This application is based on and hereby claims priority to International Application No. PCT/US2014/072672 filed on Dec. 30, 2014, the contents of which are hereby incorporated by reference.
A starting point is a control method for a pinch roll for delivering rolled products,
A further starting point is a computer program comprising program code which is executable by a control device for a pinch roll wherein executing the program code by the control device effects the implementation of such a control method.
A further starting point is a control device for a pinch roll wherein the control device is programmed with such a computer program so that the control device controls the pinch roll according to such a control method.
A further starting point is a transport device for delivering a rolled product,
After rolling a product—especially a bar-shaped product—the rolled product in many cases is delivered by a pinch roll to a cooling bed where it cools down. During cooling and after cooling the rolled product is transported in a direction rectangular to the previous direction of transport. Then the rolled product is processed further. To enable an easy further processing, the rolled products should be positioned on the cooling bed in a defined position.
In the related art, an operator determines the correct trigger time and/or the correct transport speed. Especially, the operator issues an opening command to the control device. In response to the opening command, the control device opens the pinch roll. The method of the related art requires an experienced operator to achieve good results.
It is an object to position the rolled products in a defined position on said cooling bed in a simple, efficient, and reliable manner.
The inventor proposes a control method of the above-mentioned type is augmented by the following
Thus, the control device determines in dependency of the coefficient of friction by a model the respective trigger time and/or the respective transport speed. According to the inventor's proposal, further, in dependency on said detected positions or said detected derivations in time of the position of the respective rolled product the coefficient of friction is updated. Therefore it is possible not only to adapt the sliding movement of the rolled product. It is further possible to adapt the model to the real behaviour of the rolled product. The model is learning the actual behaviour of the rolled product.
The rolled products may be plate. Preferably, however, the rolled products are bar-shaped. They may have a profile, for example a T-profile, an I-profile, a double-T-profile, a X-profile, an U-profile, and so on.
In a preferred embodiment of the control method, said measuring device detects said positions or said derivations in time of the position without contacting the respective rolled product. Especially, said measuring device may be a optical measuring device, for example a laser gauge meter.
In a further preferred embodiment, the measuring device or an additional measuring device detects a respective final position of the respective rolled product. In this case, the respective final position is provided to the control device, and the control device updates the coefficient of friction in further dependency on the respective final position of the respective rolled product.
According to the inventor's proposal, executing a computer program effects the implementation of the proposed control method.
According to the inventor's proposal, the control device is programmed with a computer program so that the control device controls the pinch roll according to the proposed control method.
According to the inventor's proposal, the transport device comprises a measuring device for after opening said pinch roll iteratively detecting a position or a derivation in time of position of said rolled product, and the control device being adapted to control the pinch roll according to the proposed control method.
The features, properties and advantages will be understood more easily by the following description of preferred embodiments which are explained in combination with the drawings. In the attached drawings:
As shown in
The control device 3 is programmed by a computer program 4. The computer program 4 may be provided to the control device 3 for example via a data carrier 5 on which the computer program 4 is stored in machine-readable form, for example in electronic form. The computer program 4 comprises machine code 6 executable by the control device 3. By executing the machine code 6, the control device 3 operates the pinch roll according to a control method which will be explained in detail below.
The respective rolled product 1 shall be delivered by the pinch roll 2 in a way that it stops on a surface 7 at a predetermined position. The surface 7 may be a cooling bed, for example. The predetermined position may be characterised for example by the fact that after stopping a head end of the respective rolled product 1 is positioned at a predetermined forward final position x1. Alternatively, the predetermined position may be characterised for example by the fact that after stopping a tail end of the respective rolled product 1 is positioned at a predetermined rear final position x2. Other embodiments are possible.
For achieving the respective positioning, the respective rolled product 1 is delivered by the pinch roll 2. At a respective trigger time t0 the control device 3 opens the pinch roll 2. At the trigger time t0 the respective rolled product 1 has a respective transport speed v0. Due to its inertia the respective rolled product 1 slides upon the surface 7. The speed v of the respective rolled product 1, however, decreases due to friction between the respective rolled product 1 and the surface 7. After some time and after moving a certain distance, the rolled product 1 therefore stops.
As shown in
It is possible that the transport speed v0 is predetermined and not varied. In that case, in S1 exclusively the trigger time t0 is determined. Alternatively, it is possible that the trigger time t0 is predetermined and not varied. In that case, in S1 exclusively the transport speed v0 is determined. Alternatively, it is possible that both the trigger time t0 and the transport speed v0 are varied. In that case, in S1 both values t0, v0 are determined.
