Telescopic shaft shield with quick connect assembly
阅读说明:本技术 具有快速连接组件的伸缩轴护罩 (Telescopic shaft shield with quick connect assembly ) 是由 哈威尔·约瑟·佩雷斯·拉米雷斯 托马斯·罗尔夫 格雷戈里·S·姆卡坎恩 于 2020-03-27 设计创作,主要内容包括:一种用于轴的护罩组件,包括具有第一端和第二端的第一管状部分以及具有第一端和第二端的第二管状部分。第一管状部分和第二管状部分每个都是中空的,以接纳轴。第一管状部分包括第一外径,第二管状部分包括第二外径,第一外径大于第二外径。第一管状部分和第二管状部分彼此伸缩地联接,其中第二管状部分至少部分地以可移动方式设置在第一管状部分内。(A shield assembly for a shaft includes a first tubular portion having a first end and a second tubular portion having a first end and a second end. The first tubular portion and the second tubular portion are each hollow to receive a shaft. The first tubular portion includes a first outer diameter and the second tubular portion includes a second outer diameter, the first outer diameter being greater than the second outer diameter. The first tubular portion and the second tubular portion are telescopically coupled to each other, wherein the second tubular portion is at least partially movably arranged within the first tubular portion.)
1. A shroud assembly for a shaft, comprising:
a first tubular portion including a first body having a first end and a second end, the first body defining a first hollow passage therethrough from the first end to the second end for receiving the shaft; and
a second tubular portion including a second body having a first end and a second end, the second body defining a second hollow passage therethrough from the first end to the second end for receiving the shaft;
Wherein the first tubular portion comprises a first outer diameter and the second tubular portion comprises a second outer diameter, the first outer diameter being greater than the second outer diameter;
further wherein the first tubular portion and the second tubular portion are telescopically coupled to each other, wherein the second tubular portion is at least partially movably disposed within the first tubular portion.
2. The shroud assembly of claim 1, wherein the first and second tubular portions are telescopically coupled to one another to form a contracted configuration and an extended configuration, the contracted configuration comprising a minimum length of the shroud assembly and the extended configuration comprising a maximum length of the shroud assembly.
3. The shroud assembly of claim 1, further comprising a shaft disposed within the first and second hollow passages, the shaft comprising a shaft length;
wherein the first and second tubular portions are adjustably and telescopically positioned relative to each other such that the length of the first and second tubular portions is substantially the same as the shaft length.
4. The shroud assembly of claim 1, wherein the first and second tubular portions are removably coupled to one another.
5. The shroud assembly of claim 1, wherein the first end of the first tubular portion includes a reduced diameter that is less than the second outer diameter.
6. The shroud assembly of claim 1, further comprising a shroud coupler for coupling to the first tubular portion, the shroud coupler including a narrow portion and a larger portion, the narrow portion including one or more tabs and the larger portion including one or more tabs;
wherein the first tubular portion includes one or more apertures formed therein for receiving the one or more tabs on the narrow portion of the shroud coupler in a quick-connect manner.
7. The shroud assembly of claim 6, further comprising a shroud coupler for coupling to the second tubular portion, the shroud coupler including a narrow portion and a larger portion, the narrow portion including one or more tabs and the larger portion including one or more tabs;
wherein the second tubular portion includes one or more apertures formed therein for receiving the one or more tabs on the narrow portion of the shroud coupler in a quick-connect manner.
8. A shaft shield assembly for a work machine having a frame, comprising:
a bracket configured to be coupled to the frame, the bracket including a shaft opening for receiving a shaft along a shaft axis, wherein the bracket further forms a plurality of slots that are all radially spaced from one another relative to the shaft axis;
a first shroud coupler comprising a plurality of tabs projecting therefrom and comprising a retention portion;
a second shroud coupler comprising a plurality of tabs projecting therefrom and comprising a retention portion;
wherein the plurality of slots comprises a first set of slots and a second set of slots;
wherein the first shroud coupler is coupled to the first set of slots in a quick-connect manner and the second shroud coupler is coupled to the second set of slots in a quick-connect manner.
9. The shaft shield assembly of claim 8, wherein each of the first and second sets of slots are formed in an alternating manner about an axis of the shaft.
