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2026-01-27
18/630,097
2024-04-09
US 12,534,332 B1
2026-01-27
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Sang K Kim
Kyle A. Fletcher, Esq.
2044-06-21
Smart Summary: A layout line spooling device is a tool that works with a drill. It connects to the drill and helps manage a cord by winding it up for easy storage. The device has a handle, a part that attaches it to the drill, and a spool where the cord is stored. When the drill spins, it winds the cord onto the spool. This makes it convenient to keep the cord organized and out of the way. 🚀 TL;DR
The layout line spooling device forms the working element of a tool. The layout line spooling device is configured for use with a drill. The layout line spooling device attaches to the drill to form the working element of the drill. The layout line spooling device is configured for use with a cord. The layout line spooling device forms a spool that takes up the cord for storage. The layout line spooling device incorporates a handle structure, a mounting bushing, and a spool structure. The mounting bushing attaches the spool structure to the handle structure. The drill attaches to the spool structure. The rotation of the drill provides the motive forces that winds the cord onto the spool structure for storage.
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B65H75/406 » CPC main
Storing webs, tapes, or filamentary material, e.g. on reels; Cores, formers, supports, or holders for coiled, wound, or folded material, e.g. reels, spindles, bobbins, cop tubes, cans, mandrels or chucks specially adapted or mounted for storing and repeatedly paying-out and re-storing lengths of material provided for particular purposes, e.g. anchored hoses, power cables involving the use of a core or former internal to, and supporting, a stored package of material mobile or transportable hand-held during use
B65H75/305 » CPC further
Storing webs, tapes, or filamentary material, e.g. on reels; Cores, formers, supports, or holders for coiled, wound, or folded material, e.g. reels, spindles, bobbins, cop tubes, cans, mandrels or chucks; Constructional details; Arrangements to facilitate driving or braking Arrangements to facilitate driving by a portable drill
B65H75/40 IPC
Storing webs, tapes, or filamentary material, e.g. on reels; Cores, formers, supports, or holders for coiled, wound, or folded material, e.g. reels, spindles, bobbins, cop tubes, cans, mandrels or chucks specially adapted or mounted for storing and repeatedly paying-out and re-storing lengths of material provided for particular purposes, e.g. anchored hoses, power cables involving the use of a core or former internal to, and supporting, a stored package of material mobile or transportable
B65H75/30 IPC
Storing webs, tapes, or filamentary material, e.g. on reels; Cores, formers, supports, or holders for coiled, wound, or folded material, e.g. reels, spindles, bobbins, cop tubes, cans, mandrels or chucks; Constructional details Arrangements to facilitate driving or braking
Not Applicable
Not Applicable
Not Applicable
The present invention relates to the field of devices for transferring line to a reel. (A01K89/003)
The layout line spooling device forms the working element of a tool. The layout line spooling device is configured for use with a drill. The layout line spooling device attaches to the drill to form the working element of the drill. The layout line spooling device is configured for use with a cord. The layout line spooling device forms a spool that takes up the cord for storage. The layout line spooling device comprises a handle structure, a mounting bushing, and a spool structure. The mounting bushing attaches the spool structure to the handle structure. The drill attaches to the spool structure. The rotation of the drill provides the motive forces that winds the cord onto the spool structure for storage.
These together with additional objects, features and advantages of the layout line spooling device will be readily apparent to those of ordinary skill in the art upon reading the following detailed description of the presently preferred, but nonetheless illustrative, embodiments when taken in conjunction with the accompanying drawings.
In this respect, before explaining the current embodiments of the layout line spooling device in detail, it is to be understood that the layout line spooling device is not limited in its applications to the details of construction and arrangements of the components set forth in the following description or illustration. Those skilled in the art will appreciate that the concept of this disclosure may be readily utilized as a basis for the design of other structures, methods, and systems for carrying out the several purposes of the layout line spooling device.
It is therefore important that the claims be regarded as including such equivalent construction insofar as they do not depart from the spirit and scope of the layout line spooling device. It is also to be understood that the phraseology and terminology employed herein are for purposes of description and should not be regarded as limiting.
