The present invention relates to container blank handling apparatus, and in particular to handling apparatus for systems for trimming systems for cylindrical or tube-like metallic containers such as cans.
During production of cylindrical or tube-like containers, such as cans, for use in the beverage, food or aerosol industry, for example, it is necessary to trim an initial container blank to a desired size. Such container blanks are often produced by drawing metallic material into a cylinder. A container blank is often produced with one closed end. It is necessary to trim the open end of the cylindrical blank in order to provide a container blank of the correct size, and with a suitable edge to which a closure member may be attached.
In order to provide high throughput of container blanks through a trimming process, typical container blank handling apparatus make use of axial insertion the container blank into a support mechanism. The support mechanism defies an aperture for receiving a container blank to be trimmed, and supports the container blank during the trimming process. However, axial loading and unloading of container blanks is a relatively slow and complex operation, which limits the rate at which container blanks may be processed.
It is, therefore, desirable to provide a container blank handling apparatus that container blank overcome the drawbacks of the previously-considered equipment.
According to one aspect of the present invention, there is provided a container blank handling apparatus for a container blank trimming system for metallic tubular container blanks, the handling apparatus comprising first and second air bearing body portions having respective arcuate inner surfaces, wherein the first and second body portions are arranged to be moveable with respect to one another between a closed configuration of the apparatus in which the inner surfaces are substantially contiguous so as to form a substantially continuous bearing surface which defines a container blank receiving volume of the apparatus, and an open configuration of the apparatus in which the first and second body portions spaced apart from one another such that the inner surfaces are not contiguous with one another, and wherein at least one of the first and second body portions defines an air delivery pathway therethrough, the air delivery pathway terminating in at least one air delivery aperture in the inner surface of the body portion such that the air delivery pathway is contiguous with the air delivery aperture, the pathway and aperture being arranged for supply of air therethrough into the container blank receiving volume.
In such a way, a container blank handling apparatus embodying an aspect of the present invention is able to receive and eject container blanks quickly, and preferably in a radial direction.
In one example, the other of the first and second body portions defines an air delivery pathway therethrough, the air delivery pathway terminating in at least one air delivery aperture in the inner surface of the body portion concerned such that the air delivery pathway is contiguous with the air delivery aperture, the pathway and aperture being arranged for supply of air therethrough into the container blank receiving volume.
In one example, the first and second body portions are arranged to be moveable linearly with respect to one another.
One example apparatus further comprises an elongate body on which the first body portion is mounted, and a carrier on which the second body portion is mounted, the carrier being adapted to move linearly along the body between the first and second configuration positions of the apparatus.
In one example, the elongate body defines a longitudinal axis, and wherein in the open configuration position, a container blank is locatable in the container blank receiving volume of the first body portion in a direction laterally with respect to the longitudinal axis
According to another aspect of the present invention, there is provided a method of trimming a metallic tubular container blank using a container blank handling apparatus embodying the first aspect of the present invention, the method comprising moving the apparatus into a container blank receiving position; locating a container blank to be trimmed in the container blank reception volume of the first air bearing body portion; moving the second air bearing body portion into the closed configuration position; moving the container blank into a trimming position, the container blank extending through and out of the container blank reception volume in the trimming position; supplying air to the air delivery pathway of at least one of the first and second air bearing body portions; moving the handling apparatus into an operating position adjacent a trimming apparatus; rotating the container blank within the container blank reception volume, with respect to the handling apparatus; moving the handling apparatus to a container blank ejection position; and placing the handling apparatus in the open configuration.
The trimming apparatus 6 may be provided by any appropriate trimming technology, most preferably a laser-based apparatus in which a laser beam is used to trim the container blank being processed. Any trimming technology may be used with handling apparatus embodying an aspect of the present invention.
The drive system 4 will be described with reference to
The drive system 4 comprises a main drive motor 10 which is connected to rotate a main driveshaft 12. The main driveshaft 12 is supported at a proximal end thereof by the main drive motor 10 and at a distal end thereof by an end bearing 13. It will be appreciated that any appropriate number of bearings may be provided for the main driveshaft 12.
A first and second support wheels 14 and 16 are attached to the main driveshaft 4 for rotation therewith. The first and second support wheels 14 and 16 are spaced apart along the main driveshaft 12, with the second wheel 16 being located towards the end bearing 13, and the first support wheel 14 being located between the second support wheel 16 and the main drive motor 10. A pneumatic system support wheel 18 is attached to the main driveshaft 12 for rotation therewith, and is located between the first support wheel 14 and the main drive motor 10.
The main driveshaft 12 may be provided by a single shaft onto which the support wheels 14, 16 and 18 are attached, or may be provided by a multi-part shaft. In the example shown in
The pneumatic system support wheel 18 provides a location for mounting of parts 19 of a pneumatic control system. The parts 19 of the pneumatic system are connected with corresponding parts of the handling apparatus 5, the operation of which will be described below.
