The present disclosure is directed generally to the field of tools. The present disclosure relates specifically to a faucet wrench.
One embodiment of the invention relates to a faucet wrench. The faucet wrench includes an elongate body with a first end, a second end opposing the first end, and a slot extending between the first end and the second end along a longitudinal axis. The faucet wrench further includes a first insert that is removably couplable to the elongate body and positioned at the first end of the body. The first insert includes a first component and a second component. The first component includes a first inner jaw surface that provides a first wrench size and a second inner jaw surface that provides a second wrench size. The second component is stacked relative to the first component along the longitudinal axis. The second component includes a third inner jaw surface that provides a third wrench size and a fourth inner jaw surface that provides a fourth wrench size.
Another embodiment of the invention relates to a faucet wrench. The faucet wrench includes a body with a first end, a second end opposing the first end, and a middle portion positioned between the first end and the second end. The body further includes bridging coupled to an interior surface of the middle portion and a passageway extending between the first end and the second end defining a longitudinal axis. The faucet wrench further includes a first insert couplable to the first end of the body. The first insert includes a first component and a second component. The first component includes a first inner jaw surface with a first dimension to engage a workpiece having a first size and a second inner jaw surface with a second dimension to engage a workpiece having a second size. The second component is spaced relative to the first component along the longitudinal axis. The second component includes a third inner jaw surface with a third dimension to engage a workpiece having a third size and a fourth inner jaw surface with a fourth dimension to engage a workpiece having a fourth size. The bridging includes a height such that the middle portion of the body receives a portion of a supply line when the faucet wrench is in use.
Another embodiment of the invention relates to a faucet wrench. The faucet wrench includes an elongate body with a first end, a second end opposing the first end, and a slot extending between the first end and the second end along a longitudinal axis. The faucet wrench further includes a first insert that is removably couplable along an interior surface of the elongate body and positioned at the first end of the elongate body. The first insert includes a first component and a second component. The first component includes a first inner jaw surface that provides a first wrench size and a second inner jaw surface that provides a second wrench size. The second component is stacked relative to the first component along the longitudinal axis. The second component includes a third inner jaw surface that provides a third wrench size and a fourth inner jaw surface that provides a fourth wrench size. A channel is defined in the interior surface of the elongate body and extends in a generally parallel direction to the longitudinal axis. When the first insert is coupled to the elongate body, a portion of the first insert is received within the channel to secure the insert to the elongate body.
Various embodiments of the invention relate to a tool, such as a faucet wrench, including a variety of features designed to engage various components, parts, workpieces, etc. that are typically needed during faucet work, such as faucet installation.
According to a first embodiment, the faucet wrench includes an elongate body having a first longitudinal end and a second longitudinal end opposite the first longitudinal end. At the first longitudinal end of the body, a first insert is coupled to and positioned at least in part within the body. The first insert is generally cylindrical and includes a first component and a second component. The first component and the second component are stacked with respect to one another along a length of the body. The first component includes a first inner jaw surface that provides a first wrench size and a second inner jaw surface that provides a second wrench size. The second component includes a third inner jaw surface that provides a third wrench size and a fourth inner jaw surface that provides a fourth wrench size. The first component is interchangeable with the second component.
According to another embodiment, the faucet wrench includes an elongate body having a first longitudinal end and a second longitudinal end opposite the first longitudinal end. A first insert is coupled to the body at the first longitudinal end of the body. The first insert includes a wedge that pivots between a first position and a second position. The wedge pivots ninety degrees between the first position and the second position. The wedge includes a plurality of stepped inner jaw surfaces, specifically, a first inner jaw surface and second inner jaw surface. The first inner jaw surface provides a first wrench size and the second inner jaw surface provides a second wrench size.
In specific embodiments, positioning the wedge in the first position allows the faucet wrench to operate in a vertical orientation to actuate the engaged workpiece, and positioning the wedge in the second position allows the faucet wrench to operate in a horizontal orientation to actuate the engaged workpiece.
