DEVICE AND METHOD FOR WEIGHING A SPOOL
20240410740 · 2024-12-12
Inventors
- Patric EKEGREN (Karlstad, SE)
- Johanna PIHL (Karlstad, SE)
- Mickey LINDEWALL (Hammarö, SE)
- Ola ADAMSSON (Hammarö, SE)
- Lars P. HELLSTRÖM (Karlstad, SE)
Cpc classification
B65H2220/03
PERFORMING OPERATIONS; TRANSPORTING
B65H2301/41342
PERFORMING OPERATIONS; TRANSPORTING
B65H2515/10
PERFORMING OPERATIONS; TRANSPORTING
B65H2220/03
PERFORMING OPERATIONS; TRANSPORTING
B65H19/30
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A device and a method for weighing a roll of continuous web material on a spool at a weigh-ing station in a continuous process is described, which has fewer mechanical parts and is safer to use than prior devices and methods. The device is arranged adjacent to at least one of a pair of guide rails and comprises a damper and a load cell. wherein the load cell is integrated into at least one guide rail.
Claims
1-15. (canceled)
16. Device (1;101;201) for weighing a roll of continuous web material on a spool (2;102;202) at a weighing station in a continuous process, which device is arranged adjacent to at least one of a pair of guide rails (3; 103; 203, 3) and comprises: a damper (4;104;204); and a load cell (5;105;205); wherein the load cell is integrated into at least one guide rail.
17. The device according to claim 16, further comprising a brake device (106;206).
18. The device according to claim 17, further comprising a kicking device (207).
19. The device according to claim 16, further comprising a kicking device (207).
20. The device according to claim 19, wherein the damper (4;104;204) also functions as the kicking device.
21. The device according to claim 16, wherein the load cell is a load cell having a transverse recess (108;208).
22. The device according to claim 21, wherein the transverse recess is a V-shaped recess.
23. The device according to claim 22, wherein the recess of the V-shape is in an orthogonal direction to the guide rails.
24. The device according to claim 16, further comprising a positioning sensor (9;209) adjacent to the damper (4;104;204), with the ability to indicate that the spool (2;102;202) has entered the weighing station.
25. The device according to claim 16, wherein the load cell comprises a main body of metal having at least one strain gauge.
26. A system for weighing a roll of continuous web material on a spool, which system comprises two laterally spaced inclined guide rails (3,3), one on each side of the spool (2) and two devices (1,1) according to claim 16, one adjacent to each guide rail.
27. A method of weighing a roll of continuous web material on a spool (2) at a weighing device (1), arranged adjacent to at least one of a pair of guide rails (3;3), which spool is transported along said pair of guide rails (3,3), wherein the method comprises the steps of: decelerating a transporting speed of the spool (2) along the guide rails to 0 m/s using a damper (4); weighing the spool (2) on a load cell (5), which load cell is integrated in the guide rails; and ejecting the spool out of the weighing device (1), wherein the damper (4) returns to its original position after step i so that no other parts than the load cell (5) is in direct contact with the spool during the weighing step.
28. The method according to claim 27, further comprising a step of positioning the spool on the load cell (5;105) before the weighing step.
29. The method according to claim 27, wherein the spool is ejected out of the weighing station using a kicking device (207).
30. The method according to claim 29, wherein the spool is ejected out of the weighing station by using the damper (4;104;204) as the kicking device (207).
31. The method according to claim 27, wherein the load cell has a V-shaped recess, orthogonally to the direction of the guide rail.
32. A method of weighing a roll of continuous web material on a spool (102) at a weighing device (101), arranged adjacent to at least one of a pair of guide rails (103; 103), which spool (102) is transported along said pair of guide rails (103,103), which method comprises the steps of: decelerating a transporting speed of the spool (102) along the guide rails to 0 m/s using a damper (104); decelerating the spool's rotation around its axis using a brake device (106); weighing the spool on a load cell (105); and ejecting the spool out of the weighing device (101) wherein the damper (104) returns to its original position after the first decelerating step, and the brake (106) returns to its original position after the second decelerating step so that no other parts than the load cell, which load cell is integrated in the guide rails, is in direct contact with the spool during the weighing step.
