The subject matter of the present disclosure refers generally to a lower body assist device for assisting a user while performing lower body workouts.
Squats are an excellent exercise for working out the muscles of the leg, including quadriceps, hamstrings, and calves. They also engage the glutes and back to create an anabolic environment, which promotes body-wide muscle building. Additionally, when performed correctly, squats can engage the joints of the lower body, strengthening the muscles around the joints so that the joints ultimately become more stable. Walking while in a squatting position can provide a fantastic lower body workout as well. In addition to the benefits of a regular squat, a duck walk can increase stamina and increase flexibility in the hip joints, which can help reduce back pain for many individuals.
Unfortunately, performing squats unsupported is not for everyone. For some, the squat can be quite difficult due to the balance required to perform a full range squat correctly. For others, joint pain may prevent them from performing squats and walking squats unaided. This is particularly true for elderly people. Other people may just be too weak to perform a full range squat. For instance, those undergoing rehab may be too weak to perform a full range squat unaided. Though these individuals would benefit by performing these exercises aided, there currently is not a device on the market that can assist with the performance of the exercise.
Accordingly, there is a need in the art for a lower body assist device that can provide support to those who are unable to perform these exercises unaided.
A system and method for assisting a user while performing a lower body exercise is provided. In one aspect, the system and method of the present disclosure are designed to allow users to perform workouts they otherwise might not be able to perform unassisted. In another aspect, the system is designed to collect workout data and provide it to a user. Generally, the system assists a user while performing lower body workouts. The system generally comprises a handle bar, frame, and friction reduction apparatus. The system may also comprise a control board and a display, wherein the control board is configured to receive workout data and may then present the workout data via the display. Workout data may be collected by a sensor operably connected to the control board. A computing device may receive workout data from the control board via wireless communication device and present it to the user within a user interface.
The handle bars generally comprise a shaft and support bar. In some preferred embodiments, the support bars may be attached directly to the main trunk without the need of a shaft. The shaft is operably connected to the support bar in a way such that when the shaft is connected to the frame, the ends of the support bar are positioned above the frame. The frame may be defined as the central frame of the lower body assist device and comprises a main trunk and frame supports, wherein said frame supports are connected to said main trunk. The main trunk is a tubular or bar like entity have a superior end and inferior end and is preferably rigidly attached to the shaft of the handle bars. A friction reduction apparatus attached to the inferior end of the frame allows the user to push the lower body assist device in the bent over or partially squatted position without resistance that may otherwise make a workout too difficult.
The foregoing summary has outlined some features of the system and method of the present disclosure so that those skilled in the pertinent art may better understand the detailed description that follows. Additional features that form the subject of the claims will be described hereinafter. Those skilled in the pertinent art should appreciate that they can readily utilize these features for designing or modifying other structures for carrying out the same purpose of the system and method disclosed herein. Those skilled in the pertinent art should also realize that such equivalent designs or modifications do not depart from the scope of the system and method of the present disclosure.
These and other features, aspects, and advantages of the present disclosure will become better understood with regard to the following description, appended claims, and accompanying drawings where:
In the Summary above and in this Detailed Description, and the claims below, and in the accompanying drawings, reference is made to particular features, including method steps, of the invention. It is to be understood that the disclosure of the invention in this specification includes all possible combinations of such particular features. For example, where a particular feature is disclosed in the context of a particular aspect or embodiment of the invention, or a particular claim, that feature can also be used, to the extent possible, in combination with/or in the context of other particular aspects of the embodiments of the invention, and in the invention generally. Where reference is made herein to a method comprising two or more defined steps, the defined steps can be carried out in any order or simultaneously (except where the context excludes that possibility), and the method can include one or more other steps which are carried out before any of the defined steps, between two of the defined steps, or after all the defined steps (except where the context excludes that possibility). As used herein, the term “comprises” and grammatical equivalents thereof are used herein to mean that other components, steps, etc. are optionally present. For example, a system “comprising” components A, B, and C can contain only components A, B, and C, or can contain not only components A, B, and C, but also one or more other components.
As illustrated in
The handle bars 105 generally comprise a shaft 105A and support bar 105B. In some preferred embodiments, the support bars 105B may be attached directly to the main trunk 110A without the need of a shaft 105A. The shaft 105A is operably connected to the support bar 105B in a way such that when the shaft 105A is connected to the frame 110, the ends of the support bar 105B are positioned above the frame 110. Types of support bars 105B that may be used by the lower body assist device 100 include, but are not limited to, flatlander, plano, riser, bullhorn, drop, aero, cruiser, and butterfly. In a preferred embodiment, the lower body assist device 100 uses flatlander support bars 105B, which allow a user 120 to control the direction of the lower body assist device 100 while in use. Some embodiments of handle bars 105 may further comprise grips on either end of said support bar 105B, which may provide a gripping surface that allows a user 120 to better control the handle bars 105. In one embodiment, the grips may be contoured in a way such that an ergonomic gripping surface is created. In another preferred embodiment, the grips may be textured in a way that increases grip force of a user 120. In some preferred embodiment, the shaft 105A may comprise at least one aperture 125. A user 120 may insert the shaft 105A into the frame 110 and use the at least one aperture 125 of the shaft 105A and frame 110 to lock the lower body assist device 100 into a desired position. In another preferred embodiment, the shaft 105A may be operably connected to the frame 110 in a way such that a user 120 may turn the lower body assist device 100 about a central axis by applying force via the support bars 105B.