Additional features and advantages will be set forth in the detailed description which follows, and, in part, will be readily apparent to those skilled in the art from the description or recognized by practicing the embodiments as described in the written description included, as well as the appended drawings. It is to be understood that both the foregoing general description and the following detailed description are exemplary.
The accompanying drawings are included to provide further understanding and are incorporated in and constitute a part of this specification. The drawings illustrate one or more embodiments and, together with the description, serve to explain principles and operation of the various embodiments.
This application will become more fully understood from the following detailed description, taken in conjunction with the accompanying figures, wherein like reference numerals refer to like elements in which:
Referring generally to the figures, various embodiments of a faucet wrench or basin wrench are provided. In specific embodiments, the faucet wrench provides for a variety of features, engagement surfaces, and/or inserts to facilitate use and engagement with common workpieces as needed during faucet work, such as faucet installation. In various embodiments, the faucet wrench includes a body with an outer surface design to improve gripping.
In specific embodiments, the faucet wrench includes a first insert that can be reoriented such that the same insert can engage workpieces having a variety of different shapes and sizes. In certain specific embodiments, the first insert includes a plurality of inner jaw surfaces that are sized to engage and actuate workpieces of different sizes. In more specific embodiments, the first insert includes multiple stackable components that can be interchanged and/or reoriented by a user to allow the user to select from a variety of different inner jaw surfaces. In other specific embodiments, one or more inner jaw surfaces are formed on a pivotable wedge. The pivoting function of the wedge allows the faucet wrench to be utilized in multiple orientations, such as vertically when the wedge is pivoted inward and horizontally when the wedge is pivoted outward. The vertical orientation allows the faucet wrench to operate in narrow spaces, while the horizontal orientation allows for higher applications of torque to the workpiece engaged by the faucet wrench.
In various embodiments of the faucet wrench handle and inserts discussed herein, provide for a variety of characteristics, including compactness (i.e., tool diameter, length, wall thickness, etc.), multiple functions (i.e., interchangeability, engagement with various workpiece sizes and/or shapes), and strength (i.e., ability to withstand force and/or torque during use). Various aspects of the faucet wrench and handle design are selected to ensure operation of the faucet wrench creates a satisfactory amount of force, torque, and/or workpiece engagement. In such faucet wrenches, the force, torque, and/or workpiece engagement are a function of a variety of parameters that relate to the force provided such as tool length, tool diameter, wall thickness of the handle, material of handle, material of insert, etc.
In various specific embodiments, the handle of the faucet wrench is configured to receive a portion of a supply line when faucet wrench is in use. As will be generally understood, interior bridging of the handle provides additional structural support to the handle and when the interior bridging is oriented vertically (i.e., along longitudinal axis of the tool) a greater portion of a slot or passageway through the handle can be utilized for receiving a portion of the supply line, whereas orienting the bridging horizontally (i.e., perpendicular to longitudinal axis) provides increased structural support in the lateral direction and provides a platform to support and store nuts removed while working on a given project. In various specific embodiments, interior bridging of the handle includes a vertical portion extending along the longitudinal axis and a horizontal portion extending in a generally perpendicular orientation to the vertical portion. In such specific embodiments, the bridging includes a dimension or height such that middle portion of the handle receives a portion of a supply line when the faucet wrench is in use. Applicant believes the bridging discussed herein allows for the handle to receive a portion of the supply line, while maintaining the compactness, strength and/or manufacturability of the faucet wrench handle.