According to the determination in S1 the control device 3 controls in S2 the pinch roll 2 such that the circumferential speed of the rolls of the pinch roll 2 corresponds to the transport speed v0. In S3, the control device 3 checks whether the trigger time t0 is reached. When the trigger time t0 is reached, the control device 3 in S4 opens the pinch roll 2.
As shown in
The measuring device 10 may be as required. Preferably, the measuring device 10 is construed in a manner that it is able to detect the positions p or the derivations in time of the position p without contacting the respective rolled product 1. The measuring device 10 may be an optical measuring device, for example. Examples of such measuring devices are an optical camera, an infrared camera, a CCD-camera and so on. Especially preferred is that the measuring device 10 is a laser gauge meter. The measuring device 10 may work according to the Doppler-effect.
In S6, the control device 3 updates the coefficient R of friction. Updating is done in dependency on the detected positions p or the detected derivations in time of position p of the respective rolled product 1. After updating said coefficient R of friction, the control device 3 continues with S1. When executing S1 this time, however, of course not the rolled product 1 considered up to now is delivered. Instead, the next rolled product 1 is delivered. Due to the actualisation of the coefficient R of friction, the control device 3 uses for determining of trigger time t0 and/or transport speed v0 of the next delivered rolled product 1 the updated coefficient R of friction, however.
As shown in
In case the final position x1, x2 is detected, the method shown in
In short, therefore, the inventor's proposal concerns the following subject matter:
A pinch roll 2 delivers a respective rolled product 1. A control device 3 for the pinch roll 2 opens the pinch roll 2 at a respective trigger time t0 and at a respective transport speed v0 of the respective rolled product 1. The control device 3 determines said respective trigger time t0 and/or said respective transport speed v0 using a model M in dependency on a coefficient R of friction used by the model M. After opening said pinch roll 2, a measuring device 10 detects iteratively a position p or a derivation in time of the position p of the respective rolled product 1. The detected positions p or said detected derivations in time of the position p are provided to said control device 3. The control device 3 in dependency on said detected positions p or said detected derivations in time of the position p of the respective rolled product 1 updates said coefficient R of friction and uses said updated coefficient R of friction for determining the respective trigger time t0 and/or the respective transport speed v0 for the next rolled product 1 delivered by the the pinch roll (2).
The inventor's proposal has many advantages. Most importantly, automatic determination of trigger time t0 and/or transport speed v0 results in a reproducible, deterministic behaviour of rolled products 1. Further, due to updating the coefficient R of friction positioning of rolled products 1 may be improved continuously.
The invention has been described in detail with particular reference to preferred embodiments thereof and examples, but it will be understood that variations and modifications can be effected within the spirit and scope of the invention covered by the claims which may include the phrase “at least one of A, B and C” as an alternative expression that means one or more of A, B and C may be used, contrary to the holding in Superguide v. DIRECTV, 69 USPQ2d 1865 (Fed. Cir. 2004).
Filing Document | Filing Date | Country | Kind |
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PCT/US2014/072672 | 12/30/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2016/108830 | 7/7/2016 | WO | A |
Number | Name | Date | Kind |
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3236084 | Kato | Feb 1966 | A |
3972402 | Karlberger | Aug 1976 | A |
6257034 | Fukumori | Jul 2001 | B1 |
Number | Date | Country |
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103203374 | Jul 2013 | CN |
55-42770 | Mar 1980 | JP |
10-2004-0059135 | Jul 2004 | KR |
WO 2005123293 | Dec 2005 | WO |
PCTUS2014072672 | Dec 2014 | WO |
Entry |
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Chinese Office Action dated Jun. 25, 2018 in corresponding Chinese Patent Application No. 201480084476.6, 5 pgs. |
International Preliminary Report on Patentability dated Jul. 4, 2017 in corresponding International Patent Application No. PCT/US2014/072672. |
Notification Concerning Transmittal of International Preliminary Report on Patentability dated Jul. 13, 2017 in corresponding International Patent Application No. PCT/US2014/072672. |
English Language International Search Report for PCT/US2014/072672; dated Mar. 25, 2015. |
Number | Date | Country | |
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20170361366 A1 | Dec 2017 | US |