defines a triangle with the corners 141, 142, 143 aligned with each other. the drive motor 38 and drive roller 36 are mounted on a shaft 144 extending through holes in a first pair of aligned corners 141 and the pivot pin 127 extends through holes in a second pair of corners 142. One end of a pretensioning member 148 is pivotally attached by another pin 146 through the aligned holes, unnumbered, in the third corners 143 for adjusting the orientation of the mounting 138 around pin 127.
(35) Referring to
(36) Referring to
(37) Referring to
(38) As best shown in
(39) Referring to
(40) Referring to
(41) The hydraulic motor 51 is also mounted on the upper plate 212 and is drivingly connected through first and second sprockets 220, 222 and a chain 224 to the feed screw 49. The second sprocket 222 engages the feed screw 49 through an overload release clutch in the form of a pin 226 that extends transversely through the end of the shaft of motor 51 with the outer ends of the pin 226 engaging radially outwardly extending grooves 228, 230 in the second sprocket 222. The pin 226 is forced into the grooves 228, 230 by means of a plurality of compressible washers 232-232. The sprockets 220, 222 and washers 232-232 are retained in assembled relationship by an outer end plate 235. Accordingly, if the load on the feed screw 49 becomes excessive, the pin 226 will disengage from the grooves 228, 230 and allow the second sprocket 222 to rotate while the feed screw 49 remains stationary.
(42) Referring to
(43) As shown in
(44) Referring to
(45) As can be seen in
(46) The annular insert 282 can also be easily replaced by first removing the retaining screws 288-288 of one of the rings 278. Once ring 278 has been removed, the worn insert 282 can be removed and the replacement installed without stretching the insert 282. After the insert 282 has been replaced, the ring 278 is reassembled and the retaining screws 288-288 inserted to retain wheel 36 together. In the preferred embodiment, the central body 270 of the wheel 36 and the second ring 280 remain mounted on the shaft 144 while the outer ring 278 is removed and the inset 282 is replaced, such that the insert 282 can be replaced in the field without disassembling the bow 24.
(47) Referring to
(48) Fitted around the outer circumference of the second central body 310 is another annular urethane replaceable insert 334 having an annular groove 336 around the outer circumference thereof. The replaceable urethane inserts 334 useable with the guide wheels 32, 34, 40 are made of a harder urethane compound than the material of which the insert 282 of drive wheel 36 is made and therefore has a longer useable life. Like the drive wheel 36, the insert 282 around each of the remaining wheels 32, 34 can be replaced by first removing the screws 333-333 and one end plate 338 while the remaining portions of the wheel 32 remains on the bow 24.
(49) Referring to
(50) As shown in
(51) When the first and second halves 352, 354 are assembled to form the enclosure 346, the enclosure 346 will completely surround the rotating wheel 36 thereby preventing the rotating wheel 36 from applying rotational force to the surrounding water. The diamond cutting wire 42 extends through the slot 360 to reach the groove 292 in the insert 282.
(52) Referring generally to all the figures, to operate the wire cutting machine 10, the pretensioning member 148 is adjusted to apply sufficient tension to the diamond embedded wire 42 to incrementally compress the spring 198 of the spring loaded tensioner 184. The cylinders 90 are operated to wrap the lower arms 21, 23 around a length of pipe 12 to retain it against the pads 15-18. Power is applied from the source 240 through the hydraulic lines 242 to operate the motor 38 to rotate the drive wheel 36 to thereby drive the diamond embedded wire 42. Simultaneously, hydraulic fluid is supplied through line 244 to the hydraulic motor 51 to operate the feed screw 49 causing the bow 24 to move along the tracks 43, 44, 45 until the portion of the wire 42 extending between the wheels 32, 34 engages the surface of the pipe 12. As the feed screw 49 continues to rotate, the bow 24 is moved further along the tracks 43, 44, 45 and the wire 42 begins cutting into the surface of the pipe 12. Further movement of the bow 24 along the tracks 43, 44, 45 causes the wire 42 to bend around the pipe 12 as it continues to cut. As the wire bends, the spring 198 of the spring loaded tensioner 184 is further compressed until movement of the shaft 186 causes the piston rod head 254 to engage the fork 256. Further bending of the wire 42 will then cause the cylinder 250 to operate the shut-off valve 260 thereby terminating the flow of hydraulic fluid to the motor 51 and stopping the feed screw 49. The motor 38 that drives the diamond wire 42 will continue to operate and the wire 42 will continue to cut the pipe 12 until it cuts sufficiently through the pipe 12 to reduce the bending in the wire between the wheels 32 and 34. As the bend of the wire between the wheels 32 and 34 is reduced, the spring 198 will take-up the wire 42 until movement of the shaft 186 causes cylinder 250 to reopen the shut-off valve 260 allowing hydraulic fluid to again flow to the motor 51. As the motor 51 begins operating, it will again rotate the feed screw 49 and advance the bow 24 further along the tracks 43, 44, 45 and causing the length of wire between wheels 32 and 34 to again bend further around the pipe 12 as the wire continues to cut the pipe. In this fashion, the rate at which the feed screw 49 drives the bow 24 and advances the wheels 32, 34 is dependent upon the bending of the wire 42 between the wheels 32 and 34. The feed screw 49 and motor 51 stop movement of the bow 24 when the bending becomes excessive and advance the bow 24 as the spring 198 takes up excess wire 42. By linking the drive rate of the feed screw 49 to the bending of the wire 42 it is not necessary to provide a serpentine-type wire take-up to prevent the application of excessive forces to the wire 42.
(53) All the wheels 32, 34, 36, 40 that retain the diamond cutting wire 42 rotate on parallel axes and are positioned to retain the wire 42 in one plane. This is not possible where a serpentine-type take-up is needed to prevent excess forces within the wire. One benefit of maintaining the wire 42 within a single plane is that the wire 42 is not twisted as it operates. Twisting of the wire generates forces perpendicular to the direction of motion of the wire and such forces must be accommodated to prevent mechanical failure of the wire.
(54) Referring to
(55) The wire cutting machine 10 is preferably made of aluminum or stainless steel with the parts assembled together by bolts and the like so as to avoid welding or other processes which are subject to deterioration as a result of being submerged in salt water. By providing that the machine 10 is made in modular parts that include the frame 14, the bow 24, and the arm assemblies 20, 21 and 22, 23, the parts can be replaced for parts of different sizes as needed, and the parts reassembled in different orientations to fit different sizes of pipe 12. The modular parts also facilitate the transportation of the machine to a work site where it can be easily assembly.
(56) Referring to
(57) While many specific aspects of the present invention have been described, it will be appreciated that many more modifications and variations may be made without departing from the spirit and scope of the invention. It is therefore the intent of the appended claims to cover all such modifications and variations which fall within the spirit and scope of the invention.