The accompanying drawings, which are included to provide a further understanding of the invention are incorporated in and constitute a part of this specification, illustrate an embodiment of the invention and together with the description serve to explain the principles of the invention. They are meant to be exemplary illustrations provided to enable persons skilled in the art to practice the disclosure and are not intended to limit the scope of the appended claims.
FIG. 1 is a perspective view of an embodiment of the disclosure.
FIG. 2 is a front view of an embodiment of the disclosure.
FIG. 3 is a side view of an embodiment of the disclosure.
FIG. 4 is an in-use view of an embodiment of the disclosure.
The following detailed description is merely exemplary in nature and is not intended to limit the described embodiments of the application and uses of the described embodiments. As used herein, the word “exemplary” or “illustrative” means “serving as an example, instance, or illustration.” Any implementation described herein as “exemplary” or “illustrative” is not necessarily to be construed as preferred or advantageous over other implementations. All of the implementations described below are exemplary implementations provided to enable persons skilled in the art to practice the disclosure and are not intended to limit the scope of the appended claims. Furthermore, there is no intention to be bound by any expressed or implied theory presented in the preceding technical field, background, brief summary or the following detailed description.
Detailed reference will now be made to one or more potential embodiments of the disclosure, which are illustrated in FIGS. 1 through 4.
The layout line spooling device 100 (hereinafter invention) forms the working element of a tool. The invention 100 is configured for use with a drill 105. The invention 100 attaches to the drill 105 to form the working element of the drill 105. The invention 100 is configured for use with a cord 104. The invention 100 forms a spool that takes up the cord 104 for storage. The invention 100 comprises a handle structure 101, a mounting bushing 102, and a spool structure 103. The mounting bushing 102 attaches the spool structure 103 to the handle structure 101. The drill 105 attaches to the spool structure 103. The rotation of the drill 105 provides the motive forces that winds the cord 104 onto the spool structure 103 for storage.
The cord 104 is a flexible structure. The cord 104 is a prism shaped structure. The cord 104 presents a resistance to a tensile force. The cord 104 does not present a resistance to a compressive force.
The drill 105 is a hand tool. The drill 105 is a power tool. The drill 105 forms a mechanical linkage with the spool structure 103. The drill 105 generates a rotational force that is transferred to the spool structure 103 through the mechanical linkage.
The handle structure 101 is a roughly prism shaped structure. The handle structure 101 is a rigid structure. The handle structure 101 forms a grip that is used to carry the invention 100.
The mounting bushing 102 is a rolling element bearing. The mounting bushing 102 mounts on a congruent end of the handle structure 101. The mounting bushing 102 attaches to the handle structure 101 such that the axis of rotation of the mounting bushing 102 aligns with the center axis of the handle structure 101. The mounting bushing 102 forms a rotating structure. The mounting bushing 102 secures the spool structure 103 to the handle structure 101 such that the spool structure 103 rotates freely relative to the handle structure 101.
The spool structure 103 is a spool. The spool structure 103 forms the structure that stores the cord 104. The spool structure 103 rotates relative to the handle structure 101. The spool structure 103 rotates in a first direction to deploy the cord 104 from the spool structure 103. The spool structure 103 rotates in a second direction to retract the cord 104 on to the spool structure 103. The second direction is opposite to the first direction. The spool structure 103 forms a mechanical linkage with the drill 105. The drill 105 provides the spool structure 103 with the rotational force necessary to retract the cord 104 on to the spool structure 103. The spool structure 103 comprises a core shaft structure 131, a handle flange structure 132, and a distal flange structure 133.
The core shaft structure 131 is a prism shaped structure. The core shaft structure 131 is a rigid structure. The core shaft structure 131 is an extension structure. The core shaft structure 131 forms the reach between the handle flange structure 132 and the distal flange structure 133. The core shaft structure 131 attaches the spool structure 103 to the mounting bushing 102 such that the mounting bushing 102 rotates the spool structure 103. The core shaft structure 131 attaches to the mounting bushing 102 such that the center of axis of the core shaft structure 131 aligns with the axis of rotation of the mounting bushing 102.
