Automated brazing apparatus and method
10265791 ยท 2019-04-23
Assignee
Inventors
Cpc classification
B23K3/087
PERFORMING OPERATIONS; TRANSPORTING
B23K1/0008
PERFORMING OPERATIONS; TRANSPORTING
B23K37/0229
PERFORMING OPERATIONS; TRANSPORTING
B23K37/047
PERFORMING OPERATIONS; TRANSPORTING
International classification
B23K3/00
PERFORMING OPERATIONS; TRANSPORTING
B23K37/00
PERFORMING OPERATIONS; TRANSPORTING
B23K1/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A system for automatically brazing joints in a manifold has a loading station, a brazing station, and a cooling station. The brazing station has a plurality of brazing torches moveable to a joint in the manifold to braze the joint. First, second and third fixture frames extend from a common rotatable platform. The platform rotates each of the fixture frames to each of the loading station, brazing station, and cooling station in turn. The fixture frames support manifolds with joints requiring brazing. The torches are disposed on a lifting platform that lifts the torches up to a desired joint. The lifting platform is disposed on a sliding platform that slides the torches horizontally to the desired joint. The torches surround the joint and braze it from all sides simultaneously. While brazing is being performed at the brazing station, loading and unloading of manifolds may be done at the loading station, and cooling of already-brazed manifolds may take place at the cooling station.
Claims
1. A system for automatically brazing joints in a manifold, the system comprising: a first fixture frame, the first fixture frame configured to support one or more manifolds; a second fixture frame, the second fixture frame configured to support one or more manifolds; a third fixture frame, the third fixture frame configured to support one or more manifolds, the first, second and third fixture frames disposed on a common rotatable platform, each fixture frame comprising a structural frame with a top edge and a bottom edge radially extending outwardly from the common rotatable platform, a substantially-vertical inner edge extending between the top and bottom edges, and a substantially-vertical outer edge extending between the top and bottom edges, the top edge, bottom edge, substantially-vertical inner edge and substantially-vertical outer edge defining an opening, the opening configured to allow tubes to pass through the fixture frame; a brazing station comprising a plurality of brazing torches configured to automatically braze one or more manifold joints in one of the first, second, or third fixture frames upon command by a controller; and an insulated barn disposed at a radial end of a fixture frame of the common rotatable platform, the controller configured to park the brazing torches in the barn when the brazing torches are not in use, the controller further configured to cause the brazing torches to go into a low mode when they are parked in the barn.
2. The system of claim 1, the first, second and third fixture frames each radiating outwardly from the common rotatable platform, the common rotatable platform configured to rotate each fixture frame through the brazing station in turn.
3. The system of claim 2, further comprising a cooling station and a loading station.
4. The system of claim 1, the plurality of brazing torches comprising four (4) torches disposed substantially ninety-degrees apart to surround a joint on four sides.
5. The system of claim 1, the brazing torches disposed on a lifting platform, the lifting platform configured to move the brazing torches up and down in a substantially vertical direction.
6. The system of claim 5, the lifting platform disposed on a sliding platform, the sliding platform configured to move the lifting platform back and forth in a substantially horizontal direction.
7. The system of claim 6, the lifting platform and the sliding platform configured to oscillate to move the brazing torches slightly left and right and up and down with respect to the joint undergoing brazing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure can be better understood with reference to the following drawings. The elements of the drawings are not necessarily to scale, emphasis instead being placed upon clearly illustrating the principles of the disclosure. Furthermore, like reference numerals designate corresponding parts throughout the several views.
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8)
(9) At the loading station 104, parts (not shown) in need of brazing are loaded into the fixture frame 114. At the brazing station 102, the parts that have been previously loaded into the fixture frame 112 are brazed, as further discussed herein. At the cooling station 103, the parts that have been previously loaded into the fixture frame 113 and brazed are allowed to cool. This arrangement allows for all three processesloading, brazing and coolingto take place at the same time.
(10) The system 100 according to the illustrated embodiment comprises three stations 102-104, and three corresponding fixture frames 112-114. Other embodiments may have more or fewer stations and fixture frames.
(11) The brazing station 102 comprises a lifting platform 109 and a plurality of brazing torches 110a-110d disposed on the lifting platform 109. Each of the plurality of brazing torches 110a-110d comprises a torch head 111. The torch heads 111 of each of the brazing torches 110a-110d are generally disposed ninety (90) degrees apart, spaced apart from one another. This arrangement allows the brazing torches to be equidistant from each other, and to surround a joint for brazing on four sides, as further discussed herein.
(12) Torches 110a and 110b are configured to braze a joint (not shown) from one side of the fixture frame 112, and torches 110c and 110d are configured to braze from an opposite side of the fixture frame. The lifting platform 109 thus extends on both sides of the fixture frame 112.
