This application claims priority on Finnish app. No. FI 20155421, filed Jun. 3, 2015, the disclosure of which is incorporated by reference herein.
Not applicable.
The invention relates to an arrangement in a perforated roll of a fiber web machine, which arrangement includes:
The invention also relates to a prefabricated sensor sheet for a perforated roll of a fiber web machine.
It is known that various nip measurements are performed for example in connection with service shutdowns on fiber web machines. In these, a temporary sensing system arranged because of the measurements is arranged on the surface of a roll, the measurement is performed, and the sensing system is removed. For example the so-called E-nip measurement technology represents prior art. It can be used for measuring the cross-sectional profile of the length of the nip in static conditions, but the measurement does not directly measure the cross-sectional distribution of the nip pressure or the MD distribution of the pressure. Moreover, one known measurement is Valmet Technologies, Inc.'s iRoll portable measurement, which can be used for measuring the cross-sectional profile of the nip pressure/force by means of a sensor installed temporarily on the surface of the roll.
The arrangement of a sensing system for example in the suction roll of a fiber web machine is known from European patent publication 1 719 836 B1. The sensing system includes a pair of leads embedded in the shell of the roll, to which pair of leads one or more sensors have been connected to determine various issues in the roll. The leads of the pair of leads are taken from between through holes arranged in the roll shell to the end of the roll and from there further to a processor. In the processor, the measurement signal established by the sensors and transmitted by the pair of leads is analyzed so as to perform various measurements. The sensors have been arranged around holes, in which case the sensors have an opening for the hole. It is troublesome to take the leads of the pair of leads between the through holes, and this hence raises the manufacturing costs of the roll. Moreover, when the sensor is around the holes, it may get damaged when the through holes are drilled in the roll shell.
Attempts have been made to solve the problem related to the arrangement of the sensing system also for example so that the location of the sensing system is provided with blind drilled holes in terms of the through holes, and the rest of the roll shell is drilled in a manner defined or accepted by the end user of the roll. The angle of pitch of the sensing system with respect to the axis of the roll can be calculated so that the pitch of the drilling patterns of the blind drilled holes is constant, for example 1, 2, 3 . . . drilling patterns per shift in the circumferential direction of the drilling pattern. In this case, the number of shifts of the drill bits from one side of the sensing system to the other is always constant in the drilling stage. In this way, the goal has been to make the drilling work as easy as possible, to avoid errors in the work and to perform the work quickly. There are so many drilling patterns of blind drilled holes on top of each other in the circumferential direction of the roll that the sensing system fits completely inside the drilling patterns of blind drilled holes.
The purpose of the present invention is to accomplish an arrangement in a perforated roll of a fiber web machine, as a result of which it is simpler and quicker to arrange a sensing system in a perforated roll than in prior art solutions. Another purpose of the present invention is to also accomplish a prefabricated sensor sheet for a perforated roll of a fiber web machine, by means of which prefabricated sensor sheet it is simpler and quicker to arrange a sensing system in a perforated roll of a fiber web machine.
In the present invention, at least one pair of leads included in the sensing system has been adapted to be composed of flat leads, which have been arranged side by side in the roll shell. It is easy to fasten a flat lead to the surface included in the roll shell because of its relatively large bond surface. Another advantage of the flat lead is that it remains fastened more reliably when the roll is coated after the arrangement of the sensing system. Moreover, being a relatively low structure, the flat lead does not disturb the coating of the roll.
In accordance with a more advanced embodiment, the width of the flat leads can be greater than the diameter of the through holes arranged in the roll shell at the location of the flat leads. This dimensioning enables degrees of freedom in the arrangement of the sensing system. In line with this, at least one pair of leads included in the sensing system can travel more freely than in prior art irrespective of the location of the through holes on the roll shell. A flat lead included in a pair of leads can even travel at the location of a through hole without the flat lead breaking, in other words without losing its signal transmission capability. This simplifies the arrangement of the sensing system and also the manufacture of the roll, because the pair of leads no longer essentially restricts the drilling of holes in the roll shell. If a flat lead coincides with a hole to be drilled, a cut is formed in it at the location of the hole in question. However, due to the suitably dimensioned width of the flat lead, the hole does not break the flat lead completely, but it can still transmit a signal forward over its intact portion.
