Braking device for a roller conveyor, roller conveyor and method for producing a braking device for a roller conveyor
09862544 ยท 2018-01-09
Assignee
Inventors
Cpc classification
F16D2125/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65G13/07
PERFORMING OPERATIONS; TRANSPORTING
F16D2125/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A braking device for a roller conveyor has at least one brake pad (40) for engagement with an outer circumference of at least one conveyor roller (60) of the roller conveyor. The braking device also has an eccentric shaft (20) with a first eccentric (24) for moving the brake pad (40) toward the conveyor roller (60) and away therefrom; and a stepping motor (10) for rotating the eccentric shaft (20). A roller conveyor and to a method for producing a braking device also are provided.
Claims
1. A braking device for a roller conveyor, comprising: at least one brake pad (40) for engagement with an outer circumference of at least one conveyor roller (60) of the roller conveyor, the at least one brake pad having a hole; an eccentric shaft (20) having a first eccentric (24) rotatably received in the hole of the at least one brake and configured for moving the brake pad (40) towards the conveyor roller (60) and away therefrom; and a stepping motor (10) for rotating the eccentric shaft (20).
2. The braking device of claim 1, wherein a driven gear (12) of the stepping motor (10) engages with a driving gear (22) mounted to the eccentric shaft (20).
3. The braking device of claim 1, wherein the eccentric shaft (20) comprises at least one second eccentric (26) that is offset from the first eccentric (24) and defines a bearing seat for bearing a rotatable roller (30).
4. The braking device of claim 1, wherein the rotatable roller (30) is molded from a plastic material and/or has a pair of roller bearings (32).
5. The braking device of claim 1, wherein the brake pad (40) has two friction surfaces that are connected to each other by a yoke (43) or a ridge.
6. The braking device of claim 1, wherein the eccentric shaft (20) has a base body (21) with a polygonal cross-section.
7. The braking device of claim 1, wherein the stepping motor (10) has a controller that switches off or limits the power supply when a predetermined or predeterminable period of time has elapsed after a predetermined or predeterminable current value has been exceeded.
8. The braking device of claim 1, wherein both the eccentric shaft (20) and the stepping motor (10) are mounted to a frame (80) of the braking device.
9. A roller conveyor having a plurality of rotatable conveyor rollers (60) arranged in a frame (50), the conveyor rollers (60) being in frictional engagement with a flat belt (70) and being driven by the flat belt (70), the roller conveyor further having at least one of the braking device of claim 1 mounted to the frame (50) for decelerating at least one of the conveyor rollers (60).
10. A method for producing a braking device for a roller conveyor, comprising the steps of: providing an eccentric shaft (20) with a polygonal cross-section; arranging at least one first eccentric (24) on the eccentric shaft (20) in a form-locking manner to prevent a relative rotation of the first eccentric (24) relative to the eccentric shaft (20); engaging at least one brake pad (40) with the first eccentric (24); and providing a stepping motor (10) for driving the eccentric shaft (20).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
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DETAILED DESCRIPTION
(9) As shown in
(10) Preferably, both the eccentric shaft 20 and the stepping motor 10 are mounted to a frame 80 of the braking device. Thus, the braking device forms a compact unit that can be mounted to a roller conveyor and can easily be replaced if necessary. For assembling/disassembling the braking device, the braking device is hooked and/or fixed to a frame 50 of the roller conveyor (shown in
(11) To this end, the eccentric shaft has, as shown for example in
(12) Further, eccentrics 24, 26 can be mounted to the base body 21, as shown in
(13) Here, the first eccentric 24 serves to actuate a brake pad (not shown in
(14)
(15) Furthermore, the brake pad 40 has a circular hole 44 into which the first eccentric 24 is inserted. In this way, the brake pad 40 is moved towards the conveyor roller to be decelerated and away therefrom when the first eccentric 24 is moved by rotating the eccentric shaft 20. Thus, no means for transmitting power from the driving eccentric 24 to the brake pad 40 or to the braking surfaces 42, 42 are required; in particular no restoring means, such as springs or the like, are required. Therefore, aligning and mounting levers and springs and assembling a multi-component braking device are superfluous.
