Method for automatically-adjusting web media tension
Abstract
A method for automatically adjusting a level of tension in web media being transported in a roll-fed web media transport system, comprising: receiving web media from a source roller, feeding the web media through an S-shaped media path in an automatically-adjusting tensioning mechanism where the web media is wrapped around curved surfaces on first and second tensioning shoes, and pulling the web media through the automatically-adjusting tensioning mechanism using a feed mechanism. The tensioning mechanism includes: a bracket assembly mounted to a frame which is adapted to freely pivot around a pivot axis. A pivot angle of the bracket assembly automatically adjusts in response to differences in a coefficient of friction between the web media and the tensioning shoes such that the tension in the web media has a reduced level of variability relative to configurations where the bracket assembly is held in a fixed position.
Claims
exact text as granted — not AI-modified1 . A method for automatically adjusting a level of tension in web media being transported in a roll-fed web media transport system, the web media having a width, comprising:
receiving web media into an automatically-adjusting tensioning mechanism from a source roller, the automatically-adjusting tensioning mechanism including:
a bracket assembly mounted to a frame and adapted to freely pivot around a pivot axis through a range of pivot angles, the pivot axis being oriented in a direction across the width of the web media;
a first tensioning shoe extending in a lengthwise direction across the width of the web media and having a first curved surface, the first tensioning shoe being attached to the bracket assembly; and
a second tensioning shoe extending in a lengthwise direction across the width of the web media and having a second curved surface, the second tensioning shoe being attached to the bracket assembly at a fixed distance from the first tensioning shoe;
feeding the web media through an S-shaped media path in the automatically-adjusting tensioning mechanism where the web media is wrapped around the first curved surface of the first tensioning shoe and is wrapped around the second curved surface of the second tensioning shoe such that a frictional drag resulting from friction between the web media and the first and second tensioning shoes provides a tension in the web media as it exits the automatically-adjusting tensioning mechanism, the web media being in contact with the first curved surface for a first contact distance and being in contact with the second curved surface for a second contact distance; wherein the pivot angle of the bracket assembly automatically adjusts in response to differences in a coefficient of friction between the web media and the first and second tensioning shoes such that the tension in the web media as it exits the automatically-adjusting tensioning mechanism has a reduced level of variability as a function of the coefficient of friction relative to configurations where the bracket assembly is held in a fixed position; and pulling the web media through the automatically-adjusting tensioning mechanism using a feed mechanism provided downstream of the automatically-adjusting tensioning mechanism.
2 . The method of claim 1 wherein the web media is wrapped around a lower side of the first tensioning shoe and around an upper side of the second tensioning shoe, and wherein the automatically-adjusting tensioning mechanism experiences a first torque component relative to the pivot axis corresponding to a downward force at the first tensioning shoe and an opposing second torque component relative to the pivot axis corresponding to a downward force at the second tensioning shoe, the torque components being imbalanced such that the first torque component is larger than the second torque component so that a net torque on the automatically-adjusting tensioning mechanism, thereby providing a downward force on the first tensioning shoe and an upward force on the second tensioning shoe.
3 . The method of claim 2 wherein an increase in the coefficient of friction between the web media and the first and second tensioning shoes causes the pivot angle of the bracket assembly to change, thereby reducing the first and second contact distances.
4 . The method of claim 2 wherein the imbalance in the torque components is provided, at least in part, by a distance between the first tensioning shoe and the pivot axis being larger than a distance between the second tensioning shoe and the pivot axis.
5 . The method of claim 2 wherein the imbalance in the torque components is provided, at least in part, by adding an additional weight to the bracket assembly in proximity to the first tensioning shoe.
6 . The method of claim 2 wherein the imbalance in the torque components is provided, at least in part, by a weight of the first tensioning shoe being larger than a weight of the second tensioning shoe.
7 . The method of claim 6 wherein first and second tensioning shoes have hollow cores, and wherein the weight of the first tensioning shoe is increased by inserting a mass into the hollow core of the first tensioning shoe.
8 . The method of claim 2 wherein the imbalance in the torque components is provided, at least in part, by a spring connected between the bracket assembly or the first tensioning shoe and the frame.
9 . The method of claim 8 wherein the spring is a constant force spring.
10 . The method of claim 2 wherein the imbalance in the torque components is provided, at least in part, by a weight attached to the bracket assembly or the first tensioning shoe using a cable to provide a downward force at the first tensioning shoe.
11 . The method of claim 10 wherein the cable is wrapped around at least a portion of the first tensioning shoe and the cable passes over a pulley positioned so that the cable places a force on the tensioning mechanism that is substantially symmetric with the force that the web media places on tensioning mechanism with respect to a vertical line passing through the pivot axis.
12 . The method of claim 1 wherein the first and second tensioning shoes are cylinders.
13 . The method of claim 1 wherein the first and second tensioning shoes have grooved surfaces.
14 . The method of claim 1 wherein the web media is received into the automatically-adjusting tensioning mechanism in a slack state having a negligible level of tension.
15 . The method of claim 1 wherein the differences in the coefficient of friction between the web media and the first and second tensioning shoes result from using different web media having different physical characteristics.
16 . The method of claim 1 wherein the differences in the coefficient of friction between the web media and the first and second tensioning shoes result from different environmental characteristics.
17 . The method of claim 1 wherein the differences in the coefficient of friction between the web media and the first and second tensioning shoes result from the application of one or more chemical substances to the surface of the web media.
18 . The method of claim 1 wherein the differences in the coefficient of friction between the web media and the first and second tensioning shoes result from changes in the surface characteristics of the first and second tensioning shoes due to wear or due to contamination.
19 . The method of claim 1 wherein the bracket assembly includes a first bracket plate to which a first end of the first and second tensioning shoes are attached and a second bracket plate to which a second opposite end of the of the first and second tensioning shoes are attached.
20 . The method of claim 1 wherein the roll-fed web media transport system is used in a roll-fed printing system that deposits one or more colorants onto a surface of the web media.
21 . The method of claim 1 wherein the roll-fed web media transport system is used in a roll-fed coating system that coats one or more layers of material onto a surface of the web media.Join the waitlist — get patent alerts
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