Faucet wrench 100 further includes a first insert 108 and a second insert 110 positioned at opposing longitudinal ends of body 102. First insert 108 is configured to engage workpieces of various shapes and sizes, such as hex nut 112, shown in
Referring to
In specific embodiments, first insert 108 includes multiple stepped inner jaw surfaces, each for engaging a wide variety of differently sized workpieces, specifically differently sized nuts. As shown in
As shown in
In specific embodiments, a plurality of arms 134 protrude from the exterior of first insert 108. Each arm 134 is configured to align with a corresponding channel 136 formed in the interior of body 102. In specific embodiments, channels 136 can also engage two-tab or four-tab plastic basin nuts. As shown in
To assemble the first end of faucet wrench 100 such that the first inner jaw surface 122 is accessible for use, as shown in
To assemble the first end of faucet wrench 100 such that the second inner jaw surface 124 is accessible for use, first component 130 may be removed, rotated 180 degrees and reinserted as described above, such that the second inner jaw surface 124 is positioned furthest from the interior of body 102 of all the inner jaw surfaces. Similarly, to assemble faucet wrench 100 such that either the third inner jaw surface 126 or fourth inner jaw surface 128 is accessible for use, the first component 130 and second component 132 may both be removed, interchanged, and reinserted with the desired inner jaw surface positioned furthest from the interior of body 102, as described above. Alternatively, first insert 108 may comprise only one of the first component 130 and/or second component 132. Even without a second component positioned within body 102, a single component may be securely mated to body 102 in the outermost position by the means described above.
As shown in
Referring to
Referring to
Referring to
In specific embodiments, interior bridging 206 is coupled to a mid-section of the body 202. The interior bridging provides additional structural support to the body 202.
Faucet wrench 200 further includes a first insert 208 and a second insert 210 positioned at opposing longitudinal ends of body 202. First insert 208 and second insert 210 are each configured to engage workpieces of various shapes and sizes. The second end of body 202 and second insert 210 coupled thereto are substantially the same as the corresponding second end of body 102 and second insert 110.
As shown in
In specific embodiments, wedge 212 includes multiple stepped inner jaw surfaces, each for engaging a wide variety of differently sized workpieces, specifically differently sized nuts. More specifically, wedge 212 includes a first inner jaw surface 222 that provides a first wrench size, and a second inner jaw surface 224 that provides a second wrench size. In specific embodiments, the first wrench size is 7/16″ and the second wrench size is 15/16.″ When wedge 212 is in the first position, the outermost inner jaw surface is the surface used to actuate a selected workpiece. For example, as shown in
Referring to
As shown in
Referring to
First insert 308 is rectangular in shape. In specific embodiments, first insert 308 can be removed from, reoriented, and replaced within body 302 to provide access to different work surfaces. Two such orientations of first insert 308 are shown in
Referring to
The first insert 408 has a narrow cylindrical profile, providing for a slim and narrow profile of body 402. First insert 408 is reversible to offer accessibility to two different work surfaces at opposing longitudinal ends, for example, a ⅝″ hex nut socket and ⅝″ hex nut wrench at a first end 413 and an attachment for engaging a 4-tab basket strainer at a second end 415. First insert 408 further defines a hole 417 for receiving a screwdriver or similarly shaped tool to provide additional leverage to faucet wrench 400.
Slot 504 extends between first end 514 and second end 515 along a longitudinal axis 512 of wrench 500. An exterior surface of body 502 includes a pair of opposing, generally planar or flat surfaces 507 positioned on opposite sides of interior bridging 506. The opposing generally planar surfaces 507 are configured to be engaged by a wrench such as a standard wrench to provide torque to rotate a workpiece engaged by faucet wrench 500.
A first insert 508 is removably couplable to first end 514 of body 502. A second insert 510 is removably couplable at opposing longitudinal end or second end 515 of body 502. First insert 508 is generally cylindrical and includes various features to facilitate insert retention, as will be described in greater detail below. The generally cylindrical shape of first insert 508 allows body 502 to likewise maintain a generally cylindrical shape, which slims the profile of body 502 and allows body 502 to axially rotate more efficiently in narrow or tight spaces. In other words, first insert 508 includes a curved outer surface 540 (see e.g.,
In specific embodiments, slot 504 is configured to receive a portion of a supply line when faucet wrench 500 is in use. Interior bridging 506 is coupled to the middle portion 554 of the body 502. Bridging 506 provides additional structural support to the body 502. As previously discussed, when the interior bridging is oriented vertically (i.e., along longitudinal axis 512) a greater portion of slot 504 can be utilized for receiving a portion of the supply line, whereas orienting the bridging horizontally (i.e., perpendicular to longitudinal axis 512) provides increased structural support in the lateral direction and provides a platform to support and store nuts removed while working on a given project. In a specific embodiment, interior bridging 506 includes a vertical portion extending along the longitudinal axis 512 and a horizontal portion extending in a generally perpendicular (i.e., 90 degrees plus or minus 10 degrees) orientation to the vertical portion. In a specific embodiment, the bridging includes a dimension or height (extending inward from inner surface of body 502) such that middle portion 554 of body 502 receives a portion of a supply line when the wrench 500 is in use.
