MULTI-NIP TAKEOFF
20170182685 ยท 2017-06-29
Inventors
Cpc classification
B29C2043/5833
PERFORMING OPERATIONS; TRANSPORTING
B29C48/305
PERFORMING OPERATIONS; TRANSPORTING
B29C59/02
PERFORMING OPERATIONS; TRANSPORTING
B29C43/58
PERFORMING OPERATIONS; TRANSPORTING
B29C48/355
PERFORMING OPERATIONS; TRANSPORTING
B29C43/22
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C43/22
PERFORMING OPERATIONS; TRANSPORTING
B29C59/02
PERFORMING OPERATIONS; TRANSPORTING
B29C43/58
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A method for nipping and cooling plastic sheet material and a multi-nip takeoff and cooling section having a first smoothing and a second smoothing roll. A position, calibration and cooling roll is positioned proximate to the second smoothing roll. The position, calibration and cooling roll is movable relative to the second smoothing roll. A first fixed calibration and cooling roll is positioned proximate the position, calibration and cooling roll. The first fixed calibration and cooling roll is in a fixed position relative to the second smoothing roll. A first movable calibration and cooling roll is positioned proximate the first fixed calibration and cooling roll The first movable calibration and cooling roll is movable relative to the first fixed calibration and cooling roll. Actuators cooperate with the position, calibration and cooling roll and the first movable cooling roll to provide both nip pressure and gap control.
Claims
1. A multi-nip takeoff and cooling section comprising: a first smoothing and a second smoothing roll; a position, calibration and cooling roll positioned proximate to the second smoothing roll, the position, calibration and cooling roll being movable relative to the second smoothing roll; a first fixed calibration and cooling roll positioned proximate the position, calibration and cooling roll, the first fixed calibration and cooling roll being in a fixed position relative to the second smoothing roll; a first movable calibration and cooling roll positioned proximate the first fixed calibration and cooling roll, the first movable calibration and cooling roll being movable relative to the first fixed calibration and cooling roll; and a second fixed calibration and cooling roll positioned proximate the first movable calibration and cooling roll, the second fixed calibration and cooling roll being in a fixed position relative to the second smoothing roll.
2. The multi-nip takeoff and cooling section as recited in claim 1, wherein a first movable cooling roll is positioned proximate the second fixed calibration and cooling roll, the first movable cooling roll being movable relative to the second fixed calibration and cooling roll.
3. The multi-nip takeoff and cooling section as recited in claim 1, wherein the first smoothing roll is movable relative to the second smoothing roll.
4. The multi-nip takeoff and cooling section as recited in claim 1, wherein the first smoothing roll has a diameter which is smaller than a diameter of the second smoothing roll.
5. The multi-nip takeoff and cooling section as recited in claim 1, wherein the position, calibration and cooling roll has a diameter which is smaller than the diameter of the second smoothing roll.
6. The multi-nip takeoff and cooling section as recited in claim 1, wherein the first fixed calibration and cooling roll, the first movable calibration and cooling roll, and the second fixed calibration and cooling roll have diameters which are essentially equal to the diameter of the position, calibration and cooling roll.
7. The multi-nip takeoff and cooling section as recited in claim 1, wherein actuators cooperate with the position, calibration and cooling roll and the first movable cooling roll to provide both nip pressure and gap control between the second smoothing roll, the position, calibration and cooling roll and the first fixed calibration and cooling roll and between the first fixed calibration and cooling roll, the first movable calibration and cooling roll and the second fixed calibration and cooling roll.
8. The multi-nip takeoff and cooling section as recited in claim 2, wherein the first movable cooling roll moves vertically and horizontally relative to the second smoothing roll to provide an angle between first movable cooling roll and the second smoothing roll which results in a balanced force and varied gaps between the first movable cooling roll and the second smoothing roll that compensates for deflections for the first fixed calibration and cooling roll and the first movable calibration and cooling roll.
9. The multi-nip takeoff and cooling section as recited in claim 1, wherein the first fixed calibration and cooling roll and the second fixed calibration are spaced apart to provide clearance for the first movable calibration and cooling roll to be moved between the first fixed calibration and cooling roll and the second fixed calibration.
10. The multi-nip takeoff and cooling section as recited in claim 1, wherein the first fixed calibration and cooling roll, the first movable calibration and cooling roll and the second fixed calibration and cooling roll are offset vertically.