10. The shaft shield assembly of claim 8, wherein:
The first shroud coupler defines a plurality of spaces between each pair of adjacent tabs of the plurality of tabs;
the second shroud coupler defines a plurality of spaces between each pair of adjacent tabs of the plurality of tabs;
further wherein each of the plurality of tabs of the first shroud coupler is located within one of the plurality of spaces formed in the second shroud coupler and each of the plurality of tabs of the second shroud coupler is located within one of the plurality of spaces formed in the first shroud coupler when the first and second shroud couplers are coupled to the bracket.
11. The shaft shield assembly of claim 10, wherein said first shield coupler and said second shield coupler comprise the same shape and design, said first shield coupler rotationally offset relative to said second shield coupler when said first shield coupler and said second shield coupler are both coupled to said bracket.
12. The shaft shield assembly of claim 8, wherein at least one of said first shield coupler and said second shield coupler comprises a first portion, a second portion, and a tapered portion integrally formed between said first portion and said second portion, wherein said first portion comprises a larger diameter than said second portion and said plurality of tabs are integrally formed in said first portion.
13. The shaft shield assembly of claim 12, wherein said first shield coupler and said second shield coupler comprise a plastic material formed by injection molding.
14. The shaft shield assembly of claim 8, further comprising:
a first tubular portion including a first end and a second end, the first tubular portion defining a first hollow passage therethrough from the first end to the second end for receiving the shaft; and
a second tubular portion including a first end and a second end, the second tubular portion defining a second hollow passage therethrough from the first end to the second end for receiving the shaft;
wherein the first tubular portion is coupled to the first shroud coupler and the second tubular portion is coupled to the second shroud coupler.
15. The shaft shield assembly of claim 14, wherein:
the first shroud coupler comprises one or more tabs and the first tubular portion comprises one or more apertures;
the second shroud coupler comprises one or more tabs and the second tubular portion comprises one or more apertures;
Further wherein the one or more apertures formed in the first tubular portion are configured to receive the one or more tabs of the first shroud coupler in a quick-connect connection and the one or more apertures formed in the second tubular portion are configured to receive the one or more tabs of the second shroud coupler in a quick-connect connection.
16. A method of mounting an axle to a machine having a frame and a power generation mechanism, comprising the steps of:
providing a first tubular portion, a second tubular portion, a first bracket, a second bracket, a first shroud coupler, and a second shroud coupler;
forming a tubular assembly by telescopically coupling a first tubular portion and a second tubular portion to each other;
inserting the shaft into the tubular assembly such that the shaft is at least partially surrounded by the first tubular portion and the second tubular portion;
coupling the first shroud coupler to the first bracket by a quick connect connection, wherein the first bracket is mounted to the frame;
coupling the second shroud coupler to the second bracket by a quick connect connection, wherein the second bracket is mounted to the frame spaced apart from the first bracket;
Coupling the tubular assembly to the first and second shield couplers by a quick-connect connection; and
mounting the shaft to the work machine.
17. The method of claim 16, wherein the step of coupling the tubular assembly comprises: adjusting a length of the tubular assembly by telescopically moving the first and second tubular portions relative to each other until the length of the tubular assembly is substantially the same as a distance defined between the first and second shroud couplers.
18. The method of claim 16, further comprising:
aligning each of a plurality of tabs on a first shroud cover with a corresponding one of a plurality of apertures formed in the first tubular portion;
moving the first tubular portion into contact with the first shield cap until each of the plurality of tabs on the first shield cap is located within a corresponding one of the plurality of apertures formed in the first tubular portion; and
coupling the first tubular portion to the first shroud cap.
19. The method of claim 16, further comprising:
Aligning each of a plurality of tabs extending from a first shroud cover with a corresponding one of a plurality of slots formed in the first bracket;
moving the first shield cover into contact with the first bracket until each of the plurality of tabs on the first shield cover is disposed within a corresponding one of the plurality of slots; and
coupling the first shroud cover to the first bracket while the plurality of tabs are retained within the plurality of slots.