The frame 110 may be defined as the central frame of the lower body assist device 100 and comprises a main trunk 110A and frame supports 110B, wherein said frame supports 110B are connected to said main trunk 110A. The main trunk 110A is a tubular or bar like entity having a superior end and inferior end. The main trunk 110A is preferably rigidly attached to the shaft 105A of the handle bars 105, as illustrated in
The frame supports 110B are tubular or bar like entities having a trunk end and a friction end, wherein the trunk end is attached to the main trunk 110A and the friction end is attached to a friction reduction apparatus 115. The frame supports 110B may attach to the main trunk 110A between the superior end and inferior end and are situated such that the frame 110 created by the main trunk 110A and frame supports 110B can support itself and the handle bars 105 in an upright position, as illustrated in
In one preferred embodiment, the frame supports 110B may be telescoping. A user 120 may alter the length of the telescoping frame supports 110B to alter the position of the handle bars 105. The frame supports 110B may be locked into a certain length using the at least one aperture 125 of the frame supports 110B and a locking element 127. In another preferred embodiment, the frame supports 110B may be rotatably attached to the main trunk 110A, allowing a user 120 to alter the angle in which the frame supports 110B make with the trunk 110A. In one preferred embodiment, the angle created by the main trunk 110A and the floor is not ninety degrees so that rotating the frame supports 110B about the main trunk 110A causes the angle made by the main trunk 110A and the floor to change. Depending on the side in which the frame supports 110B are positioned relative the handle bars 105, increasing the angle created between a first support and a second support would cause the angle between the main trunk 110A and the floor to decrease, whereas decreasing the angle created between a first support and a second support would cause the angle between the main trunk 110A and floor to increase. In yet another preferred embodiment, the frame supports 110B may be slidably attached to the main trunk 110A, which may allow a user 120 to change the angle the main trunk 110A makes with the floor. Depending on the side in which the frame supports 110B are positioned relative the handle bars 105, the angle created by the floor and main trunk 110A will increase as one slides the trunk end of the frame supports 110B closer to the inferior end of the main trunk 110A, whereas sliding the trunk end of the frame supports 110B toward the superior end of the main trunk 110A may cause the angle created by the floor and main trunk 110A to decrease. By allowing a user 120 to adjust the angle the main trunk 110A creates with the floor, these embodiments also allow a user 120 to alter the position of the handle bars 105. This is important since this grants a user 120 the ability to alter the lower body assist device 100 in way that suits said user's 120 particular height and build.
A friction reduction apparatus 115 attached to the inferior end of the frame 110 allows the user 120 to push the lower body assist device 100 in the bent over or partially squatted position without resistance that may otherwise make a workout too difficult. Items that may be used as friction reduction apparatus 115 include, but are not limited to, skis, tracks, pads, and wheels, or any combination thereof. In the preferred embodiment, as illustrated in
The lower body assist device 100 may be used by a user 120 for support while performing a lower body workout by leaning over the lower body assist device 100 and gripping the handles. The user 120 may then begin to walk in a bent over or partially squatted position and direct the lower body assist device 100 to a desired location with at least one type of friction reduction apparatus 115 being used to control the resistance experienced by the user 120. For instance, a lower body assist device 100 comprising two frame supports 110B may use one wheel attached to the main trunk 110A and two tracks attached to the frame supports 110B to reduce the amount of friction applied to the lower body assist device 100 as a user 120 pushes it during a workout. For instance, tennis balls attached to the main trunk 110A and frame supports 110B may act as ski glides to reduce friction as the lower body assist device 100 is pushed across a gym floor. In one preferred embodiment, the lower body assist device 100 may further comprise a reflective device 107, which may allow a user 120 to move towards a desired location without having to look towards said desired location. In a preferred embodiment, the reflective device 107 is attached to the handle bars 105 of the lower body assist device 100. The reflective material of the reflective device 107 is preferably made from a material that has non-specular reflective properties. For instance, a piece of wood with a matte paint coating wood has diffuse reflective properties. For instance, clear standing water has specular reflective properties.