11. The multi-nip takeoff and cooling section as recited in claim 1, wherein when the position, calibration and cooling roll and the first movable calibration and cooling roll are in a retracted position, the position, calibration and cooling roll and the first movable calibration and cooling roll engage stops, allowing the multi-nip takeoff and cooling section to orient itself at power up.
12. A multi-nip takeoff and cooling section comprising: a first smoothing and a second smoothing roll; a position, calibration and cooling roll positioned proximate to the second smoothing roll, the position, calibration and cooling roll being movable relative to the second smoothing roll; a first fixed calibration and cooling roll positioned proximate the position, calibration and cooling roll, the first fixed calibration and cooling roll being in a fixed position relative to the second smoothing roll; a first movable calibration and cooling roll positioned proximate the first fixed calibration and cooling roll, the first movable calibration and cooling roll being movable relative to the first fixed calibration and cooling roll; and actuators cooperate with the position, calibration and cooling roll and the first movable cooling roll to provide both nip pressure and gap control between the second smoothing roll and the position, calibration and cooling roll, between the position, calibration and cooling roll and the first fixed calibration and cooling roll, and between the first fixed calibration and cooling roll and the first movable calibration.
13. The multi-nip takeoff and cooling section as recited in claim 12, wherein a second fixed calibration and cooling roll is positioned proximate the first movable calibration and cooling roll, the second fixed calibration and cooling roll being in a fixed position relative to the second smoothing roll, a first movable cooling roll is positioned proximate the second fixed calibration and cooling roll, the first movable cooling roll being movable relative to the second fixed calibration and cooling roll, actuators cooperate with the first movable cooling roll to allow the first movable cooling roll to move vertically and horizontally relative to the second smoothing roll to provide a balanced force and varied gap along the axis of roll that removes deflections for the position, calibration and cooling roll, the first fixed calibration and cooling roll, the first movable calibration and cooling roll and the second fixed calibration and cooling roll.
14. A method for nipping and cooling plastic sheet material, the method comprising: running the plastic sheet material through polishing rolls; running the plastic sheet material through calibration and cooling rolls; adjustably nipping on each pair of respective calibration and cooling rolls, allowing for a gradual change to the thickness of sheet material until sheet material reaches a final calibration and cooling roll; whereby the initial nipping load of the polishing rolls is reduced, allowing the size of the polishing rolls and the power needed to drive them to be reduced.
15. The method of claim 12, comprising: controlling speed of the rotation of each respective calibration and cooling rolls to be consistent with other of the calibration and cooling rolls.
16. The method of claim 12, comprising: varying speed of the rotation of each respective calibration and cooling rolls relative to other of the calibration and cooling rolls.
17. The method of claim 14, comprising: increasing the speed of rotation in respective calibration and cooling rolls which are removed from the polishing rolls to keep a tension on the plastic sheet material.
18. The method of claim 15, comprising: calculating the desired speed of rotation based on a percentage of nipping of the sheet material versus percentage of the volume flow rate of the sheet material.
19. The method of claim 12, comprising: positioning respective calibration and cooling rolls which are removed from the polishing rolls so that an equal wrap angle is maintained with uniform cooling on both sides of the sheet material.
20. The method of claim 12, comprising: retracing adjustable calibration and cooling rolls such that tops of the adjustable calibration and cooling rolls are moved in line with a series of idler rolls to facilitate an operator in threading the sheet material through the calibration and cooling rolls by providing a level surface on which to push the sheet material through the machine.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present invention will be described more fully hereinafter with reference to the accompanying drawings, in which illustrative embodiments of the invention are shown. In the drawings, the relative sizes of regions or features may be exaggerated for clarity. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art.
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[0026]
DETAILED DESCRIPTION OF THE INVENTION
[0027] The description of illustrative embodiments according to principles of the present invention is intended to be read in connection with the accompanying drawings, which are to be considered part of the entire written description. In the description of embodiments of the invention disclosed herein, any reference to direction or orientation is merely intended for convenience of description and is not intended in any way to limit the scope of the present invention. Relative terms such as lower, upper, horizontal, vertical, above, below, up, down, top and bottom as well as derivative thereof (e.g., horizontally, downwardly, upwardly, etc.) should be construed to refer to the orientation as then described or as shown in the drawing under discussion. These relative terms are for convenience of description only and do not require that the apparatus be constructed or operated in a particular orientation unless explicitly indicated as such. Terms such as attached, affixed, connected, coupled, interconnected, and similar refer to a relationship wherein structures are secured or attached to one another either directly or indirectly through intervening structures, as well as both movable or rigid attachments or relationships, unless expressly described otherwise. Moreover, the features and benefits of the invention are illustrated by reference to the preferred embodiments. Accordingly, the invention expressly should not be limited to such preferred embodiments illustrating some possible non-limiting combination of features that may exist alone or in other combinations of features; the scope of the invention being defined by the claims appended hereto.