20. The method of claim 19, further comprising:
providing a third shroud cover comprising a plurality of tabs extending from the third shroud cover;
aligning each of the plurality of tabs extending from the third shroud cover with a corresponding one of a plurality of slots formed in the first bracket;
positioning the third shroud cover in contact with the first bracket until each of the plurality of tabs on the third shroud cover is disposed within a corresponding one of the plurality of slots;
coupling the third shroud cover to the first bracket while the plurality of tabs are retained within the plurality of slots;
Wherein the plurality of tabs of the first shroud cap are retained within a first set of slots of the plurality of slots formed in the first bracket and the plurality of tabs of the third shroud cap are retained within a second set of slots of the plurality of slots;
wherein each of the plurality of tabs of the first shroud cover is positioned within a gap formed between two tabs of the plurality of tabs of the third shroud cover, each of the plurality of tabs of the third shroud cover is positioned within a gap formed between two tabs of the plurality of tabs of the first shroud cover.
Technical Field
The present disclosure relates to an axle, and more particularly, to an assembly for shielding an axle of a work machine during operation.
Background
Shafts are commonly used to transfer power or torque from an input to an output. The shaft is often rotatably driven at a substantial rotational speed. Accordingly, it is often desirable to include a cover or shield at least partially over the shaft to prevent debris and other contaminants from affecting the performance of the shaft. In addition, the cover or shield provides protection for those repairing the shaft or other components located near the shaft.
In the present disclosure, one or more embodiments are provided for providing improved shielding for one or more axles on a work machine.
Disclosure of Invention
In one embodiment of the present disclosure, a shroud assembly for a shaft includes: a first tubular portion including a first body having a first end and a second end, the body defining a first hollow passage therethrough from the first end to the second end for receiving a shaft; and a second tubular portion comprising a second body having a first end and a second end, the body defining a second hollow passage therethrough from the first end to the second end for receiving the shaft; wherein the first tubular portion comprises a first outer diameter and the second tubular portion comprises a second outer diameter, the first outer diameter being greater than the second outer diameter; further wherein the first tubular portion and the second tubular portion are telescopically coupled to each other, wherein the second tubular portion is at least partially movably arranged within the first tubular portion.
In one example of this embodiment, the first and second tubular portions are telescopically coupled to one another to form a collapsed configuration comprising a minimum length of the shield assembly and an extended configuration comprising a maximum length of the shield assembly. In a second example, a shaft is disposed within the first hollow channel and the second hollow channel, the shaft comprising a shaft length; wherein the first and second tubular portions are adjustably and telescopically positioned relative to each other such that the length of the first and second tubular portions is substantially the same as the length of the shaft. In a third example, the first tubular portion and the second tubular portion are removably coupled to each other.
In a fourth example, the first end of the first tubular portion includes a reduced diameter that is less than the second outer diameter. In a fifth example, a shield coupler is provided for coupling to a first tubular portion, the shield coupler comprising a narrow portion and a larger portion, the narrow portion comprising one or more tabs and the larger portion comprising one or more tabs; wherein the first tubular portion includes one or more apertures formed therein for receiving one or more tabs on the narrow portion of the shroud coupler in a quick-connect manner. In a further example, there is provided a shield coupler for coupling to a second tubular portion, the shield coupler comprising a narrow portion and a larger portion, the narrow portion comprising one or more tabs and the larger portion comprising one or more tabs; wherein the second tubular portion includes one or more apertures formed therein for receiving one or more tabs on the narrow portion of the shroud coupler in a quick-connect manner.
In another embodiment of the present disclosure, a shaft shield assembly for a work machine having a frame includes a bracket configured to be coupled to the frame, the bracket including a shaft opening for receiving a shaft along an axis of the shaft, wherein the bracket further forms a plurality of slots, each slot radially spaced from each other relative to the axis of the shaft; a first shroud coupler including a plurality of tabs projecting therefrom and including a retention portion; a second shroud coupler including a plurality of tabs projecting therefrom and including a retention portion; wherein the plurality of slots includes a first set of slots and a second set of slots; wherein the first shroud coupler is coupled to the first set of slots in a quick-connect manner and the second shroud coupler is coupled to the second set of slots in a quick-connect manner.