In accordance with one embodiment, the sensor can be adapted between the flat leads. In this case, the sensor can be located for example between holes, in other words on a neck formed on the roll shell between holes. In this way, also the sensor is safe when through holes are drilled in the coating of the roll shell. The other additional advantages to be achieved with the invention are disclosed in the description of the invention.
The invention, which is not restricted to the embodiments presented below, is described in more detail by making reference to the enclosed drawings.
The perforated roll 10 is hollow on the inside. In the case of a suction roll, a negative pressure is formed inside the perforated roll 10. Inside the roll shell 19, there can be a suction box with one or more chambers, and the suction openings of the suction box open to the inner surface of the roll shell 19 restricted by seal strips. The roll shell 19 has a perforation of through holes 13, through which the negative pressure formed inside the perforated roll 10 can influence to the outside of the roll. By means of the negative pressure prevailing in the chamber of the suction box, a vacuum is created under the paper web through a wire of fabric. Through the perforation of through holes, the pressure difference created removes water from the web and/or fabric to the holes 13 of the roll shell 19 and/or holds the web during a transfer. In addition to the press section, the perforated roll 10 can be used for example for the transfer of the web onto a roll or between different structural groups.
The sensors 15 are used for establishing a measurement signal, which is transmitted to a measurement arrangement (not presented) by means of a pair of leads 16. The measurement arrangement can be for example a known prior art arrangement or one that is only being developed. The measurement arrangement can include at least one processor unit adapted to analyze the measurement signal established to the processor by means of the pair of leads 16.
At least one pair of leads 16 adapted in the roll shell 19 has been adapted to be composed of flat leads 17.1, 17.2. The flat leads 17.1, 17.2 can be strip-like elongated leads, the width W of which is greater than their thickness. One example of the width W of the flat leads 17.1, 17.2 is 4-30 mm and more specifically 6-20 mm. The thickness of the flat leads 17.1, 17.2 can be for example in the micrometer range. The material of the flat leads 17.1, 17.2 can be some electrically conductive material such as copper. It is easy to fasten the flat leads 17.1, 17.2 to an installation surface 27 included in the roll shell 19. Moreover, they provide reliable fastening, which does not disturb the arrangement of a coating 12 potentially included in the roll shell 19 over the sensing system 14, as indicated in
The width W of the flat leads 17.1, 17.2 that transmit the measurement signal established by the sensors 15 has been adapted to be greater than the diameter D of the holes 13 adapted in the roll shell 19 (at the location of the sensing system 14). In other words, due to the suitable dimensioning of the flat leads 17.1, 17.2, the lead structures become so wide that a hole 13 can be drilled through them without causing the breaking of the flat leads 17.1, 17.2. In this way, a hole 13 can be in the middle of the flat lead 17.1, 17.2 or at the edge of the flat lead 17.1, 17.2. If a hole 13 is in the middle of the flat lead 17.1, 17.2, the edges of the flat lead 17.1, 17.2 remain intact and hence transmit the signal. If a hole 13 is at an edge of the flat lead 17.1, 17.2, one edge of the flat lead 17.1, 17.2 continues to transmit the signal. Especially with a suitable angle of pitch, a hole 13 is only partially at the location of the flat lead 17.1, 17.2. This enables more degrees of freedom for the arrangement of both the sensing system 14 and the perforation in the roll shell 19.