[0028] An illustrative multi-nip takeoff and cooling section 10 is shown diagrammatically in the illustrative embodiments of
[0029] In the illustrative embodiments shown, the calendering device 12 has two polish or smoothing primary rolls 16, 18. In these embodiment, the smoothing roll 16 has a smaller diameter than the smoothing roll 18. However, the smoothing rolls 16, 18 can be either a combination of a larger roll and a smaller roll or two rolls of equal size, depending on the application.
[0030] The longitudinal axis of roll 16 is positioned at a 45 degree angle relative to the longitudinal axis of roll 18 and all fixed rolls 24, 28. However, roll 16 can be located in a position that is horizontal, or at any angle from 0 degree to 90 degrees, with respect to roll 18. The orientation changes can be accomplished by changing mounting hardware or other known methods of changing the orientation can be used.
[0031] The smoothing rolls 16, 18 function as cooling rolls and function as the primary or major nipping and polishing rolls. In the embodiments shown, approximately 80% to 90% of final thickness of the web of material 30 is formed by the movement and spacing of the smoothing rolls 16, 18.
[0032] Roll 20 functions as a position, calibration and cooling roll. Roll 20 is positioned proximate to or adjacent to smoothing roll 18. Roll 20 has a diameter which is smaller than the diameter of roll 18.
[0033] Rolls, 22, 24, 26, 28 have the same diameter as roll 20. These rolls perform 22, 24, 26, 28 both calibration (small nipping as further calibration of web thickness and surface polish) and cooling (with equal cooling for upper and lower surface of web on each pair rolls).
[0034] The longitudinal axis of roll 16, as shown in the illustrative embodiment of
[0035] In various illustrative embodiments, the nip roll 16 may have a skewing device which can compensate for some deflection of roll 16 at higher nipping force of thin gauge processing. With this skewing device the roll 16 can be made smaller than roll 18 to save cost. The manipulation and movement of the nip roller 16 is also made easier, allowing for the space or nipping gap 32 to be precisely established and maintained between the two primary rolls 16 and 18.
[0036] In the illustrative embodiment shown in
[0037] Servo controlled electric, or hydraulic, lift actuators cooperate with the movable or adjustable rolls 16, 20, 24, 28 to provide both nip pressure and gap control between the respective adjustable rolls 16, 20, 24, 28 and the respective fixed rolls 18, 22, 26. Coordinated control of these lift actuators provides the capability to set the gap between each roll pair, independently. In the embodiments shown in
[0038] Mechanical stops (not shown) may be provided to properly datum (or zero) position the adjustable rolls 20, 24 such that the centers of adjustable rolls 20, 24 are located on the same horizontal line as the center of fixed rolls 18, 22, 26, as shown in
[0039] In the embodiment shown in
[0040] In the embodiment shown in
[0041] In various embodiments, the rolls 16, 18, 20, 22, 24, 26, 28, or any combination thereof, may be enclosed, so that no operator can come in contact with the rolls during normal operating mode, including, but not limited to, startup and shutdown.
[0042] As shown in
[0043] In other embodiments, a startup mode could also be provided that would run the rolls in reverse at a slow rate to help thread the cooling section 10 and the calendaring device 12. Alternatively, one or more of the cooling rolls may be closed as starter sheet passes over them to further assist with threading material back through the cooling section 10 and the calendaring device 12.
[0044] In the retracted position shown in
[0045] Adjustable nipping on each pair of respective adjacent rolls 20, 22, 24, 26, 28 may be provided. This allows for a gradual change to the thickness of web of material 30 until it reaches the final nipping roller 28, thereby reducing the initial nipping load of the first two polishing or smoothing rolls 16, 18. The reduction in load allows the size of first two polish rolls 16, 18 and the power needed to drive them to be reduced, resulting in energy and cost savings.