In one example of this embodiment, each of the first and second sets of slots are formed in an alternating manner about the axis of the shaft. In a second example, the first shroud coupler defines a plurality of spaces between each pair of adjacent tabs of the plurality of tabs; the second shroud coupler defines a plurality of spaces between each pair of adjacent tabs of the plurality of tabs; further wherein each of the plurality of tabs of the first shroud coupler is positioned within one of the plurality of spaces formed in the second shroud coupler and each of the plurality of tabs of the second shroud coupler is positioned within one of the plurality of spaces formed in the first shroud coupler when the first and second shroud couplers are coupled to the bracket.
In a third example, the first shroud coupler and the second shroud coupler comprise the same shape and design, the first shroud coupler rotationally offset relative to the second shroud coupler when both the first shroud coupler and the second shroud coupler are coupled to the bracket. In a fourth example, at least one of the first and second shroud couplers includes a first portion, a second portion, and a tapered portion integrally formed between the first and second portions, wherein the first portion includes a larger diameter than the second portion, and a plurality of tabs are integrally formed in the first portion. In a fifth example, the first and second shroud couplers comprise a plastic material formed by injection molding.
In another example of this embodiment, the first tubular portion includes a first end and a second end, the first tubular portion defining a first hollow passage therethrough from the first end to the second end for receiving the shaft; and a second tubular portion including a first end and a second end, the second tubular portion defining a second hollow passage therethrough from the first end to the second end for receiving the shaft; wherein the first tubular portion is coupled to the first shroud coupler and the second tubular portion is coupled to the second shroud coupler.
In yet another example, the first shroud coupler includes one or more tabs and the first tubular portion includes one or more apertures; the second shroud coupler includes one or more tabs and the second tubular portion includes one or more apertures; further wherein the one or more apertures formed in the first tubular portion are configured to receive the one or more tabs of the first shroud coupler in a quick-connect manner, and the one or more apertures formed in the second tubular portion are configured to receive the one or more tabs of the second shroud coupler in a quick-connect manner.
In another embodiment of the present disclosure, a method of mounting an axle to a machine having a frame and a power generation mechanism includes: providing a first tubular portion, a second tubular portion, a first bracket, a second bracket, a first shroud coupler, and a second shroud coupler; forming a tubular assembly by telescopically coupling a first tubular portion and a second tubular portion to each other; inserting a shaft into the tubular assembly such that the shaft is at least partially surrounded by the first tubular portion and the second tubular portion; coupling a first shroud coupler to a first bracket by a quick connect connection, wherein the first bracket is mounted to the frame; coupling a second shroud coupler to a second bracket by a quick connect connection, wherein the second bracket is mounted to the frame spaced apart from the first bracket; coupling the tubular assembly to the first and second shroud couplers by a quick connect connection; and mounting the shaft to the work machine.
In one example of this embodiment, the step of coupling the tubular assembly comprises: the length of the tubular assembly is adjusted by telescopically moving the first and second tubular portions relative to each other until their length is approximately the same as the distance defined between the first and second shield couplers. In a second example, the method may include aligning each of a plurality of tabs on the first shroud cover with a corresponding one of a plurality of apertures formed in the first tubular portion; moving the first tubular portion into contact with the first shield cover until each of the plurality of tabs on the first shield cover is located within the one of the plurality of corresponding apertures formed in the first tubular portion; and coupling the first tubular portion to the first shroud cap.
In another example, the method can include aligning each of a plurality of tabs extending from the first shroud cover with a corresponding one of a plurality of slots formed in the first bracket; moving the first shield cover into contact with the first bracket until each of the plurality of tabs on the first shield cover is disposed within a corresponding one of the plurality of slots; and once the plurality of tabs are retained within the plurality of slots, the first shroud cap is coupled to the first bracket.
In another example, the method may include: providing a third shroud cover comprising a plurality of tabs extending therefrom; aligning each of a plurality of tabs extending from the third shield cover with a corresponding one of a plurality of slots formed in the first bracket; positioning the third shroud cover in contact with the first bracket until each of the plurality of tabs on the third shroud cover is disposed within a corresponding one of the plurality of slots; once the plurality of tabs are retained within the plurality of slots, the third shroud cap is coupled to the first bracket; wherein the plurality of tabs of the first shroud cap are retained within a first set of a plurality of slots formed in the first bracket and the plurality of tabs of the third shroud cap are retained within a second set of a plurality of slots; wherein each of the plurality of tabs of the first shroud cap is positioned within a gap formed between two of the plurality of tabs of the third shroud and each of the plurality of tabs of the third shroud cap is positioned within a gap formed between two of the plurality of tabs of the first shroud.
