This application is a National Phase Application of PCT International Application No. PCT/IB2013/059005, International Filing Date, Sep. 30, 2013 which is hereby incorporated by reference in its entirety.
The present invention pertains, generally, to the field of continuous-cycle automatic handling of objects; in particular, the invention relates to a vertical sorting machine with carriages for packages, flyers and similar objects.
The sector for the automatic sorting of objects such as luggage, packages, letters, flat items, envelopes, dispatch parcels and containers of a varying nature is conventionally divided into two main types of systems: “letter-type” systems, where unloading of the object is performed in a direction coinciding with the direction of advancement of the conveyor, and “cross-belt” systems, where unloading is performed transversely with respect to the direction of advancement.
The latter systems are arranged mainly in a horizontal plane, the advantage of having a flexible sorting apparatus being offset by the problems associated with the large dimensions of the system.
In order to overcome the aforementioned problems, sorting machines of the so-called “cross-belt” type provided with carriages which are self-propelled along a vertical closed-loop path have been developed. In this case also, the system suffers from a drawback associated with overturning of the carriages along the bottom section of the path, which substantially reduces the loading capacity of the system.
In fact, along the semi-circular sections which join together the straight sections of the path, the conveying units undergo a rotation, through 180°, of the surface on which the transported objects are loaded (FIG. 2 of patent publication U.S. Pat. No. 3,662,874 illustrates schematically the overturning movement). This drawback, as can be understood, has a significant adverse effect on the loading capacity of the sorting machine since only half of the overall travel of the conveying units is exploited from an operational point of view.
One object of the present invention is to increase the loading capacity of a sorting machine of the vertical closed-loop “cross-belt” type, without having to increase the dimensions of the apparatus.
In order to achieve this result, the conveying units (in the present invention these are comprised, mainly but not exclusively, of carriages which have load support surfaces displaceable transversely with respect to the direction of advancement) must maintain an identical orientation of the load support surfaces along the top and bottom travelways of the closed-loop path (as shown for example in
In fact, by keeping the horizontal load support surface directed upwards also during the return movement, it is possible to make use of both the straight sections of the closed-loop path, thus doubling the operational capacity of the sorting machine according to the invention, at equal size as compared to a conventional machine.
According to one aspect of the present invention, two end assemblies are arranged at the ends of the straight sections of the carriage path; each end assembly comprises a crown gear which exerts a driving force on a flexible driving element to which the carriages are connected. An element for securing together the carriages and the flexible driving means ensures, during travel around the semicircular section joining together the straight sections of the path, a support point for the carriage.
In order to maintain the orientation of the loading surfaces along the entire path, the carriages must perform a rotary/translational movement with respect to the axis of rotation of the end assembly (while, in the case of conventional machines, a rotation is performed, with consequent overturning of the carriage). The rotary/translational movement allows the carriage to be kept in the horizontal position when passing along the joining section of the path.
The rotary/translational movement is possible if the carriage rests stably on at least four support points arranged in pairs on two opposite sides of the carriage. On each of these two sides, a first support point is provided by the means for retaining together the carriage and the flexible driving means. A second support point is provided by the engagement between a pin, rigidly connected to the frame of the carriage, and a slider moving along a closed-loop path associated with each crown gear present in the end assemblies.
The aforementioned slider exerts a counter-thrusting force on a wheel of the carriage such as to keep the wheel in contact with a cylindrical track inside the end assembly, so as to ensure the second support point necessary for the rotary/translational movement of the carriage during travel around the joining section of the closed-loop path.
These and other objects and advantages are achieved by systems described and claimed herein.
The functional and structural features of a number of embodiments of sorting machines according to the invention will now be described with reference to the attached drawings.
Before a plurality of embodiments of the invention are explained in detail, it is to be understood that the invention is not limited, in its application, to the constructional details and the arrangement of the components set forth in the following description or illustrated in the drawings. The invention is capable of other embodiments and may be implemented or carried out in other ways. It should also be understood that the phraseology and terminology have a descriptive function and should not be regarded as limiting. The use of “include” and “comprise” and variations thereof are to be understood as encompassing all the parts listed below and their equivalents, as well as additional parts and equivalents thereof.