(16) Furthermore, a rotatable roller 30 as shown in
(17) As shown particularly in
(18) In the position of the eccentric shaft 20 shown in
(19) According to one advantageous embodiment of the braking device, the brake pad 40 comes into contact with the conveyor roller to be decelerated already before reaching an upper dead center of the first eccentric 24, i.e. before reaching the eccentric's 24 most distant point from the center point of the eccentric shaft 20. When the brake pad 40 becomes thinner due to wear, the stepping motor 10 correspondingly rotates the eccentric 24 further such that an automatic adjustment of the brake pad 40 is ensured. Therefore, additional setting or adjusting means, such as levers, springs, cable pulls and the like, are superfluous.
(20) Further preferably, a further rotation of the eccentric 24 is caused according to the thickness of the brake pad 40 by a current or torque controller of the stepping motor 10. For decelerating and applying the brake pad 40, the stepping motor 10 is not rotated by a predetermined angular amount; rather, when applying the brake pad 40 to the braking surface of the conveyor roller, a torque increase is detected by a controller of the stepping motor 10 due to a current increase of the stepping motor 10.
(21) After having detected a current increase above a predetermined or predeterminable threshold value, a predetermined or predeterminable period of time elapses until the power supply is substantially switched off or adjusted to a lower current value after expiry of the period of time. Thus, an adjustment of the brake pad by means of the current controller of the stepping motor is caused which does not require further mechanical components.
(22) The period of time during which high power is supplied is predetermined or adjustable by a timer of the controller. Here, said period of time is, for example, about 500 msec. However, other periods of time can be predetermined of adjusted as well, such as about 100 to 300 msec, or 1 to 2 seconds.
(23) Further preferably, the controller is integrated into or arranged in the braking device or the stepping motor such that the braking device receives only a braking signal from outside (externally). Switching off or limiting the power supply is performed by the internal controller. For example, a board (not shown) or a circuit board or a PCB (printed circuit board) is arranged within the braking device or in or at the stepping motor 10 comprising the controller.
(24) The roller conveyor with the plurality of conveyor rollers 60 is shown in
(25) The braking device is mounted to the roller conveyor beneath the conveyor rollers 60. After the conveyor rollers 60 have been mounted to the frame 50 by simply inserting the extensions 62 into the grooves 52 of the frame 50, the conveyor rollers 60 can slightly be lifted by the braking engagement of the braking device (not shown in
(26) Apart from being mounted to the frame 50, the conveyor rollers 60 can also be mounted for example by slide bearings or roller bearings. In this case, lifting the conveyor rollers 60 is superfluous.
(27) Preferably, the brake pad 40 is produced or molded in one piece with the braking surfaces 42 42 arranged thereon.
(28) The roller bearings 32, 32 can be commercially available ball bearings. However, other pivot bearings can be used as well, such as needle bearings or slide bearings or the like. The first eccentric 24, the second eccentric 26 and the driving gear 22 are secured as components on the eccentric shaft 20 in the axial direction, for example by inserting a circlip 28 into a groove of the eccentric shaft 20. The rotatable roller 30 preferably is molded from a plastic material, for example by injection molding EPDM, POM, ABS plastic material or the like.
(29) Preferably, the eccentric shaft 20 is mounted rotatably in a frame 80 that is flanged to the stepping motor 10. Preferably, the hole 44 of the brake pad 40 has at least one lubrication hole 46 for lubricating or oiling the hole 44.
(30) Furthermore, the first eccentric 24 preferably has a lubrication hole 24a for receiving a lubricant.
(31) Although the brake pad is actuated by means of the first eccentric 24 in the embodiment, the invention is not limited thereto. Instead of the eccentrics 24, 26, there can also be used a different type of transmission that can convert an angular rotation of the stepping motor 10 into a translational movement of the brake pad 40 and/or the rotatable roller 30. Examples include lever arrangements, shifting links, camshafts with rockers and/or followers or the like.
LIST OF REFERENCE NUMBERS
(32) 10 stepper motor 12 driven gear 20 eccentric shaft 21 base body 22 driving gear 24 first eccentric 24a lubrication hole 26 second eccentric 28 circlip 30 rotatable roller 32 roller bearing 33 bearing seat 34 rib 36 connecting ridge 40 brake pad 42 braking surface 43 yoke or ridge 44 hole 46 lubrication hole 50 frame 52 groove 60 conveyor roller 62 extension 70 flat belt 80 frame