Drawings
The above-mentioned aspects of the present disclosure and the manner of attaining them will become more apparent and the disclosure itself will be better understood by reference to the following description of embodiments of the disclosure taken in conjunction with the accompanying drawings, wherein:
FIG. 1 is a rear perspective view of a draper head including one or more transfer shafts;
FIG. 2 is a partial perspective view of a pair of transfer shafts including a telescoping shield;
FIG. 3 is a partial cross-sectional view of the transport shaft and shield of FIG. 2;
FIG. 4 is a partial perspective view of the transfer shaft and shield of FIG. 2;
FIG. 5 is a partially exploded perspective view of the shroud of FIG. 2;
FIG. 6 is an exploded perspective view of the shaft shield; and
fig. 7 is another exploded perspective view of the shaft shield of fig. 6.
Corresponding reference characters indicate corresponding parts throughout the several views.
Detailed Description
For the purposes of promoting an understanding of the principles of the disclosure, reference will now be made to the embodiments described herein and illustrated in the drawings, and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the disclosure is thereby intended, such alterations and further modifications in the illustrated devices and methods, and such further applications of the principles of the disclosure as illustrated therein being contemplated as would normally occur to one skilled in the art to which the disclosure relates.
Work machines, particularly in the agricultural, construction, and forestry industries (e.g., combine harvesters), include one or more axles for transferring power or torque throughout the machine to drive various components. For example, a combine may include a corn harvester header and a belted header that use multiple knives to cut crop and other materials. The plurality of knives may be reciprocally driven by a sickle drive assembly at each end of the belt header. However, the power to drive the sickle drive assembly may come from a main power unit (e.g., an engine) located near the combine or feeder compartment of the combine. The power is then transmitted to the sickle drive assembly through one or more drive shafts.
These transport shafts, or shafts as referred to herein, may be exposed to the ambient environment if not partially or fully covered. In some aspects, a conventional elongate cover may be provided to protect each shaft from the surrounding environment. For example, with a combine harvester, during operation, crop, dirt, dust, dirt, debris, and other contaminants may be agitated. These substances may become wedged between the bearings or other components that affect the function of the shaft. The cap is then positioned to reduce the amount of debris and other contaminants that may wedge or get stuck in the shaft, bearings, joints, etc.
Conventional shaft covers are rigid, elongated covers that are bolted or otherwise mechanically attached to the frame of the work machine by metal plates, brackets, or the like. The rigid cover may be formed of plastic, aluminum, metal, or other material. To repair or remove the shaft, the conventional cover must first be removed. However, conventional covers are difficult to remove and often require multiple people to remove them. Space limitations make it difficult to remove or install the fasteners, and removing the cover is also time consuming. Accordingly, there is a need for a faster and easier way to install or remove a shaft cover or shroud from a work machine. Furthermore, it is desirable to be able to install or remove the shield by only a single person. It is also desirable to be able to protect the shaft from debris and other contaminants that might otherwise wedge or get stuck in the shaft, bearings, joints, etc. by the shield.
To achieve the above object, in one embodiment, a pair of shield tubes telescopically coupled to each other may be provided. The telescoping shroud tubes may be collapsed during installation or removal to reduce the overall length of the shroud, and then extended or expanded to couple to the work machine. During operation, the telescoping tubes may substantially enclose the shaft to prevent dust, dirt, and other debris from affecting the rotational performance of the shaft, bearings, joints, and the like. Further, the telescopic shield tube can protect a person who inspects the working machine in the case where the shaft rotates at a high speed.
In another embodiment, the shroud tube may be coupled to one or more shroud couplers in a quick connect/quick disconnect manner. In this way, the shroud tube may be quickly coupled in an installed position or quickly removed in a disassembled position without the use of tools, bolts, or other fasteners. Thus, the shields for protecting the shaft and the manner of assembly/disassembly thereof may reduce the overall cost of components, the weight of parts, assembly/disassembly time, and service time, as compared to conventional shaft covers.