As mentioned above, in operation, multiple handling apparatus 5 are supported by the first and second support wheels 14 and 16. In
In operation, the main drive motor 10 rotates the main driveshaft 12, and hence the support wheels 14, 16 and 18. As the support wheels 14 and 16 rotate, the handling apparatus 5 rotate about the axis of the main driveshaft 12, such that a container blank 2 held in the handling apparatus 5 passes the trimming apparatus 6.
The handling apparatus 5 comprises an elongate body 20, which defines a longitudinal axis, and which has a first engagement portion 22 at one end region, and a second engagement portion 24 spaced apart from the first engagement portion 22 at a second end region of the body 20. The first engagement portion 22 is adapted for engagement with an engagement feature 15 of the first support wheel 14. The second engagement portion 24 is adapted for engagement with an engagement feature 17 of the second support wheel 16. In this manner, each handling apparatus 5 is supported by the first and second support wheels 14 and 16 for rotation about the axis of the main driveshaft 12.
The second end region of the body 20 includes a first support 26 on which a first air bearing body portion 28 is located. The first air bearing body portion 28 forms part of an air bearing for the handling apparatus 5, as will be described in more detail below.
A carrier 30 is located on the body 20 and is arranged to be movable linearly along the body 20 between the open configuration position shown in
A handling drive motor 38 is located in a channel in the body 20, and is movable linearly along that channel. The handling drive motor 38 operates to drive a handling driveshaft 40, on which the container blank 2 is attached. The container blank 2 is preferably attached to the driveshaft 40 using a vacuum system, with the vacuum being provided through a supply connection 42. The handling drive motor 38 operates to rotate the container blank 2 with respect to the handling apparatus during the trimming operation.
In the open configuration position shown in
The body portion 28, 36 defines a plurality of air delivery apertures 52 which extend through the surface 48. Each air bearing body portion 28, 36 is provided with at least one air delivery pathway 54 which extends within the body portion 28, 36 concerned. The air delivery pathway(s) 54 for the first air bearing body portion 28 are arranged to connect with air delivery channels in the first support 26, and thereby connect to the first air supply connection 44. The air delivery pathway(s) 54 for the second air bearing body portion 36 are arranged to connect with air delivery channels in the second support 34, and thereby connect to the second air supply connection 46.
The air delivery pathway(s) 54 terminate at the air delivery apertures 52, such that air supplied through the delivery pathway(s) 54 exits the apertures 52 into the container blank reception volume 50, in order to provide an air bearing for the container blank 2, as will be described in more detail below.
In the example shown, there are two air bearing body portions each having a single body member. It will be readily appreciated that any plural number of body portions and body members may be provided. For example, the second air bearing body portion 36 may be provided by a pair of body members that are each movable with respect to the first body portion 28.
The handling drive motor 38 is also moved towards the second end region by the actuation means 32, such that the container blank 2, mounted on one end of the handling driveshaft 40 extends through and out of the container blank reception volume 50 of the air bearing 26, 38. In this position, the trimming apparatus 6 (
The linear position of the handling motor 38 is adjusted by a pneumatic linear motor which receives an air supply through connection 33. The linear position of the handling motor 38 is determined in dependence upon the length of the container required, and is adjusted so that the container blank extends by the appropriate amount from the air bearing. The amount by which the container blank 2 extends will determine the amount of the container blank that is trimmed by the trimming apparatus.
In operation, air is supplied via the air supply connections 44 and 46 to the air delivery pathways 54 and air delivery apertures 52 in the air bearing body portions 28 and 36. Air is thereby introduced in to the container blank reception volume 50. Since the container blank 2 is in place in the container blank reception volume 50, an air cushion is built up between the inner surfaces 48 of the air bearing body portions 28 and 36 and the outer surface of the container blank 2. This air cushion serves as an air bearing such that the container blank 2 is supported in the correct position in the handling apparatus during the trimming process. During the trimming process, the handling drive motor 38 rotates the container blank 2 when the container blank is in the vicinity of the trimming apparatus. In this way, the trimming apparatus container blank be stationary, and the throughput of container blanks being trimmed may be increased.
The air bearing, or air stabilisation system, provided by the first and second air bearing body portions and associated air delivery parts, serves to damp vibrations of the container blank 2 as it is rotated with respect to the handling apparatus 5. Reduction and damping of such vibrations is of particular importance when the trimming apparatus 6 is a laser based apparatus which requires the container blank surface to be within an acceptable range of the laser in order to achieve a consistently high quality trimming cut of the container blank 2. The air stabilisation system serves to ensure that the container bank remains cylindrical, at least within predetermined desired tolerances, which leads to the higher quality cut.
Trimming of a container blank using the handling apparatus embodying an aspect of the present invention is summarised as follows, with reference to
Number | Date | Country | Kind |
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1600737.9 | Jan 2016 | GB | national |
Filing Document | Filing Date | Country | Kind |
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PCT/GB2017/050082 | 1/13/2017 | WO | 00 |