METHOD AND APPARATUS FOR MEASURING AND REMOVING ROTATIONAL VARIABILITY FROM A NIP PRESSURE PROFILE OF A COVERED ROLL OF A NIP PRESS
20240401273 ยท 2024-12-05
Inventors
Cpc classification
G01L5/0085
PHYSICS
International classification
G01L5/00
PHYSICS
Abstract
Multiple groups of sensors are circumferentially spaced apart at each cross-directional position along a sensing roll of a nip press to measure and cancel or nearly cancel the effects of rotational variability which may be acting on the sensing roll. The strategically-placed sensors are designed to measure the pressure being placed against the web that is being advanced through the nip press. The average of the measurements of multiple sensors spaced circumferential apart provides a good cancellation of any rotational variability that might be found at a cross-directional position on the sensing roll. In this manner, a more true measurement of the nip pressure profile can be obtained and better adjustments made to reduce nip pressure profile variability. In addition, the nip variability profile may be used as a predictor of cover or bearing failures, resonant frequencies and other roll anomalies.
Claims
1. A sensing roll for use in a nip, comprising: a substantially cylindrical member having an outer surface and adapted for rotational movement; a roll cover circumferentially overlying the outer surface of the cylindrical member; and a sensing system associated with the roll cover, comprising: a first set of sensors disposed in a particular configuration along the roll cover, each sensor of the first set being located at a particular cross-directional position on the roll cover; and at least one additional set of sensors disposed in a particular configuration along the roll cover, each sensor of each at least one additional set being located at a particular cross-directional position on the roll cover, wherein the first set and the at least one additional set of sensors each comprise n sets of sensors, wherein each sensor of a one of the n sets has a corresponding sensor in the remaining n1 sets, each corresponding sensor being located at the same cross-sectional position and spaced 360/n apart circumferentially from an adjacent sensor, each set of sensors forming a helix which extends about 360 around the sensing roll in a single revolution.
2. The sensing roll of claim 1, wherein the first set of sensors and the at least one additional set of sensors are each configured to measure pressure, temperature, strain, moisture, or nip width.
3. The sensing roll of claim 1, wherein the first set of sensors and the at least one additional set of sensors are each configured to measure temperature.
4. The sensing roll of claim 1, including a transceiver attached to the cylindrical member and each of the sensors of the first set and the at least one additional set for transmitting data signals from the sensors.
5. The sensing roll of claim 1, wherein sensor data from the first set and the at least one additional set of sensors is measured when these sensors enter the nip.
6. The sensing roll of claim 1, wherein the at least one additional set of sensors includes a second set and a third set, wherein each sensor of the first set has a corresponding sensor in the second and third sets which is located at the same cross-sectional position and is spaced 120 apart circumferentially.
7. The sensing roll of claim 1, wherein the at least one additional set of sensors includes a second set, wherein each sensor of the first set has a corresponding sensor in the second set which is located at the same cross-sectional position and is spaced 180 apart circumferentially.
8. The sensing roll of claim 1, wherein the at least one additional set of sensors includes a second set, a third set, and a fourth set, wherein each sensor of the first set has a corresponding sensor in the second, third, and fourth sets, each corresponding sensor being located at the same cross-sectional position and is spaced 90 apart circumferentially from an adjacent sensor.
9. A sensing roll for use in a nip, comprising: a substantially cylindrical member having an outer surface and adapted for rotational movement; a roll cover circumferentially overlying the outer surface of the cylindrical member; and a sensing system associated with the roll cover, comprising: a first set of sensors disposed in a particular configuration along the roll cover, each sensor of the first set being located at a particular cross-directional position on the roll cover; and at least one additional set of sensors disposed in a particular configuration along the roll cover, each sensor of each at least one additional set being located at a particular cross-directional position on the roll cover, wherein the first set and the at least one additional set of sensors each comprise n sets of sensors, wherein each sensor of a one of the n sets has a corresponding sensor in the remaining n1 sets, each corresponding sensor being located at the same cross-sectional position and spaced 360/n apart circumferentially from an adjacent sensor, each set of sensors forming a partial helix which extends about 360/n around the sensing roll.
10. The sensing roll of claim 9, wherein the first set of sensors and the at least one additional set of sensors are each configured to measure pressure, temperature, strain, moisture, or nip width.