With reference initially to
The sorting machine 9 has a symmetrical structure with respect to a vertical plane A passing through the centre of the carriages 14, as can be seen in
With respect to the vertical centre plane A, the sorting machine has a structure which is a mirror image of that shown in the view of
Still with reference to
The end assemblies 18, 20 comprise crown gears or gear wheels 22, 24 which, by means of outer peripheral teeth 22a, 24a, engage with and drive a flexible driving means 10, which is suitably configured so as to mesh with the outer teeth 22a, 24a of the crown gears 22, 24.
In a particularly preferred embodiment of the invention, the flexible driving means 10 is a toothed belt, as can be seen in particular in
The carriages 14 are driven by the toothed belts 10, provided on both sides of the machine, via locking means 46. The locking means are fixed to the toothed belts 10 and rigidly connected to a frame 14a of the carriage 14 by means of pins 50 which are conveniently aligned along transverse axis of symmetry z of the carriage 14.
The carriages 14 which circulate along the closed-loop path are spaced from each other by an interval P corresponding to the interaxial distance between the locking means 46 of two successive carriages. Advantageously, the interval P between all the carriages is constant.
The crown gears 22, 24, which are visible in
In this example, the gear wheels 22, 24 also have inner toothed profiles 22c, 24c which are designed to mesh with motor-driven transmission members, for example a drive shaft 70 operated by an external motor (not shown).
In a preferred embodiment of the invention, the two crown gears 22 of the first end assembly 18 have a driving function, whereas the two crown gears 24 of the second end assembly 20 are rotationally driven about the axis x by the driving force exerted by the toothed belt 10.
Moreover, a plurality of mobile retaining units 30 moving around inside vertical closed-loop paths 26, 28 are associated with each gear wheel. Each path 26, 28 has a semicircular section 26a, 28a which, conveniently, is longitudinally displaced, with respect to the curved joining sections 12c, 12d, by a length equal to the distance between the pin 50 of the locking means 46 and a pin 42. Pin 42 is visible in
The plurality of mobile retaining units 30 moves along an operational section of the vertical closed-loop path 26, 28, corresponding to the semicircular section 26a, 28a, and along a return section 26b which, in the present embodiment, assumes a semicircular profile. The form of the return branch 26b is not to be regarded as binding.
Finally, opposing roller wheels 15c may be rotatably mounted on each carriage about a vertical axis j and act transversely on rails 44, shown in
The driving force needed to move the carriage is transmitted from the toothed belt to the frame 14a via the locking means 46 and the pin 50. In one embodiment, the locking means 46 comprises two parts 46a, 46b by means of which the locking means 46 engages simultaneously with the toothed belt 10 and the pin 50, forming with the latter a connection which allows pivoting of the locking means 46 about the pivoting axis z.
In a similar manner to the secondary wheels 15b, the idle roller 48 is suspended, in the arrangement shown in
In one embodiment, the horizontal support surface 16 is configured so as to allow unloading of the objects in a transverse direction with respect to the direction of advancement of the carriages. This arrangement is to be regarded as preferable, but not limiting. Unloading of the objects may be performed by means of one or more motor-driven rollers 16a which have their top surfaces coplanar with the support surface 16.
In the vicinity of the points where the curved end sections 12c, 12d are joined to the linear, horizontal, straight sections 12a, 12b, the rails 44 which support the carriages by means of contact with the primary wheels 15a are interrupted. Therefore, the primary wheels 15a situated at the front (with respect to the direction of movement of carriages) are not supported.
During an initial phase the locking means 46 do not rest inside a peripheral seat 22b, 24b and, consequently, they cannot yet provide a suitable support point for the carriage. During the phase which immediately precedes the rotary/translational movement of the carriages, the two support points are ensured, respectively, by the contact between the idle rollers 48 and respective bottom additional guides 54 as well as by the contact between the rear secondary wheels 15b and the respective top secondary guides 56. Preferably, during the aforementioned initial phase, the rear primary wheels 15a continue to rest on the rails 44 until the phase described in the following paragraph occurs.
