Method of manufacturing a rotary atomiser bell cup
11446682 · 2022-09-20
Assignee
Inventors
Cpc classification
B05B5/0407
PERFORMING OPERATIONS; TRANSPORTING
B33Y10/00
PERFORMING OPERATIONS; TRANSPORTING
B22F10/28
PERFORMING OPERATIONS; TRANSPORTING
Y10T29/49433
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
B33Y80/00
PERFORMING OPERATIONS; TRANSPORTING
B05B3/1014
PERFORMING OPERATIONS; TRANSPORTING
International classification
B05B3/10
PERFORMING OPERATIONS; TRANSPORTING
B22F10/28
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A rotary atomiser bell cup comprising a bell portion for spraying media in use and a hub portion via which the bell portion is rotatingly drivable in use, wherein the hub portion is a machined metal portion and the bell portion has been built up on the hub using an additive manufacturing process.
Claims
1. A method of manufacturing a rotary atomiser bell cup comprising a bell portion for spraying media in use and a hub portion via which the bell portion is rotatingly drivable in use, the method comprising the steps of: making the hub portion using machining; and building up the bell portion on the hub portion using an additive manufacturing process, the method further comprising the step of forming a platform portion as part of the hub portion during an initial machining portion of the making the hub portion, said platform portion being arranged to facilitate the building up of the bell portion and machining away at least a part of the platform portion during machining after the additive manufacturing process.
2. The method according to claim 1 comprising machining the bell cup after the additive manufacturing process.
3. The method according to claim 2 in which the machining after the additive manufacturing process comprises removal of material of the bell portion and of the hub portion.
4. The method according to claim 1 comprising the step of allowing escape of byproduct from the additive manufacturing process via at least one aperture in the bell portion.
5. The method according to claim 1 comprising machining the hub in reference to a datum on the hub before the additive manufacturing process and machining the bell cup in reference to the datum after the additive manufacturing process.
6. The method according to claim 1 wherein the rotary atomizer bell cup is part of a rotary atomizer spindle, wherein the hub portion has an interface portion for mounting to a remainder of the spindle, which interface portion comprises a datum; wherein the method further comprises: machining the bell cup relative to the datum after the additive manufacturing process; and mounting the bell cup to the remainder of the spindle for rotational drive.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings in which:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION
(8)
(9) Note that in alternatives other forms of drive besides turbine drive may be used, for example the shaft may be electrically driven.
(10) The structure and operation of the paint sprayer at this level is conventional and such paint sprayers are widely used in the art and well understood. It is features of the spindle 1 and in particular the bell cup 2 which are of interest in the present invention. These will be described in more detail below.
(11)
(12) The bell cup 2 comprises a bell portion 5 and a hub portion 6. The bell portion 5 is shown in isolation in
(13) The hub portion is generally cylindrical and the bell portion is generally conical. The hub portion 6 is a machined metal part whereas the bell portion 5 is formed by an additive manufacturing process in particular by laser sintering of metal powder.
(14) In manufacturing the hub portion 6 is first machined as an isolated component as shown in
(15) When the hub portion 6 is first machined and it is an isolated component as shown in
(16)
(17) In the present embodiment the hub portion 6 is formed from titanium and the metal powder used in the additive manufacturing process to form the bell portion 5 is titanium. Of course other suitable materials may be used.
(18) As can be seen by a comparison between
(19) It would be difficult or impossible to produce such an accurately finished bell cup using additive manufacturing alone or more particularly if the whole of the hub portion 6 and bell portion 5 were first formed using an additive manufacturing process and then machined.
(20) Furthermore, using the additive manufacturing process to form the bell portion 5 carries with it the advantages that the bell portion 5 may be made as light as possible and a relatively complex shape for the bell portion 5 and its internal features can be more easily produced.
(21) As can be seen in
(22) Thus, for example in the bell portion 5 as produced by the additive manufacturing process there is a shoulder portion 53 as indicated in
(23) In the present embodiment a plurality of supporting ribs 54 are provided in the void V between the inner and outer conical walls 51, 52. In the present embodiment 8 such supporting ribs are provided around the bell cup 5 at equal angular spacings. Of course different numbers of ribs may be used.
(24) In alternatives rather than a plurality of spaced supporting ribs 54, the void V may be provided with a supporting lattice structure.
(25) Whatever internal support is provided between the two conical walls 51, 52 it is important that no closed cells are formed so as to allow the evacuation of unfused powder from the void V after the additive manufacturing process so as to minimise the weight of the finished bell portion 5. Note that the use of the additive manufacturing process, the internal supports 54, and the final machining of the sidewalls 51, 52 and hub 6 following the additive manufacturing process, can all contribute to minimising the weight of the bell cup 2 and hence the gyroscopic forces which it will generate under high speed rotation.
(26) The bell portion 5 has a rear and face 55 which faces the hub portion 6 in the completed bell cup 2. The rear end face 55 has two parts, an outer portion 55a which is at the end of the outer conical wall 51 and an inner portion 55b which is at the end of the inner conical wall 52.
(27) In the finished bell cup 2 as shown in
(28) Also these slots 55c and the resulting apertures can be used for the introduction of fluid, for example cleaning fluid, into the interior of the bell cup 2 during its operation as a rotary atomiser. Further in alternatives, outlet apertures may also be provided in the bell cup to allow the passage of fluid out of the void V at a desired location. Thus, for example, slots may be provided in the outer conical wall 51 to allow such fluid to escape. In such an alternative, fluid then may be fed into the void V via the slots 55c and allow to escape via the apertures provided in the outer conical wall 51.
(29) It will be appreciated that apertures may be provided at different locations if desired. Furthermore, if desired apertures originally provided for allowing escape of unfused powder out of the void V may be sealed once they have performed this function.
(30) Note that in the present embodiment, there is an annular space between the outer end face portion 55a and inner end face portion 55b. The presence of this annular spacing is not essential but further helps to reduce mass in the bell cup 2 and maximise the fluid communication path between the void V and the exterior.
(31) Note that in finish machining, as well as machining the conical walls 51, 52 and the outside wall of the hub portion 6 in the region of the platform portion 62 as mentioned above, machining of the central bore of the hub portion 6 and of the bell portion 5 (as formed in the region of the inner end face portion 55b) may be performed.
(32) In alternatives additive manufacture may be used in the repair or modification of rotary atomiser bell cups. This can be carried out whether the initial bell cup is produced as described above or more conventionally. Worn regions of bell cups might be built back up with additive manufacture and optionally final machined. Alternatively the operative shape of a bell cup (worn or unworn) may be modified by additive manufacture to give different performance.
(33) While the present disclosure has been illustrated and described with respect to a particular embodiment thereof, it should be appreciated by those of ordinary skill in the art that various modifications to this disclosure may be made without departing from the spirit and scope of the present disclosure.