11. The sensing roll of claim 9, wherein the first set of sensors and the at least one additional set of sensors are each configured to measure temperature.
12. The sensing roll of claim 9, including a transceiver attached to the cylindrical member and each of the sensors of the first set and the at least one additional set for transmitting data signals from the sensors.
13. The sensing roll of claim 9, wherein sensor data from the first set and the at least one additional set of sensors is measured when these sensors enter the nip.
14. The sensing roll of claim 9, wherein the at least one additional set of sensors includes a second set and a third set, wherein each sensor of the first set has a corresponding sensor in the second and third sets which is located at the same cross-sectional position and is spaced 120 apart circumferentially.
15. The sensing roll of claim 9, wherein the at least one additional set of sensors includes a second set, wherein each sensor of the first set has a corresponding sensor in the second set which is located at the same cross-sectional position and is spaced 180 apart circumferentially.
16. The sensing roll of claim 9, wherein the at least one additional set of sensors includes a second set, a third set, and a fourth set, wherein each sensor of the first set has a corresponding sensor in the second, third, and fourth sets, each corresponding sensor being located at the same cross-sectional position and is spaced 90 apart circumferentially from an adjacent sensor.
17. A system for calculating and displaying information from a nip, comprising: a sensing roll configured with a second roll in a nip press, the sensing roll and the second roll adapted to rotatingly press matter therebetween in a nip, the sensing roll having a plurality of cross-directional positions along its length, the sensing roll including a plurality of sets of sensors, each sensor of the plurality of sets of sensors being disposed at a cross-directional position along the sensing roll, each sensor configured to sense and measure a property when the sensor enters the nip, wherein the plurality of sets of sensors comprises n sets of sensors, wherein each sensor of a one of the n sets has a corresponding sensor in each of the remaining n1 sets, each corresponding sensor being located at the same cross-directional position and spaced 360/n apart circumferentially from an adjacent sensor on the sensing roll, each set of sensors forming a helix which extends about 360 around the sensing roll in a single revolution, each of the corresponding sensors of the plurality of sets providing a measurement of the property at the respective cross-directional position which is averaged to supply an average measurement to processing equipment which calculates and displays the information from the nip.
18. The system of claim 17, wherein the property measured by the plurality of sets of sensors is pressure, temperature, strain, moisture, or nip width.
19. The system of claim 17, wherein the property measured by the plurality of sets of sensors is temperature.
20. The system of claim 17, wherein each sensor of the plurality of sets has a corresponding sensor in each of other sets which is located at the same cross-directional position but is spaced apart circumferentially on the sensing roll.
21. The system of claim 17, wherein a mathematical model is used to analyze the plurality of sensor readings at each cross-directional position and calculate a rotational variability profile.
22. The system of claim 17, further including a transceiver attached to the sensing roll and to each of the sensors of the plurality of sets for transmitting data signals from the sensors to a receiver unit.
23. The system of claim 22, further including a processing unit for calculating a property distribution based on the average of the measurements of each plurality of corresponding sensors of the multiple sets of sensors and displaying a property profile on a display unit.
24. A system for calculating and displaying information from a nip, comprising: a sensing roll configured with a second roll in a nip, the sensing roll and the second roll adapted to rotatingly press matter therebetween in the nip, the sensing roll having a plurality of cross-directional positions along its length, the sensing roll including a plurality of sets of sensors, each sensor of the plurality of sets of sensors being disposed at a cross-directional position along the sensing roll, each sensor configured to sense and measure a property when the sensor enters the nip, wherein the plurality of sets of sensors comprises n sets of sensors, wherein each sensor of a one of the n sets has a corresponding sensor in each of the remaining n1 sets, each corresponding sensor being located at the same cross-directional position and spaced 360/n apart circumferentially from an adjacent sensor on the sensing roll, each set of sensors forming a partial helix which extends about 360/n around the sensing roll, each of the corresponding sensors of the plurality of sets providing a measurement of the property at the respective cross-directional position which is averaged to supply an average measurement to processing equipment which calculates and displays the information from the nip.
25. The system of claim 24, wherein the property measured by the plurality of sets of sensors is pressure, temperature, strain, moisture, or nip width.
26. The system of claim 24, wherein the property measured by the plurality of sets of sensors is temperature.
27. The system of claim 24, wherein each sensor of the plurality of sets has a corresponding sensor in each of other sets which is located at the same cross-directional position but is spaced apart circumferentially on the sensing roll.