The lateral face of the core shaft structure 131 forms the surface on which the cord 104 is stored. The cord 104 wraps around the lateral face of the core shaft structure 131 for storage. The drill 105 transmits the rotational force to the core shaft structure 131 that is necessary to wrap the cord 104 around the lateral face of the core shaft structure 131.
The handle flange structure 132 is a prism shaped structure. The handle flange structure 132 is a rigid structure. The handle flange structure 132 forms a stop that prevents the cord 104 from slipping off the lateral face of the core shaft structure 131. The handle flange structure 132 attaches to the congruent end of the core shaft structure 131 that is proximal to the handle structure 101. The handle flange structure 132 attaches to the core shaft structure 131 such that the center axis of the handle flange structure 132 is perpendicular to the center axis of the core shaft structure 131. The handle flange structure 132 attaches to the core shaft structure 131 such that the center axis of the core shaft structure 131 intersects with the center point of the center axis of the handle flange structure 132.
The distal flange structure 133. The distal flange structure 133 is a prism shaped structure. The distal flange structure 133 is a rigid structure. The distal flange structure 133 forms a stop that prevents the cord 104 from slipping off the lateral face of the core shaft structure 131. The distal flange structure 133 attaches to the congruent end of the core shaft structure 131 that is proximal to the drill 105. The distal flange structure 133 attaches to the core shaft structure 131 such that the center axis of the distal flange structure 133 is perpendicular to the center axis of the core shaft structure 131. The distal flange structure 133 attaches to the core shaft structure 131 such that the center axis of the core shaft structure 131 intersects with the center point of the center axis of the distal flange structure 133.
The handle flange structure 132 further comprises a mounting bushing 102 mount 134. The mounting bushing 102 mount 134 is a mechanical structure. The mounting bushing 102 mount 134 mounts on the lateral face of the handle flange structure 132 such that the center of the mounting bushing 102 mount 134 aligns with the center axis of the core shaft structure 131. The mounting bushing 102 mount 134 forms the structure of the spool structure 103 that secures the spool structure 103 to the mounting bushing 102.
The distal flange structure 133 further comprises a drill 105 bit 135. The drill 105 bit 135 is a bit. The drill 105 bit 135 forms the mechanical structure that attaches the spool structure 103 to the drill 105. The drill 105 bit 135 attaches to the drill 105 such that the rotation of the drill 105 rotates the drill 105 bit 135. The drill 105 bit 135 mounts on the lateral face of the distal flange structure 133 such that the axis of rotation of the drill 105 bit 135 aligns with the center axis of the core shaft structure 131. The drill 105 bit 135 transfers the rotational force generated by the drill 105 to the balance of the mounting bushing 102.
The following definitions were used in this disclosure:
With respect to the above description, it is to be realized that the optimum dimensional relationship for the various components of the invention described above and in FIGS. 1 through 4 include variations in size, materials, shape, form, function, and manner of operation, assembly and use, are deemed readily apparent and obvious to one skilled in the art, and all equivalent relationships to those illustrated in the drawings and described in the specification are intended to be encompassed by the invention.
It shall be noted that those skilled in the art will readily recognize numerous adaptations and modifications which can be made to the various embodiments of the present invention which will result in an improved invention, yet all of which will fall within the spirit and scope of the present invention as defined in the following claims. Accordingly, the invention is to be limited only by the scope of the following claims and their equivalents.
1. A layout line spooling device comprising
a handle structure, a mounting bushing, and a spool structure;
wherein the mounting bushing attaches the spool structure to the handle structure;
wherein the layout line spooling device is configured for use with a drill;
wherein the layout line spooling device is configured for use with a cord;
wherein the rotation of the drill provides the motive force that winds the cord onto the spool structure for storage;
wherein the spool structure comprises a core shaft structure, a handle flange structure, and a distal flange structure;
wherein the handle flange structure attaches to the core shaft structure;
wherein the distal flange structure attaches to the core shaft structure;
wherein the core shaft structure attaches the spool structure to the mounting bushing such that the mounting bushing rotates the spool structure;
wherein the core shaft structure attaches to the mounting bushing such that a center of axis of the core shaft structure aligns with an axis of rotation of the mounting bushing;
wherein a lateral face of the core shaft structure forms the surface on which the cord is stored;
wherein the cord wraps around the lateral face of the core shaft structure for storage.