For purposes of this disclosure, the terms "quick connect," "quick disconnect," and "snap-fit" connection are used to describe a coupling between two separate components in a manner that does not require the use of tools or fasteners (e.g., bolts, screws, etc.). There are many different ways to connect two components together in this manner, and this disclosure describes some of these ways. However, the present disclosure is not intended to be limited to any particular manner in which two components may be connected in a "quick connect" or "snap fit". For example, a "quick connect" connection may be simply snapping the two components together. In a second example, a "quick connect" connection may be by screwing the two components together, again via threads, without the use of tools or fasteners. For purposes of this disclosure, a user may need to snap, twist, screw, latch, or perform any other similar type of action to achieve a "quick connect" connection.
For the purposes of this disclosure, the term "telescoping" refers to the manner in which two or more tubular portions move relative to each other. In one example, the tubular portions may slide relative to each other in a telescopic manner. Thus, the diameter of one tubular portion may be slightly larger than the diameter of the other tubular portion. The diameter of the tubular portions may be any diameter and the difference between the diameters of the tubular portions may be any difference that allows the tubular portions to move relative to each other in a telescopic manner.
Further, in one example of the present disclosure, the tubular portions may be coupled to each other only in a telescopic manner such that the tubular portions may be completely disconnected from each other. In yet another example, the tubular portions may be telescopically coupled to one another, but also such that the tubular portions cannot be completely disconnected from one another. For example, ridges, fasteners, wedge-shaped portions, or other devices may be used to prevent the tubular portions from completely disconnecting from each other.
In one example, there may be only two tubular portions. In another example, there may be three tubular portions. In yet another example, there may be four tubular portions. In yet another example, there may be a plurality of tubular portions in a telescopic relationship with each other. In other words, the present disclosure is not limited to the number of tubular portions that may be telescopically coupled to each other.
Referring to fig. 1 of the present disclosure, a belt header 100 is shown. The belt conveyor 100 may be coupled to a feeder compartment (not shown) of a combine (not shown) or other work machine. Although a belt header is shown, it should be understood that the present disclosure is not limited to a belt header. When coupled to the feeder chamber of the combine, the belt header 100 may travel in a forward direction of travel indicated by arrow 110. The belt header 100 may also travel in other directions than the direction of travel 110.
The belt header 100 may include a front 102, a rear 104, a first side 106, and a second side 108. The belt header 100 may include a chassis or
In the embodiment of fig. 1, first drive assembly 132 and second drive assembly 142 may be operably driven by a main drive assembly (not shown). The main drive assembly may be an engine that powers a work machine (e.g., a combine), or the main drive assembly may be separate from the engine. The main drive assembly may be a main gearbox that generates power. Power may be split as it is transmitted laterally outward to first drive assembly 132 and second drive assembly 142. For transmitting power, a plurality of transmission shafts may be provided. As shown, the first shaft assembly 124 may be operably coupled to a primary drive assembly to transfer power to the second shaft assembly 126. The second shaft assembly 126 may further transmit power laterally outward to a third shaft assembly 128, which in turn transmits power to a fourth shaft assembly 130. The fourth shaft assembly 130 may be the laterally outermost shaft assembly such that its output is coupled to the first drive assembly 132. Likewise, the fifth shaft assembly 136 may be operatively coupled to the main drive assembly to transmit power to the sixth shaft assembly 138. Sixth shaft assembly 138 may further transmit power laterally outward to seventh shaft assembly 140. The seventh shaft assembly 140 may be the laterally outermost shaft assembly on the second side 108 of the belt header 100 such that its output is coupled to the second drive assembly 142.