28. The system of claim 24, wherein a mathematical model is used to analyze the plurality of sensor readings at each cross-directional position and calculate a rotational variability profile.
29. The system of claim 24, further including a transceiver attached to the sensing roll and to each of the sensors of the plurality of sets for transmitting data signals from the sensors to a receiver unit.
30. The system of claim 29, further including a processing unit for calculating a property distribution based on the average of the measurements of each plurality of corresponding sensors of the multiple sets of sensors and displaying a property profile on a display unit.
31. A method for sensing and removing effects of rotational variability from a nip profile of a sensing roll of a nip press, comprising: providing the sensing roll having a working length and a plurality of cross-directional positions disposed along the working length; wherein said sensing roll comprises multiple operational parameter measuring sensors at each cross-directional position, the plurality of sensors being spaced apart circumferentially from the other; and measuring the operational parameter with each sensor at each cross-directional location as the sensor moves into a nip region of the nip press; wherein, for each cross-directional position, averaging the operational parameter measurements from each of the multiple sensors placed at the cross-directional position to determine an average operational parameter measurement at the cross-directional position; and utilizing the average operational parameter measurements from each cross-directional position to provide a nip operational parameter profile for the nip press.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0044] The present invention relates to rolls for use particularly in nipped roll presses, in which rolls exert pressing forces on webs for forming paper, textile material, plastic foil and other related materials. Although the present invention may be used in the above industries, the discussion to follow will focus on the function of rolls for use particularly in the manufacture of paper and particularly to a nip press for dewatering a fibrous web, comprising a sensing roll disposed so as to rotatingly cooperate with another roll in the nip press.
[0045] As shown in
[0046] Referring now to
[0047] These sensors 26 and 30 may be at least partially disposed within the roll cover 22 which forms the portion of the sensing roll 10. Each of the sensors 26 and 30 are adapted to sense and measure a particular data parameter, such as, for example, the pressure that is being exerted on the sensor when it enters the nip region 18. As can be best seen in
[0048] Each sensor 30 of this second set 28 is disposed at a particular cross-directional position on the sensing roll 10. Each sensor 26 of the first set 24 has a corresponding sensor in the second set 28 with each corresponding sensor of the first and second set being located at the same cross-directional position along the sensing roll. In this manner, each cross-directional position of the sensing roll has a pair of sensors which measure the pressure at two different circumferential positions. Each pair of corresponding sensors are located along the sensing roll 10 at a cross-directional position to provide two sensor readings when the sensing roll completes a full 360 rotation. The average of these two readings can then be utilized to calculate and display the nip pressure profile that is being developed on the rotating nip press 12.
[0049] The manner in which the pressure measurements can be made is best explained by referring to
[0050] Only the sensor 26 located in the 4.sup.th cross-directional position and the sensor 30 located in the 11.sup.th cross-directional position are in proper position for taking the pressure measurement as they are located in the nip region NR. Once these two sensors 26, 30 enter the nip region NR, the pressure being exerted on the sensor is measured. As the sensing roll 10 continues to rotate, the other sensors in the 5.sup.th and 12.sup.th cross-directional positions will then be located in the nip region NR and will be able to measure the pressure at these particular positions. Further rotation of the sensing roll 10 places the sensors in the 6.sup.th and 13.sup.th cross-directional positions into the nip region NR for pressure measurements. Eventually, the sensing roll 10 rotates 180 from its initial position shown in
[0051] In prior art sensing rolls which utilize a single sensor at each cross-directional position, the processing unit would have single sensors at each cross-directional positions. A prior art sensing roll which has a single sensor at the 11.sup.th cross-directional position in the illustrated example above could only rely on a single reading at that position in order to calculate and display the nip pressure profile. A prior art roll would then use either the 240 PLI or 160 PLI reading for determining and displaying the nip pressure profile at this location. Such a reading would be less than accurate as the sensing roll full rotates in a 360 revolution. Accordingly, the calculated nip pressure at this position will be less than accurate. However, the processing unit would display a nip pressure profile would appear to be accurate but in reality would be less than accurate. If adjustments are made to the sensing roll by the machine operator or through automatic adjustment equipment to compensate for high or low pressure readings, then the sensing roll could be adjusted to develop even more incorrect pressures at various locations in the nip region.