(13) The lifting platform 109 is disposed on a sliding platform 121. The sliding platform 121 moves along tracks 117 disposed on a track support stand 118 and positions the torches 110a-110d in horizontal alignment with the part in need of brazing. The tracks 117 engage with the sliding platform 121 to move the sliding platform 121 in the direction indicated by directional arrow 108, i.e., radially inwardly and outwardly along the fixture frame 112. This direction is referred to as the x axis herein. The lifting platform 109 moves up and down vertically (in a z direction), as further discussed herein.
(14) In the illustrated embodiment, when the brazing torches 110a-110d are not in use, the brazing torches 110a-110d are parked in a barn 101. The barn 101 is a double-walled metal box (with insulation between the walls) that partially encloses the torches 110a-110d. The torches go into a low mode when they are parked in the barn 101.
(15) The lifting platform 109 further comprises a pyrometer 120 that measures the torch temperature. In one embodiment, the pyrometer 120 is an infrared pyrometer that measures the temperature of the joints undergoing brazing. The pyrometer 120 focuses on the joint being brazed (not shown) and sends the joint temperature back to the controller 106. If the maximum allowable temperature that the joint should experience is neared, the controller shortens the brazing time to prevent the joint from overheating.
(16) When the system 100 is in the orientation shown in
(17) The system 100 includes thermocouples 107 that are used to measure the temperature of the manifolds before brazing, as further discussed herein. A controller 106 controls movement and positioning of the lifting platform 109, the sliding platform 121, the operation of the brazing torches 110a-110d, and operation of the thermocouples 107. The controller 106 receives temperature data from the pyrometer 120 and adjusts the brazing temperature accordingly. The controller 106 may be any suitable computer known in the art or future-developed.
(18) The controller 106 communicates across a network 105. The network 105 may be of any type network or networks known in the art or future-developed, such as the internet backbone, Ethernet, Wifi, WiMax, coaxial cable, fiber optic cable, and the like. The network 105 may be any combination of hardware, software, or both.
(19)
(20) The fixture frame 112 is in the brazing position in the illustrated embodiment. The lifting platform 109 comprises the brazing torches 110a, 110b, 110c and 110d. Torches 110a and 110b are configured to braze from one side of the fixture frame 112, and torches 110c and 110d are configured to braze from the opposite side of the fixture frame. The sliding platform 121 slides along the tracks 117 as further discussed herein.
(21)
(22) The fixture frames 112-114 comprise structural frames 203 with one or more openings 202 disposed within the frames. In this regard, the structural frames 203 generally comprise a radially extending top side 204, a radially-extending bottom side 205, a substantially vertical inner side 206, and a substantially vertical outer side 207. Additional supports may be installed as needed. The fixture frames 112-114 are configurable to support any of a number of manifold configurations for brazing joints, and the frames 112-114 are custom-configured for specific manifolds. Further, the fixture frames 112-114 comprise openings 202 to allow tubes (not shown) to pass through the fixture frames. The number, size and configuration of the openings 202 depend on the configuration of the manifold undergoing brazing operations.
(23) In this position, the brazing torches 110a-110d move to the tubes being brazed (see
(24)
(25) Three identical manifolds 305, 306, and 307 are loaded in the fixture frame 112 in preparation for brazing. In this figure, each manifold comprises eight (8) smaller aluminum tubes 308 being brazed to a larger aluminum tube 310 (for manifold 305), tube 311 (for manifold 306), or tube 312 (for manifold 307). In this regard, a braze is desired to be performed at the intersection of the smaller tubes 308 to the larger tube 310, for each of the smaller tubes 308. The fixture frame 112 is configured specifically for the manifolds being brazed, and the entire fixture frame 112 can be swapped out with other customized fixture frames to braze other parts/manifolds.
(26)
(27) The lower edge 309 of the flip gate 301 acts as a heat sink during brazing operations. In this regard, the lower edge 309 contacting the smaller tubes 308 helps dissipate heat from the smaller tubes 308 during brazing. This is important because the smaller tubes 308 are smaller and have thinner walls than the larger tube 310, and are thus more susceptible to overheating and warping during the brazing operation.
(28) The brazing torches 110a-d are shown in
(29) The brazing torches 110a-110d are disposed on the lifting platform 109 that moves in the + or z direction (generally vertically) as indicated by the directional arrow 320 in
(30)
(31) The brazing torches 110a-110d comprise four (4) individual torch heads in the illustrated embodiment.
(32) As discussed above with respect to
(33) The lifting platform 109 and sliding platform 121 together oscillate to move the brazing torches 110a-110d left and right and up and down with respect to the joint undergoing brazing. In this regard, the system allows for up to ten (10) sub-positions to be programmed per braze joint, e.g., slight movements up and down and right and left that allow the torches to dance around the joint to evenly melt the brazing alloy.
(34)
(35) The operator panel 509 further comprises an emergency stop button 506, which is in the color red in the illustrated embodiment. The operator panel 509 further comprises two start buttons 507a and 507b. In order to start the system, the user must push both start buttons 507a and 507b at the same time. A manual pin 508 must be locked in place in the platform 115 before the brazing cycle will start. The platform 115 will not rotate without the manual pin 508 locked into place.
(36)