The present invention relates generally to the field of hair clippers or a hair cutting apparatus. The present invention relates specifically to an adjustable tensioning assembly configured to adjust a blade gap between a reciprocating blade and a stationary blade of a blade assembly.
One embodiment of the invention relates to a blade hinge assembly, for example on a hair trimming device or cutter. The blade assembly includes an inner blade, an outer blade, a mounting bracket and a metallic stamping. The inner blade and outer blade include blade teeth. The outer blade teeth are oriented parallel to the inner blade teeth. The teeth are configured to facilitate cutting when the inner blade oscillates over the outer blade. The mounting bracket has plastic tabs and is coupled to an inner surface of the inner blade. The mounting bracket presses the inner blade against the outer blade to capture the inner blade against the outer blade. The metallic stamping is coupled to the inner surface of the inner blade and extends through the mounting bracket adjacent to the plastic tabs. The metallic stamping has snap tabs that are adjacent to and couple to the plastic tabs of the mounting bracket to generate an adjustable tensile force that pulls the mounting bracket away from the inner blade.
Another embodiment of the invention relates to a blade attachment assembly with an inner blade, an outer blade, a mounting bracket and a hinge. The inner and outer blades have a plurality of blade teeth. The mounting bracket has plastic tabs and is joined to an inner surface of the inner blade to press the inner blade against the outer blade and capture the inner blade as the blade oscillates. The hinge connects an inner surface of the inner blade to an inner surface of the mounting bracket (e.g., passes through the mounting bracket). The hinge has a spring constant between 0.1 and 4 lbf/in (e.g., a spring rate between 0.25 and 10 in/lbf) to change the tensile force of the mounting bracket and adjust the inner blade relative to the outer blade.
Another embodiment of the invention relates to an adjustable blade attachment assembly with an inner blade, an outer blade, a mounting bracket and a metallic stamped hinge. The inner and outer blades have blade teeth that are oriented parallel to facilitate cutting when the inner blade oscillates over the outer blade. The mounting bracket has plastic snap tabs and is coupled to an inner surface of the inner blade to press the inner blade towards the outer blade and capture the inner blade. The hinge joins an inner surface of the inner blade to an inner surface of the mounting bracket and has a spring constant between 0.1 and 4 lbf/in. The hinge generates an adjustable tensile force that pulls inwards on the mounting bracket to generate a tensile force between the inner blade and the outer blade. The force applied to the snap tabs of the hinge changes a tensile force of the mounting bracket and adjusts a position of the inner blade relative to the outer blade.
Alternative exemplary embodiments relate to other features and combinations of features as may be generally recited in the claims.
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 hair cutters or clippers are shown. The cutters include a blade assembly with an upper or inner blade that oscillates over a lower or outer blade to cut or trim hair. The alignment of the inner blade relative to the outer blade creates competing objectives. The inner blade and outer blade need to be close enough to each other to cut hair when the inner blade teeth oscillate over the outer blade teeth. However, pressing the inner blade against the outer blade creates friction between the blades as they oscillate relative to one another. The inner and outer blade should be pulled together so that the oscillation of the inner and outer teeth do not interfere with the cutting ends of the blades. The blades should be pulled apart to reduce friction. Proper tensioning between the blades reduces friction on the system, wear and tear on the blades, and enhances the operational life of the motor. Balancing the tensile force that separates the inner blade from the outer blade with an attractive force that captures the inner blade relative to the outer blade both enhances the operation of the blade and ensures the teeth cooperate to cut hair.
For ease of discussion and understanding, the following detailed description will refer to and illustrate the blade assembly that incorporates magnetic tensioning and/or blade set adjustment in association with a hair cutting apparatus or “cutter.” It should be appreciated that a “cutter” is provided for purposes of illustration, and the blade assembly disclosed herein can be used in association with any hair cutting, hair trimming, or hair grooming device. Accordingly, the term “cutter” is inclusive, and refers to any hair grooming device including, but not limited to, a hair trimmer, a hair clipper, or any other hair cutting or hair grooming device. The cutter device can be suitable for a human, animal, or any other living or inanimate object having hair.