In various specific embodiments, body 502 has the same dimensions as body 102 (i.e., length, maximum diameter, tool bulk diagonal, maximum effective diameter, open space diameter etc.). In various specific embodiments, body 502 has different dimensions than body 102 (i.e., length, maximum diameter, tool bulk diagonal, maximum effective diameter, open space diameter etc).
Referring to
Referring to
An inner surface 558 of body 502 at first end 514 further includes a channel 536. Channel 536 extends along the longitudinal axis 512 and connects to longitudinal notch 535. In other words, channel 536 extend in a generally parallel (i.e., plus or minus 10 degrees) direction to longitudinal axis 512. In a specific embodiment, each longitudinal notch 535 is connected to a channel 536. When first insert 508 is coupled to body 502, a portion of first insert 508 is received within channel 536 to secure first insert 508 to body 502. In a specific embodiment, when first insert 508 is coupled to body 502, aligning arms 534 engage with channel 536 of body 502 to secure first insert 508 within the body 502.
Specifically, when the first insert 508 is coupled to body 502 at least a portion of first component 530 and second component 532 (see e.g.,
Second end 515 of body 502 includes notches, shown as longitudinal notches 585 that extend toward first end 514. Second insert 510 includes arms 583 (see e.g.,
Body 502 further includes an inner surface 564 at second end 515. A dimension, shown as a diameter or width W1 is defined between opposing sides of inner surface 564. At second end 515, body 502 includes a wall thickness, T1. T1 is defined between an outer surface 562 at second end 515 and inner surface 564.
Middle portion 554 of body 502 includes an inner surface 560. A dimension, shown as a diameter or width W2 is defined between opposing sides of inner surface 560. At middle portion 554, body 502 includes a wall thickness, T2. T2 is defined between the outer planar surface 507 at middle portion 554 and inner surface 560.
Referring to
First insert 508 includes a first inner jaw surface 522 that provides a first wrench size, a second inner jaw surface 524 that provides a second wrench size, a third inner jaw surface 526 that provides a third wrench size, and a fourth inner jaw surface 528 that provides a fourth wrench size. In other words, first inner jaw surface 522 has a first dimension or jaw opening size to engage a workpiece having a first size, second inner jaw surface 524 has a second dimension to engage a workpiece having a second size, third inner jaw surface 526 has a third dimension to engage a workpiece having a third size and fourth inner jaw surface 528 has a fourth dimension to engage a workpiece having a fourth size. In a specific embodiment, the first wrench size is 15/16,″ the second wrench size is ⅞,″ the third wrench size is ⅝,″ and the fourth wrench size is ¾.″ In specific embodiments, each of the first component 530 and second component 532 include exterior indicators or markings that indicate the size of the corresponding surface.
When wrench 500 is assembled such that second component 532 is positioned between first component 530 and second end 515 of body 502 and first component 530 is in a first orientation, the first inner jaw surface 522 protrudes beyond the first end 514 of body 502 such that the first inner jaw surface is engageable with a workpiece having a first size. When a user reverses first component 530 into a second orientation (i.e., flips first component 530's position), second inner jaw surface 524 protrudes beyond first end 514 of body 502 such that second inner jaw surface 524 is engageable with a workpiece having a second size.
When use of the third or fourth sized wrench is desired, a user can interchange second component 532 with first component 530. In other words, second component 532 can become the outermost portion of first insert 508. When the first component 530 is interchanged with second component 532, first component 530 is positioned between the second component 532 and second end 515 of body 502. In the interchanged position, either the third inner jaw surface 526 or fourth inner jaw surface 528 protrudes beyond the first end 514 of body 502 such that the third inner jaw surface 526 or fourth inner jaw surface 528 is engageable with a workpiece having a third size or the workpiece having the fourth size.
