Embodiments of the present invention relate to a rigid yet flexible spindle for use with rolled materials (such as ribbon and labels) in a thermal printing device.
Thermal printing devices are well known in the art. One of the primary applications of thermal printing devices is label making, in which thermal ink is transferred onto a media, like a label, by sending data to the thermal print head and then powering/heating the elements of the thermal print head to transfer the desired pattern of thermal ink onto the label.
As
Further, many thermal printing devices can be very small (such as barcode label makers, etc.) and have small spindles (such as a 0.5″ diameter spindle). As such, there is not much room in the spindles for the rolled materials that would allow for complex mechanisms to prevent flexing of the spindle and slipping of the core around the spindle.
Accordingly, there is a need for a rigid yet flexible spindle for rolled material in a thermal printing device.
Accordingly, one aspect of the present invention discloses a spindle comprising: a shaft comprised of a rigid component and a flexible component, wherein the rigid component is comprised of a plurality of ribs extending radially from the axis of the shaft and wherein the flexible component of the shaft is comprised of a plurality of flexible cantilevers.
In other embodiments, successive ones of the plurality of flexible cantilevers have alternating orientations.
In further embodiments, the ribs of the rigid component of the shaft are spaced at regular intervals along the length of the shaft.
In still further embodiments, the ribs of the rigid component of the shaft are spaced at irregular intervals along the length of the shaft.
In more embodiments, the shaft and the ribs of the rigid component of the shaft are made of the same material.
In separate embodiments, the rigid component and flexible component comprise different proportions of the shaft.
In still additional embodiments, the proportion of the rigid component is 50% and the proportion of the flexible component is 50%.
In additional embodiments, the spindle further comprises: a plurality of buttresses spaced along the axis of the shaft with the flexible cantilevers.
In expanded embodiments, the plurality of buttresses is spaced between adjacent ones of the plurality of flexible cantilevers.
In another embodiment, the plurality of buttresses is regularly spaced along the axis of the shaft.
In yet further embodiments, the shaft and plurality of buttresses are made of the same material.
In other embodiments, the plurality of flexible cantilevers is made of a material having appropriate tension and compression properties.
In further embodiments, the plurality of flexible cantilevers is a continuous part of a single flexible cantilever assembly.
In still further embodiments, each of the plurality of the flexible cantilevers have a beveled edge on both ends of the surface of the flexible cantilever that is in contact with a core of a rolled material.
In more embodiments, the diameter of the spindle is equal to or less than 0.5 inches.
In separate embodiments, the spindle further comprises: a plurality of hard stop features regularly spaced along the axis of the shaft, wherein each hard stop feature corresponds to the location of the free ends of each of the plurality of flexible cantilevers.
In still additional embodiments, the shaft and plurality of hard stop features are made of different materials.
In additional embodiments, each of the plurality of hard stop features sets a maximum possible displacement for each of the corresponding plurality of flexible cantilevers.
In expanded embodiments, each of the plurality of hard stop features prevents yielding of each of the corresponding plurality of flexible cantilevers.
The foregoing illustrative summary, as well as other exemplary objectives and/or advantages of the invention, and the manner in which the same are accomplished, are further explained within the following detailed description and its accompanying drawings.
Embodiments of the present invention describe a rigid yet flexible spindle. In some embodiments, the rigid yet flexible spindle is used with rolled material in a thermal printing device.
The unique feature of the rigid yet flexible spindle 200 is that one portion of the shaft 202 of the spindle 200 comprises a rigid component 204 and the other portion of the shaft 202 of the spindle 200 comprises a flexible component 203. As illustrated in
The flexible component 203 of the rigid yet flexible spindle 200 is designed to address core tolerance issues in the rolled media and to retain the core's relative movement. The rigid component 204 of the rigid yet flexible spindle 200 is designed to prevent the spindle from flexing during printing.
In
In between the flexible cantilevers 301 are buttresses 303 that are designed to hold the flexible cantilevers in place in the spindle 200 and provide the reinforcement for the flexible cantilevers 301. In some embodiments, the buttresses 303 are made of the same material as the rest of the rigid yet flexible spindle 200 and are part of the same injection molding manufacturing process for the spindle 200.
The flexible cantilevers 301 may be made of any material that is capable of supporting compression and tension forces. In one embodiment, the flexible cantilevers are made of steel. In another embodiment, the flexible cantilevers may be contiguous as part of a single flexible cantilever assembly 302, as shown in
The rigid yet flexible spindle 200 further comprises a plurality of hard stop features 307 regularly spaced along the axis of the shaft 202 corresponding to the locations of the free ends of the flexible cantilevers 301. Note that as shown in
In
The core forces 402A and 402B allow the spindle 200 to hold the core (109, 111) in place and adapt to small variations in core tolerance. The rotational forces (401A and 401B) in the same direction produce an opposite bending of the flexible cantilevers (301A and 301B), allowing them to bite into the core (109, 111) thereby retaining the relative movement between the core (109, 111) and the spindle 200.
Again, the core forces 402C and 402D allow the spindle 200 to hold the core (109, 111) in place and adapt to small variations in core tolerance. The rotational forces (401C and 401D) in the same direction produce an opposite bending of the flexible cantilevers (301C and 301D), allowing them to bite into the core (109, 111) thereby retaining the relative movement between the core (109, 111) and the spindle 200.
The hard stop features 307 of the rigid yet flexible spindle 200 set a maximum possible displacement for the flexible cantilevers 301 in response to the rotational forces 401A, 401B, 401C, and 401D and prevent the yielding of the flexible cantilevers 301 under the application of those rotational forces.
The disclosed subject matter may be embodied as devices, systems, methods.
To supplement the present disclosure, this application incorporates entirely by reference the following commonly assigned patents, patent application publications, and patent applications:
In the specification and/or figures, typical embodiments of the invention have been disclosed. The present invention is not limited to such exemplary embodiments. The use of the term “and/or” includes any and all combinations of one or more of the associated listed items. The figures are schematic representations and so are not necessarily drawn to scale. Unless otherwise noted, specific terms have been used in a generic and descriptive sense and not for purposes of limitation.
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