When the locking means 46 is seated inside the peripheral seat 22b, the rollers 48 and the rear secondary wheels 15b pass beyond the ends of the bottom and top secondary guides 54, 56, thus no longer having support points. Similarly, the rear primary wheels 15a also are no longer supported by the rails 44.
At the same time, in order to ensure the necessary dual support point for the carriage, the projecting ends 42a of the pins 42 of the front primary and secondary wheels are engaged by two mobile retaining units 30, shown in
These flexible transmission means 60 are, in the embodiment shown in
The roller chains 60 move along the vertical closed-loop paths 26, 28, following the profiles of the semicircular branch 26a and the return branch 26b. According to an embodiment of the invention, the recirculating movement of the roller chains 60 along the vertical closed-loop path 26, 28 can be achieved by means of meshing with pinions 26c which may be idle or motor-driven.
A plurality of sliders 30 are fixed to the chain and driven along the vertical closed-loop path 26, 28.
In the embodiment shown, the sliders 30 comprise a shaped plate 36 for fixing to the roller chain 60, a frame 38 which supports rolling or rotatable roller means 40, and an engaging seat 34, preferably having a semi-cylindrical shape formed on one side of the slider opposite to the side where the rotatable rollers 40 are mounted.
The sliders 30 are spaced, along the chain 60, by a length such that, when the carriages arrive in position, there is always one slider available for each carriage.
According to one embodiment, the sliders 30 may be spaced, along the chain 60, by a length corresponding to the interval P between the carriages or a submultiple of the interval P.
In particular, when the carriage rests exclusively on the locking means 46 seated inside the recesses 22b, a pair of sliders 30 engage with the projecting ends 42a of the pins 42 of the pair of front wheels of the carriage.
The function of the slider 30, which may be formed differently from that shown in
In the embodiment shown in
According to an alternative embodiment (not shown), instead of the rollers 40 the slider 30 may have a runner or other low-friction sliding means able to slide along the radially outer cylindrical raceway 66.
The chain 60 may be partially seated inside guide channels 62, 64 arranged respectively along the semicircular operative section 26a and return section 26b of the vertical closed-loop path 26, 28.
Since the engagement between the slider and the pin 42, on one side, and between the locking means 46 and the crown gear, on the other side, ensures that the carriage has two support points along the whole semicircular joining section 12c, 12d, it is possible to keep the carriage 14 in the horizontal position during the rotary/translational movement. Thereby it is ensured that the support surface 16 remains always horizontal and directed upwards when passing between the top straight section 12a and the bottom straight section 12b.
The advantage achieved is that of making use of both the top travel and bottom travel of the carriages along the entire vertical closed-loop path, ensuring at the same time more compact dimensions of the sorting machine at equal number of objects which can be sorted by the system.
Different aspects and embodiments of sorting machines according to the invention have been described. It is understood that each embodiment may be combined with any other embodiment. The invention, moreover, is not limited to the embodiments described, but may have certain variations and still fall within the scope of protection claimed herein.
Filing Document | Filing Date | Country | Kind |
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PCT/IB2013/059005 | 9/30/2013 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2015/044720 | 4/2/2015 | WO | A |
Number | Name | Date | Kind |
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2339494 | Lubahn | Jan 1944 | A |
3062358 | Woodward | Nov 1962 | A |
3662874 | Muller | May 1972 | A |
4139092 | Yamano | Feb 1979 | A |
4481860 | Schiele | Nov 1984 | A |
6336549 | Jen | Jan 2002 | B1 |
9028613 | Kim | May 2015 | B2 |
Number | Date | Country |
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0683118 | Nov 1995 | EP |
Number | Date | Country | |
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20160236870 A1 | Aug 2016 | US |