33. The method according to claim 32, further comprising a step of positioning the spool on the load cell (5;105) before the weighing step.
34. The method according to claim 32, wherein either the spool is ejected out of the weighing station using a kicking device (207) or the spool is ejected out of the weighing station by using the damper (4;104;204).
35. The method according to claim 32, wherein the load cell has a V-shaped recess, orthogonally to the direction of the guide rail.
Description
SHORT DESCRIPTION OF THE DRAWINGS
[0030] The present invention will be described in more detail under referral to the enclosed drawings, in which
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
[0039] The present invention describes a device for weighing a roll of continuous web material on a spool at a weighing station in a continuous process. The device is arranged adjacent to at least one of a pair of guide rails.
[0040] A continuous process can be used in many applications and can comprise different types of stations along the guide rails. The roll of continuous web material is arranged on a spool, which spool is in direct contact with the rails. The roll of continuous web material will never be in contact with the rails or any other parts of the system.
[0041]
[0042] In this description, the process described is a process for producing paper material, however, the device and method can be used in any system which is used for producing rolls of continuous web material on a spool.
[0043] In a typical continuous process, a roll is winded in the reel and the continuous web material is winded on a core shaft or a reel spool. When the roll reaches a set diameter the spool is ejected from the winding area and transported to the first station of the reel on guide rails with a set transporting speed. The guide rails will preferably have a small inclination, so that the spool moves forwards without the need for any external forces. Due to the slope of the rails, the spool moves in rotating motion along the guide rails until it reaches a brake, stop or the like. The winding of the material is preferably done counter clockwise and the rotating direction of the spool on the rails is in opposite direction.
[0044] The number of stations along the reel, as well as the order of stations, can be varied depending on the process and the examples herein is not intended to be limiting in any way. When the spool reaches the weighing station, the weight will be identified by a weighing device. The spool is thereafter ejected and continuous to the next station or if the weighing station is the end station, the spool is lifted off the rail and transported or stored until it is to be used.
[0045] In the system shown in
[0046] Although the system shown in
[0047] In the present invention, the weighing device will never touch the material on the spool, it will only be in contact with the shaft ends of the core shafts or the reel spools (referred to as spool hereafter). This is advantageous because there are no parts of the device that can affect the weighing. In a system where for example the damper is in contact with the spool during weighing, it is a risk that the damper will change the weight recorded by the weighing device.
[0048] A first embodiment of a weighing device is shown in
[0049] When the spool enters the weighing station, the damper 4 will decelerate the transporting speed of the spool along the guide rails until the spool comes to a complete stop. The damper is placed so that the complete stop occurs when the spool is in position on the load cell. The damper then returns to its original position, or is retracted so that weighing can be performed without any other parts being in contact with the spool during the weighing process.
[0050] The spool is thereafter on hold waiting for the system to eject the spool to the next station.
[0051] The type of load cell used in the weighing system can be varied depending on the type of spools that are to be weighed. The load cell has the ability to convert energy from one form to another. Load cells used in this application will convert the kinetic energy of compression or pressure, into a measurable electrical signal. The strength of the signal changes in proportion to the weight of the spool. The weight of the spool without any web material is known and the weight of the web material can be calculated from the signals from the load cell(s) and shown on a display, a control unit, or the like.
[0052] The use of a load cell integrated in the guide rails will give a system with less movable parts compared to other systems currently used in weighing systems for continuous processes. It has fewer movable parts and will hence require less maintenance and also have a higher reliability. The precision of weighing will hence be better.
[0053] All other parts of the weighing device according to this embodiment is as described in any of the embodiments previously described with reference to
[0054] A second embodiment of a weighing device is shown in
[0055] The load cell preferably has a recess in an orthogonal direction to the guide rails. When the spool is in position on the load cell, the recess will help the spool to stay in position for weighing without any other parts being in contact with the spool.