[0052] As the roll 10 rotates placing different sensors into the nip region, the respective sensors measure the pressure which is then transmitted to the processing unit. The processing unit associated with each sensing roll 10 can then calculate the average pressure of each pair of corresponding sensors at the various cross-directional positions and produce a nip pressure profile which can be visualized on a monitor or other visual screen. Computer equipment well known in the art could be utilized to process the pressure readings that are being made in milliseconds.
[0053] One method of the present invention for sensing and removing the effects of rotational variability from the nip pressure profile of a sensing roll of a nip press thus includes providing a sensing roll having a working length and a plurality of cross-directional positions disposed along the working length and the placement of pairs of pressure-measuring sensors at each cross-directional positions. In the particular embodiment shown in
[0054] It should be appreciated that while the present invention discloses mathematical modeling that utilizes the direct averaging of the measurements taken by each corresponding sensor, it could be possible to obtain a composite average measurement utilizing other types of models which can obtain and calculate an averaged measurement at each cross-directional position. For example, the operating equipment (data processors) could utilize another model such as curve fitting which also can provide the more accurate nip pressure profile. Still other models known in the art could be utilized with the multiple pressure readings from the various sensors to obtain the more accurate nip pressure profile.
[0055] Variations of the sensing roll are disclosed in
[0056] It should be appreciated that the working length of the sensing roll can be quite long and may require each set of sensors to be wound more than one times around the roll. Again, such a pattern is satisfactory as long as the pattern allows for three sensors to be use at each cross-directional position (spaced 120 apart) in order to produce three separate pressure readings which are then processed to produce a base reading.
[0057] Referring now to
[0058] Referring now to
[0059] In a similar manner three helixes may be wound 120 each, four 90 each or n helixes 360/n each. The particular advantage of this arrangement of sensors is in sensing short wavelength bars that may be associated with cover wear as each sensing element is at a different rotational position.
[0060] The methods for sensing and removing the effects of rotational variability from the nip pressure profile of a sensing roll of a nip press utilizing the embodiments of
[0061] The sensors used in the various sets can be electrically connected to a transmitter unit 40 which also can be attached to the sensing unit 10. The transmitter unit 40 can transmit wireless signals which can be received by a wireless receiver located at a remote location. The wireless receiver can be a part of a system which processes the signals, creates the nip profile and sends corrective signals back to the sensing roll 10. Sensors may be collected in the same collection period and average together for immediate use. However, the additional wireless transmission may reduce the battery life of the wireless unit. As the rotational variability changes slowly, alternating the collection between the sensors and averaging together the collections in the alternate collection periods will provide comparable information and may save battery life.
[0062] One particular system for processing the signals is shown in
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[0064] The sensors can take any form recognized by those skilled in the art as being suitable for detecting and measuring pressure. Pressure sensors may include piezoelectric sensors, piezoresistive sensors, force sensitive resistors (FSRs), fiber optic sensors, strain gage based load cells, and capacitive sensors. The invention is not to be limited to the above-named sensors and may include other pressure sensors known to those of ordinary skill in the art. It should be appreciated that data relating to the operational parameter of interest, other than pressure, could be utilized with the present invention. In this case, the sensors could be used to measure temperature, strain, moisture, nip width, etc. The sensors would be strategically located along the sensing roll as described above. Depending on the type of sensor, additional electronics may be required at each sensor location. The design and operation of the above sensors are well known in the art and need not be discussed further herein.
[0065] The processor unit is typically a personal computer or similar data exchange device, such as the distributive control system of a paper mill that can process signals from the sensors into useful, easily understood information from a remote location. Suitable exemplary processing units are discussed in U.S. Pat. Nos. 5,562,027 and 6,568,285 to Moore, the disclosures of which are hereby incorporated herein in their entireties.
[0066] Referring now to
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[0068] While there have been described herein what are considered to be preferred and exemplary embodiments of the present invention, other modifications of the invention shall be apparent to those skilled in the art from the teachings herein and, it is therefore, desired to be secured in the appended claims all such modifications as fall within the true spirit and scope of the invention. Thus, any modification of the shape, configuration and composition of the elements comprising the invention is within the scope of the present invention. Accordingly, what is desired to be secured by Letters Patent of the United States is the invention as defined and differentiated in the following claims.