Referring to FIG. 2, a shaft and shroud assembly is shown. The assembly may be part of the belt header 100 of fig. 1, but is not limited thereto and may include an
The assembly may further include a first shaft assembly 206 disposed between the
As shown in fig. 3, an intermediate shaft coupler or
At an opposite end of the
In fig. 2, the first shaft assembly 206 may include a first shroud assembly 212 formed from a first
The first shroud assembly 212 may be coupled to a
As shown in fig. 3, the
The first and second shaft assemblies 206, 208 may also include bearings, washers, etc. to support rotation of the
In fig. 2, the second shaft assembly 208 may include a second shroud assembly 214 formed from a first
Second shroud assembly 214 may also be coupled to
Referring to fig. 4 and 5, the first shaft assembly 206 and the first shroud assembly 212 will be described in more detail. However, it should be understood that the upcoming description of these components may apply to other components, including but not limited to the second shaft assembly 208 and the second shroud assembly 214. As shown, the first and second
In fig. 4, for example,
The
The
Referring to fig. 5, there may be the same type of snap-fit or snap-fit connection between the
The first and
The shroud coupler may include a tapered or funnel shape as shown in fig. 5. For example, the
In the same manner, the
During assembly, the
Similarly, the
Once the
The
The shroud assemblies, and more particularly the tubular portions that make up each shroud assembly, may be made of a plastic material, such as, but not limited to, Acrylonitrile Butadiene Styrene (ABS). In this example, the tubular portion may be made by an extrusion process. Alternatively, the tubular portion may be formed of aluminum or other metal. The tubular portion may be hollow to allow the shaft to pass therethrough. The diameter of each tubular portion may be designed to accommodate a shaft of a certain diameter. Also, as shown in FIG. 5, one of the tubular portions may have a smaller diameter D1And the other of the tubular portions may have a larger diameter D2. In the presence of a third tubular portion forming the shield assembly, the third tubular portion has a diameter different from the diameter of at least one of the other two tubular portions.
In one embodiment, the first and second tubular portions may be configured to be hollow from one end to the opposite end. In this way, the smaller diameter tubular portion can be slid in from one end and out from the opposite end, if there is no means to prevent this. In another embodiment, the larger diameter tubular portion may have one end thereof with a tapered diameter, wherein the diameter tapers towards the end thereof. In this embodiment, the diameter of the smaller tubular portion may be greater than the tapered diameter of the larger tubular portion to prevent installation or removal of the smaller tubular portion from the end. A flange or other mechanism may be used to prevent the smaller tubular portion from being installed or removed from one end of the larger tubular portion. In such a configuration, the tubular portions may be coupled at only a single end of the larger tubular portion.
The length of one tubular portion may be different from the other tubular portion. Alternatively, each tubular portion may have the same length. Moreover, the inner diameter of each tubular portion is at least large enough to pass a shaft therethrough.
In another configuration, the shroud assembly may include at least three tubular portions. In one example of this configuration, each of the at least three tubular portions has a different diameter. In different examples, two of the tubular portions may comprise the same diameter and a third of the at least three tubular portions may have a different diameter. In yet another configuration, there may be four or more tubular portions. Each of the four or more tubular portions may have a different diameter than the other portions, or alternatively at least one of the tubular portions may be different from at least three other tubular portions.
Although not shown, it is also possible that the tubular portions may include splines that mate with one another when the tubular portions are telescopically coupled to one another. Other known arrangements for coupling two shafts to each other are also possible.
Turning now to FIG. 6, another embodiment of the present disclosure is provided that relates to a shroud for a shaft that transmits power. In particular, a shaft and shroud assembly 600 is shown. Assembly 600 may be incorporated with a work machine as described above. Alternatively, it may be integrated with another body comprising a frame or
The assembly 600 of fig. 6 may also include a
The first portion 626 may have a diameter that is smaller than a diameter of the
The
The
During assembly, the
As shown in fig. 6, each tab may include a retention portion formed as a latch, clip, lip, or the like. Each tab and its retaining portion may be flexible such that it can bend relative to the second portion 630 like a diving board, and each tab in turn has sufficient rigidity to remain engaged with the slot in the
The
The
The
This is perhaps best shown with respect to the
As a result, when the first and second shroud couplers are coupled to the
The plurality of tabs of the second shroud coupler may include retention portions similar to those shown in fig. 7.
Although the features for coupling to the bracket are described as tabs, the features may also be latches or clips that can be coupled as a quick-connect or snap-fit connection. Also, the plurality of tabs or buttons described in the present disclosure may be flexibly coupled to the respective shield coupler such that when the narrow portion of the coupler is inserted into the tubular portion, the plurality of tabs or buttons may be inserted or pushed radially inward until each tab or button is biased into a corresponding aperture.
In fig. 6, a shaft (not shown) may be inserted into the
Although illustrative embodiments incorporating the principles of the present disclosure are described herein, the present disclosure is not limited to these embodiments. On the contrary, this application is intended to cover any variations, uses, or adaptations of the disclosure using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this disclosure pertains.
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