[0056] Another type of load cell that can be used in any of the embodiments described herein, is a load cell that comprises a main body of metal, preferably steel, and having at least one strain gauge. When a load is applied, the body of the load cell is slightly deformed, but, unless overloaded, always returns to its original shape. In response to the body shape changes, the strain gauges also change shape. This, in turn, causes a change in the electrical resistance of the strain gauge which can then be measured as a voltage change. Since this change in output is proportional to the amount of weight applied, the weight of the spool with the web material can then be determined from the change in voltage. The signal from the load cell(s) can then be recalculated into weight of the spool by the machine control system.
[0057] All other parts of the weighing device according to this embodiment is as described in any of the embodiments previously described with reference to
[0058] The system can further be provided with a brake device to decelerate and stop the rotating motion of the spool. The brake device can either be a stand-alone brake device or can be a part of the weighing device. The brake device can be used with any of the embodiments described herein.
[0059]
[0060] The damper 204 device will, as described with reference to the other embodiments above, decelerate the transporting speed of a spool (not shown in
[0061] The brake 206 will thereafter push the spool 202 against the damper 204 to help to stop the rotation around the axis of the spool. The brake 206 will then returns to its original position, or be retracted from the spool, so that no other parts than the load cell is in direct contact with the spool during the weighing of the spool. When a load cell 205 having a transverse recess 208 is used, the shape of the load cell will cause the spool to move slowly back towards the of the load cell. The brake can be used to position the spool correctly on the load cell if necessary.
[0062] The weighing device 201 can further be provided with a kicking device 207 which will kick the spool out of the load cell so that it can be transported further to for example another next station along the guide rails. The kicking device can be used with any of the embodiments described herein.
[0063] The kicker device can be either be a stand-alone kicking device or can be a part of the brake device as described below.
[0064] All other parts of the weighing device according to this embodiment is as described in any of the embodiments previously described with reference to
[0065]
[0066] The kicking device will preferably be controlled by an operator, which will give a command to the system to eject the spool from the station. The tissue spool will then continue the movement by gravity (due to the inclined railing) to the next station.
[0067] In this specific embodiment, an example of a hydraulic system to move the brake, damper and the kicker is shown. The brake 206 is connected to a brake arm 2061, which is used to push the brake against the spool to stop the rotational movement of the spool. A hydraulic cylinder 2062 is used to rotate and move the brake arm 2061 upwards. The damper 204 is a hydraulic damper comprising a hydraulic cylinder 2041 and a spring 2042, which hydraulic damper will decelerate the movement of the spool so that it stops smoothly on the load cell. When the spool is on the load cell the damper will return to its original position by means of a spring. The kicker device 207 is connected to a kicker arm 2071 which in turn is connected to a hydraulic cylinder 2072 to kick the device out of the weighing station when the weighing step is completed. Using the hydraulic cylinder 2072, the kicking arm 2071 is pushed to the right in the figure. It then pulls with it the damper 204 downwards so that the spool is able to roll freely on the rails again. The trailing edge of the damper is used as the kicking device which accelerates the spindle. The person skilled in the art understands that also other types of brake, damper and kicker arrangements/devices can be used, and it is not intended to limit the scope of the device to this example.
[0068] All other parts of the weighing device according to this embodiment is as described in any of the embodiments previously described with reference to
[0069] The weighing device can further be provided with a positioning sensor 9;209 adjacent to the damper 4;104;204. The positioning sensor 9;209 have the ability to indicate that the spool has entered the weighing station and will hence improve the ability of the system to know that the spool has arrived at the weighing station and that damper in the weighing device should be initiated. It is also possible to add several positioning sensors to the system, for example to know when the weighing is completed, and the spool leaves the weighing device. The positioning sensor(s) can be used with any of the embodiments described herein.
[0070] A system for weighing a roll of continuous web material on a spool comprises two laterally spaced inclined guide rails 3;103;203,3;103;203, one on each side of the spool 2;102;202 and in some systems, it could be advantageous to have two weighing devices 1;101;201,1;101;201, one adjacent to each guide rail. The weight of the spool will thus be weighed by a load cell in each end of the spool and the values from both load cell will be sent to the machine control system.