Drive assembly 106 is positioned within cavity 118 and couples blade assembly 104 to motor 120. As illustrated, motor 120 is a rotary DC electric motor. In other embodiments, motor 120 is a pivot motor or a magnetic motor that generates oscillating or reciprocating movement for blade assembly 104 (e.g., drive assembly 106 couples to inner blade 112 to oscillate inner blade 112 over a stationary outer blade 114). In other embodiments, motor 120 is an AC electric motor or any other suitable motor for generating oscillating or reciprocating movement for a blade assembly 104, e.g., inner blade 112 and/or outer blade 114. As illustrated, motor 120 is configured to operate on battery power (e.g., cordless), but may be configured to operate with electricity from any suitable electric source, e.g., a corded cutter 100 plugged into an outlet.
Motor 120 couples to a rotating motor output shaft 122 that rotates about a rotational axis. An eccentric drive 124 is coupled to motor output shaft 122 and rotates eccentrically about the rotational axis. Eccentric drive 124 includes an eccentric shaft 126 that is offset from motor output shaft 122. In other words, eccentric shaft 126 is offset from the axis of rotation of motor 120, such that eccentric shaft 126 rotates non-concentrically around the axis of rotation to create an oscillatory rotational motion. Eccentric shaft 126 is configured to engage a yoke 128 (
As illustrated in
In some embodiments, a lever 144 is coupled to blade assembly 104 with a screw or fastener 146. Lever 144 facilitates movement of inner blade 112 over outer blade 114 in a direction perpendicular to the blade teeth 130 and/or 132. This adjustment of the inner blade teeth 130 relative to the outer blade teeth 132 adjusts the length of hair cut by the inner and outer blades 112 and 114.
This adjustment proportionally changes the attractive or tensile for between inner blade 112 and outer blade 114. Thus, changing biasing spring 136 (e.g., pushing snap tabs 142) draws the mounting bracket 134 closer to inner blade 112 creating an attractive force between the blades 112 and 114 (e.g., reducing the tensile force). Pulling snap tabs 142 draws the mounting bracket 134 away from inner blade 112 creating a tensile force between the blades 112 and 114 (e.g., separating inner bald 112 from outer blade 114). In this way, biasing spring 136 provides adjustment to the force between the inner and outer blades 112 and 114. In some embodiments, a fastener 146 couples to inner blade teeth 130 that captures mounting bracket 134 relative to the blade assembly 104.
For example, snap tabs 142 of biasing spring 136 extend through mounting bracket 134. A base 154 (e.g., outer surface) of biasing spring 136 is coupled to inner blade 112. Adjustments or changes to an offset 156 (
In some embodiments, biasing spring 136 is coupled to inner blade 112 and/or inner blade teeth 130. For example, biasing spring 136 may be brazed, spot welded, and/or fastened (e.g., with screws or fasteners 146) to inner blade 112 and/or inner blade teeth 130. This enables biasing spring 136 to couple to the retaining bracket directly in a non-oscillatory position, or to oscillate with inner blade 112 and create a spring or biasing force on the mounting bracket 134.
With reference to
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 the purpose of description only and should not be regarded as limiting.
Further modifications and alternative embodiments of various aspects of the invention 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 invention.
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.
The present application is a continuation of International Application No. PCT/US2021/038890, filed Jun. 24, 2021, which claims the benefit of and priority to U.S. Provisional Application No. 63/044,118, filed on Jun. 25, 2020, which are incorporated herein by reference in their entireties.
Number | Date | Country | |
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63044118 | Jun 2020 | US |
Number | Date | Country | |
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Parent | PCT/US2021/038890 | Jun 2021 | US |
Child | 18145269 | US |