2. The layout line spooling device according to claim 1
wherein the layout line spooling device forms the working element of a tool;
wherein the layout line spooling device attaches to the drill to form the working element of the drill;
wherein the layout line spooling device forms a spool that takes up the cord for storage.
3. The layout line spooling device according to claim 2
wherein the drill forms a mechanical linkage with the spool structure;
wherein the drill generates a rotational force that is transferred to the spool structure through the mechanical linkage;
wherein the cord is a flexible structure.
4. The layout line spooling device according to claim 3
wherein the handle structure is a rigid structure;
wherein the handle structure forms a grip that is used to carry the layout line spooling device.
5. The layout line spooling device according to claim 4
wherein the mounting bushing is a rolling element bearing;
wherein the mounting bushing mounts on a congruent end of the handle structure;
wherein the mounting bushing attaches to the handle structure such that the axis of rotation of the mounting bushing aligns with the center axis of the handle structure;
wherein the mounting bushing forms a rotating structure;
wherein the mounting bushing secures the spool structure to the handle structure such that the spool structure rotates freely relative to the handle structure.
6. The layout line spooling device according to claim 5
wherein the spool structure is a spool;
wherein the spool structure forms the structure that stores the cord;
wherein the spool structure rotates relative to the handle structure;
wherein the spool structure rotates in a first direction to deploy the cord from the spool structure;
wherein the spool structure rotates in a second direction to retract the cord on to the spool structure;
wherein the second direction is opposite to the first direction.
7. The layout line spooling device according to claim 6
wherein the core shaft structure is a rigid structure;
wherein the core shaft structure is an extension structure;
wherein the core shaft structure forms the reach between the handle flange structure and the distal flange structure.
8. The layout line spooling device according to claim 7
wherein the handle flange structure is a rigid structure;
wherein the handle flange structure forms a stop that prevents the cord from slipping off the lateral face of the core shaft structure;
wherein the handle flange structure attaches to the congruent end of the core shaft structure that is proximal to the handle structure.
9. The layout line spooling device according to claim 8
wherein the distal flange structure;
wherein the distal flange structure is a rigid structure;
wherein the distal flange structure forms a stop that prevents the cord from slipping off the lateral face of the core shaft structure;
wherein the distal flange structure attaches to the congruent end of the core shaft structure that is proximal to the drill.
10. The layout line spooling device according to claim 9
wherein the handle flange structure attaches to the core shaft structure such that the center axis of the handle flange structure is perpendicular to the center axis of the core shaft structure;
wherein the handle flange structure attaches to the core shaft structure such that the center axis of the core shaft structure intersects with the center point of the center axis of the handle flange structure;
wherein the distal flange structure attaches to the core shaft structure such that the center axis of the distal flange structure is perpendicular to the center axis of the core shaft structure;
wherein the distal flange structure attaches to the core shaft structure such that the center axis of the core shaft structure intersects with the center point of the center axis of the distal flange structure.
11. The layout line spooling device according to claim 10
wherein the handle flange structure further comprises a mounting bushing mount;
wherein the mounting bushing mount is a mechanical structure;
wherein the mounting bushing mount mounts on the lateral face of the handle flange structure such that the center of the mounting bushing mount aligns with the center axis of the core shaft structure;
wherein the mounting bushing mount forms the structure of the spool structure that secures the spool structure to the mounting bushing.
12. The layout line spooling device according to claim 11
wherein the distal flange structure further comprises a drill bit;
wherein the drill bit is a bit;
wherein the drill bit forms the mechanical structure that attaches the spool structure to the drill;
wherein the drill bit attaches to the drill such that the rotation of the drill rotates the drill bit;
wherein the drill bit mounts on the lateral face of the distal flange structure such that the axis of rotation of the drill bit aligns with the center axis of the core shaft structure;
wherein the drill bit transfers the rotational force generated by the drill to the balance of the mounting bushing.