The sensor 15 can be for example of some pressure sensitive and/or temperature sensitive material, depending on the object of measurement. The sensor 15 can be for example EMFi electric, PVDF electric, piezoelectric, capacitive, resistive, inductive, eddy current or other corresponding sensor. The sensor 15 connected to the pair of leads 16 for example by soldering can be adapted between the flat leads 17.1, 17.2. In this case, the planar flat leads 17.1, 17.2 of the pair of leads 16 are located slightly apart from each other in parallel side by side. In this way, the flat leads 17.1, 17.2 are in the thickness direction of the roll shell 19 primarily at the same depth next to each other. When the sensing system 14 is connected to the edges 29 of the flat leads 17.1, 17.2 (
Furthermore, the sensor 15 can be adapted between holes 13. In this case, the sensor 15 is apart from the holes 13, in which case its risk of damaging for example during the drilling of the holes 13 is non-existent. The size of the sensors 15 can be selected so that they fit completely on a neck of the roll shell 19 between holes 13. On the other hand, if the sensor 15 is larger than a hole 13, the drilling of a hole 13 at the location of the sensor 15 can also be omitted.
A sensing system 14 of a specific dimension has been adapted to be cut from the prefabricated sensor sheet 26, which sensing system 14 can be fastened to the installation surface 27 formed on the roll shell 19 of the perforated roll 10. Especially in a sensing system application with a pitch, the flat leads 17.1, 17.2 that constitute the pair of leads 16 together with the sensors 15 connected to them can already be fastened in advance to the background 28, which can be easily glued to the installation surface 27 formed on the roll shell 19 of the perforated roll 10. On the opposite side of the prefabricated sensor sheet 26 with respect to the background 28, there can be a protective film over the flat leads 17.1, 17.2 (not presented). This also holds the sensing system 14 compactly together for example during its installation.
As a result of the prefabricated sensor sheet 26, the sensing system 14 can be made primarily surface installable. In this case, for example the inner cylindrical part 11 of the perforated roll 10 does not need to be machined for example for the sensing system 14 for example for the formation of blind drilled holes.
In
In
After the arrangement of the outer coating layer 22, the holes 13 are drilled open at the corresponding locations as the holes 13 arranged in the cylindrical part 11 through the insulation 24 arranged in conjunction with the outer coating layer 22 and the flat leads 17.1, 17.2 of the sensing system 14, using a drill bit of the corresponding size as the diameter D of the holes 13 arranged in the cylindrical part 11. Since the recess 23 presented in
The diameter D of the holes 13 arranged in the roll shell 19 of the perforated roll 10 can be for example 3-6 mm, most specifically for example 4-5 mm. The distance of the holes 13 from each other can be for example 5-10 mm. The distance of the flat leads 17.1, 17.2 belonging to the pair of leads 16 from each other can be for example greater than 1 mm. Correspondingly, the size of the sensor 15 can be for example 1*1 mm.
Above, the invention has been explained with reference to a suction roll. Equally well, the perforated roll 10 can also be a blowing roll or a passive roll (for example on the reel). The arrangement can be arranged in the perforated roll 10 for example in connection with its manufacture, but equally well it can also be made as a retrofit, for example in connection with the recoating of the perforated roll 10. In the context of the invention, the fiber web machine refers to a paper, board and tissue machine and pulp drying machine.
It is to be understood that the above description and the related figures are only intended to illustrate the present invention. The invention is hence not only restricted to the above-presented embodiments or the embodiments defined in the claims, but several different variations and adaptations of the invention will also be obvious to a professional in the field, which variations and adaptations are possible within the inventive idea defined by the enclosed claims.
Number | Date | Country | Kind |
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20155421 | Jun 2015 | FI | national |
Number | Name | Date | Kind |
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4051719 | Loch | Oct 1977 | A |
4055077 | Loch | Oct 1977 | A |
6341522 | Goss | Jan 2002 | B1 |
20040053758 | Gustafson | Mar 2004 | A1 |
20060248723 | Gustafson | Nov 2006 | A1 |
Number | Date | Country |
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1719836 | Nov 2006 | EP |
Number | Date | Country | |
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20160355362 A1 | Dec 2016 | US |