[0046] The velocity or speed of the rotation of each respective roll 20, 22, 24, 26, 28 will be consistent with other rolls or will vary between rolls. If the speed of the material is varied, the roll speed must be increased in the downstream rolls to keep a tension on the web of the material (for example, roll 28 has a roll speed greater than the roll speed of roll 20). If the volume flow rate is to be kept constant, the volume flow rate is used as a factor to determine the different speeds of each pair of rolls. In addition, if each pair of small rolls is to perform a nipping function, the volume flow rate must be controlled. In such applications, the roll speed must be calculated based on a percentage of nipping versus percentage of the volume flow rate accordingly.
[0047] In many applications, when it is not necessary for thin gauge web processing, the number of calibration and cooling rolls with close nipping can be reduced. For example, the configuration shown in
[0048] In the embodiment shown in
[0049] In the embodiment shown in
[0050] Referring to
[0065] Referring to
[0073] Referring to
[0077] Referring to
[0079] Referring to
D1=R1+R2+t(1)
And the center distance D2 between the adjustable positioning, calibration and cooling roll 20 and the fixed calibration and cooling roll 22 is,
D2=2R2+t(2)
[0080] There is a fixed zero position for the adjustable positioning, calibration and cooling roll 20 where the center of the adjustable positioning, calibration and cooling roll 20 is located in the same horizontal plane as the center of the fixed calibration and cooling roll 22. In this position, a final mechanical safety gap between the fixed primary roll and fixed calibration roll is provided. In the embodiment shown in
=0.002
The fixed distance XR1 that determines the zero position of movable roll is:
XR1=R1+R2+(3)
With the same definition, the fixed distance XR2 is:
XR2=2R2+(4)
The distance LR between the primary polish roll 18 and the fixed calibration and cooling roll 22 is:
LR=XR1+XR2(5)
[0081] The frame on which the primary polish roll 18, the adjustable positioning, calibration and cooling roll 20 and the fixed calibration and cooling roll 22 are positioned is configure such that the XR1, XR2, and LR will be made precisely from machining and assembly. Consequently, the stroke L of actuator of the adjustable positioning, calibration and cooling roll 20 is the control variable that can be calculated as follows:
L={square root over (D1.sup.2+XR1.sup.22D1XR1cos(1))}(6)
Where, 1 is:
[0082]
[0083] The L position is varied with the angle 1, and is determined by the equal gap t on each pair of rolls. Consequently, the guiding path will be given by both parameter of L and . Since the angle is different on each position of L, angle needs to be calculated through angle as the following:
And, then:
=901(9)
[0084] Based on the above, the location of the top end of each actuator for the adjustable positioning, calibration and cooling roll 20 is determined.
[0085] Referring to
D=2R2+t(10)
The fixed distance XR and LR are,
XR=2R2+(11)
LR=2XR(12)
The stroke is truly vertical and the stroke Y is:
Y={square root over (D.sup.2XR.sup.2)}(13)
And the variable angle is give,
[0086] As the angles 1, 2, and are small, the force required to be supplied from the actuator is significantly less than the nipping force. As an examples, with each of the angles 1, 2, and less than 6 degrees for the thin gauge web of 0.05, the force required to be supplied from the actuator is less than 10% of the nipping force The force R of actuator, as shown in
[0087] As the nipping force F1 is given by the material processing, for example about 800 to 1000 lbf/in for thin gauge PP processing and all the angles in the equation (15) are calculated as described above, the actuator force R is known.
[0088] The forces from the primary polish roll 18 and the fixed calibration and cooling roll 22 are different since the angle 1 and 2 are different. With force F1 is determined, force F2 is given by:
[0089] For the roll configuration shown in
R=2Fsin()(17)
Where, the F is equal to F2 in equation (16) since an equal nipping force is required in each pair of calibration rolls.
[0090] Referring to
[0091] An alternate embodiment is shown in
[0092] While the invention has been described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the spirit and scope of the invention as defined in the accompanying claims. In particular, it will be clear to those skilled in the art that the present invention may be embodied in other specific forms, structures, arrangements, proportions, sizes, and with other elements, materials, and components, without departing from the spirit or essential characteristics thereof. One skilled in the art will appreciate that the invention may be used with many modifications of structure, arrangement, proportions, sizes, materials, and components and otherwise, used in the practice of the invention, which are particularly adapted to specific environments and operative requirements without departing from the principles of the present invention. The presently disclosed embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being defined by the appended claims, and not limited to the foregoing description or embodiments.