It should be understood that the figures illustrate the exemplary embodiments in detail, and it should be understood that the present application is not limited to the details or methodology set forth in the description or illustrated in the figures. It should also be understood that the terminology is for description purposes only and should not be regarded as limiting.
Further modifications and alternative embodiments of various aspects of the disclosure will be apparent to those skilled in the art in view of this description. Accordingly, this description is to be construed as illustrative only. The construction and arrangements, shown in the various exemplary embodiments, are illustrative only. Although only a few embodiments have been described in detail in this disclosure, many modifications are possible (e.g., variations in sizes, dimensions, structures, shapes and proportions of the various elements, values of parameters, mounting arrangements, use of materials, colors, orientations, etc.) without materially departing from the novel teachings and advantages of the subject matter described herein. Some elements shown as integrally formed may be constructed of multiple parts or elements, the position of elements may be reversed or otherwise varied, and the nature or number of discrete elements or positions may be altered or varied. The order or sequence of any process, logical algorithm, or method steps may be varied or re-sequenced according to alternative embodiments. Other substitutions, modifications, changes and omissions may also be made in the design, operating conditions and arrangement of the various exemplary embodiments without departing from the scope of the present disclosure.
Unless otherwise expressly stated, it is in no way intended that any method set forth herein be construed as requiring that its steps be performed in a specific order. Accordingly, where a method claim does not actually recite an order to be followed by its steps or it is not otherwise specifically stated in the claims or descriptions that the steps are to be limited to a specific order, it is in no way intended that any particular order be inferred. In addition, as used herein, the article “a” is intended to include one or more component or element, and is not intended to be construed as meaning only one. As used herein, “rigidly coupled” refers to two components being coupled in a manner such that the components move together in a fixed positional relationship when acted upon by a force.
Various embodiments of the disclosure relate to any combination of any of the features, and any such combination of features may be claimed in this or future applications. Any of the features, elements or components of any of the exemplary embodiments discussed above may be utilized alone or in combination with any of the features, elements or components of any of the other embodiments discussed above.
For purposes of this disclosure, the term “coupled” means the joining of two components directly or indirectly to one another. Such joining may be stationary in nature or movable in nature. Such joining may be achieved with the two members and any additional intermediate members being integrally formed as a single unitary body with one another or with the two members or the two members and any additional member being attached to one another. Such joining may be permanent in nature or alternatively may be removable or releasable in nature.
While the current application recites particular combinations of features in the claims appended hereto, various embodiments of the invention relate to any combination of any of the features described herein whether or not such combination is currently claimed, and any such combination of features may be claimed in this or future applications. Any of the features, elements, or components of any of the exemplary embodiments discussed above may be used alone or in combination with any of the features, elements, or components of any of the other embodiments discussed above.
In various exemplary embodiments, the relative dimensions, including angles, lengths and radii, as shown in the Figures are to scale. Actual measurements of the Figures will disclose relative dimensions, angles and proportions of the various exemplary embodiments. Various exemplary embodiments extend to various ranges around the absolute and relative dimensions, angles and proportions that may be determined from the Figures. Various exemplary embodiments include any combination of one or more relative dimensions or angles that may be determined from the Figures. Further, actual dimensions not expressly set out in this description can be determined by using the ratios of dimensions measured in the Figures in combination with the express dimensions set out in this description.
This application is a continuation of International Application No. PCT/US2023/060655, filed Jan. 13, 2023, which claims the benefit of and priority to U.S. Provisional Application No. 63/327,613, filed Apr. 5, 2022, to U.S. Provisional Application No. 63/312,296, filed Feb. 21, 2022, and to U.S. Provisional Application No. 63/299,998, filed Jan. 16, 2022, which are incorporated herein by reference in their entireties.
Number | Date | Country | |
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63299998 | Jan 2022 | US | |
63312296 | Feb 2022 | US | |
63327613 | Apr 2022 | US |
Number | Date | Country | |
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Parent | PCT/US23/60655 | Jan 2023 | US |
Child | 18160030 | US |