[0071] All of the features mentioned above can be combined with each other in the different embodiments described.
[0072] The invention also covers a method of weighing a roll of continuous web material on a spool, using the device as described according to any of the embodiments above.
[0073]
[0074] The method of weighing a roll of continuous web material on a spool 2 which is transported along a pair of guide rails 3,3 is provided, comprises at least the steps of: [0075] i. decelerating a transporting speed of the spool 2 along the guide rails to 0 m/s using a damper 4; [0076] ii. weighing the spool on a load cell 5; and [0077] iii. ejecting the spool out of the weighing device [0078] wherein the damper 4 returns to its original position after step i so that no other parts than the load cell 5 is in direct contact with the spool 2 during the weighing step ii.
[0079] The method could further comprise a step of decelerating the spools rotation around its axis using the brake device 106, which method will comprise the following steps in the following order: [0080] i. decelerating a transporting speed of the spool 2;102;202 along the guide rails to 0 m/s using a damper 4;104;204; [0081] ii. decelerating the spool's rotation around its axis using a brake device 6;106;206; [0082] iii. weighing the spool on a load cell 5;105;205; and [0083] iv. ejecting the spool 2;102;202 out of the weighing device 1;101;201 [0084] wherein the damper 4;104;204 returns to its original position after step i, and the brake 6;106;206 returns to its original position after step ii so that no other parts than the load cell 5;105;205 is in direct contact with the spool 2;102;202 during the weighing step iii.
[0085] The method could further comprise a step of positioning the spool 2;102;202 on the load cell 5;105;205 before the weighing step. After the break have decelerated the rotation of the spool, the brake will return to its original position, or be retracted. When a load cell having a transverse recess 208 is used, the shape of the load cell will cause the spool to move slowly back towards the of the load cell. The damper arm could also be used to initiate this movement, and the brake arm can be used to guide the spool into or onto the load cell.
[0086] In cases where the load cell is a V-shaped load cell, which has an orthogonal recess, the brake will guide the spool into the recess in the middle of the load cell. A method according to this will comprise the following steps in the following order: [0087] i. decelerating a transporting speed of the spool 2;102;202 along the guide rails to 0 m/s using a damper 4;104;204; [0088] ii. decelerating the spool's rotation around its axis using a brake device 6;106;206; [0089] iii. positioning the spool 2;102;202 on the load cell 5;105;205; [0090] iv. weighing the spool 2;102;202 on a load cell 5;105;205; and [0091] v. ejecting the spool 2;102;202 out of the weighing device 1;101;201 [0092] wherein the damper 4;104;204 returns to its original position after step i, and the brake 6;106;206 returns to its original position after step ii so that no other parts than the load cell 5;105;205 is in direct contact with the spool 2;102;202 during the weighing step iv.
[0093] The step of ejecting the spool 2;102;202 out of the weighing device according to any of the methods described above can be performed using a kicking device 7;107;207. The damper 4;104;204 can be used as the kicking device.
[0094] The method could further comprise an optional step of indicating that the spool 2;102;202 has entered the station. A positioning sensor 9 (shown in
[0095] The steps of the methods described above are shown in
[0096] The figures shows the method with reference to the first embodiment, with the parts numbered 1-9, but is also applicable to the other embodiments, with corresponding parts 10X and 20X. The weighing device is shown as 1 but could also be 101 or 201, the spool is shown as 2 but could also be 102 or 202, the guide rail is shown as 3 but could also be 103 or 203 and so on for the rest of the numbered parts.
[0097]
[0098]
[0099]
[0100]
[0101]
[0102] The spool 2 can be ejected out of the weighing device using any suitable device, it is however preferred to use a kicking device 7.
[0103] The device and method according to the present invention provides a safer and more time efficient weighing procedure of a spool with continuous web material. There is no need to lift the spool in any of the steps for the weighing procedure. This will of course provide a safer environment for the operators but will also reduce the time for the weighing procedure and thereby increase the efficiency.