As mentioned previously, some embodiments of the system 100 may further comprise a control board 615, as illustrated in
The processor 620 of the control board 615 may be any processor or microprocessor suitable for executing instructions. In some embodiments, the processor 620 may have a memory device therein or coupled thereto suitable for storing workout data, or other information or material disclosed herein. In some instances, the processor 620 may be a component of a larger computing device 610. In a preferred embodiment, the processor 620 may receive workout data via the wireless communication device 617, wherein the workout data comprises distance data, repetition data, and time data. In another preferred embodiment, the processor 620 may receive instructions from a computing device 610 that may instruct the control board 615 to begin a workout cycle. For instance, a user 120 may choose a particular workout via the user interface 611 of a computing device 610 operably connected to the control board 615 of the system 100, which may cause the system 100 to start said workout.
A computing device 610 may be implemented in a number of different forms, including, but not limited to, servers, multipurpose computers, mobile computers, etc. For instance, a computing device 610 may be implemented in a multipurpose computer that acts as a personal computer for a user 120, such as a laptop computer. For instance, components from a computing device 610 may be combined in a way such that a mobile computing device is created, such as mobile phone. Additionally, a computing device 610 may be made up of a single computer or multiple computers working together over a network. For instance, a computing device 610 may be implemented as a single server or as a group of servers working together over and Local Area Network (LAN), such as a rack server system. Computing devices 610 may communicate via a wired or wireless connection. For instance, wireless communication may occur using a Bluetooth, Wi-Fi, or other such wireless communication device 617.
The computing device 610 preferably comprises a user interface 611 that allows a user 120 to interact with the control board 615. A user interface 611 may be defined as a space where interactions between a user 120 and the system 100 may take place. In an embodiment, the interactions may take place in a way such that a user 120 may control the operations of the system 100. A user interface 611 may include, but is not limited to operating systems, command line user interfaces, conversational interfaces, web-based user interfaces, zooming user interfaces, touch screens, task-based user interfaces, touch user interfaces, text-based user interfaces, intelligent user interfaces, and graphical user interfaces, or any combination thereof. The system 100 may present data of the user interface 611 to the user 120 via a display 618 operably connected to the processor 620. A display 618 may be defined as an output device that communicates data that may include, but is not limited to, visual, auditory, cutaneous, kinesthetic, olfactory, and gustatory, or any combination thereof.
A sensor 616 of the system 100 may be used to collect workout data, which may be used by the system 100 to determine the amount of work a user 120 using the system 100 has performed. The sensor 616 is operably connected to the control board 615 in a way such that any workout data collected by the sensor 616 may be transmitted to the control board 615 and stored in memory. In an embodiment, the sensor 616 comprises an accelerometer, which may measure workout data in the form of acceleration. The system 100 may utilize the acceleration experienced by the system 100 as input to be analyzed to determine how many repetitions a user 120 has performed. In another preferred embodiment, the sensor 616 may comprise global positioning system (GPS), which may measure workout data in the form of geospatial data. Once the processor 620 receives the geospatial data from the GPS, the processor 620 may estimate a distance traveled by the user 120. Geospatial data may be spatial data including, but not limited to, numeric data, vector data, and raster data, or any combination thereof. Numeric data may be statistical data which includes a geographical component or field that can be joined with vector files so the data may be queried and displayed as a layer on a map in a geographic information system (GIS). Vector data may be data that has a spatial component, or X, Y coordinates assigned to it. Vector data may contain sets of points, lines, or polygons that are referenced in a geographic space. Raster data may be data in a .JPG, .TIF, .GIF or other picture file format. For instance, a map scanned in a flatbed scanner may be considered raster data.
Alternatively, a user 120 may grip the handle bars 105 in a bent over position as described above but then bend at the knees while keeping their back straight to assume a partially squatted position. The user 120 may then push the lower body assist device 100 while remaining in the partially squatted position, which will work the anterior muscles of the lower body more than a purely bent over position would. The user 120 may desire to bend their knees even further until their thighs are parallel to the ground, using the lower body assist device 100 as a support to prevent falling. In this crouched position, a user 120 may perform a duck walk while minimizing stress to the knees thanks to support from the lower body assist device 100. Regardless of the method used, a user 120 is to keep their back and their arms straight. The position assumed using this stance will exert a downward force on the lower body assist device 100 since the height of the lower body assist device 100 should be no higher than the user's 120 shoulders in said bent position. This downward force will provide resistance to the user 120 as they attempt to push the lower body assist device 100 from a starting position to a desired location. Further, by forcing oneself to stay in this position, the user 120 may indirectly work their core, shoulders, and neck in addition to the muscles of their lower body.
Once the user 120 has assumed one of the exercise positions of steps 526, 527 and 528, the user 120 may push the lower body assist device 100 during step 530. In the method presented herein, the user 120 may push the lower body assist device 100 to a desired location from a starting location. Alternatively, a user 120 may push the lower body assist device 100 until muscle exhaustion. In a preferred embodiment, a user 120 will have selected a starting location and a desired location beforehand and perform a number of sets of the selected exercise. Once the user 120 has pushed the lower body assist device 100 to the desired location, the user 120 may determine if they would like to push the lower body assist device 100 to the starting location during step 535. The user may take an action of this determination during step 540. If a user 120 determines they would not like to push the lower body assist device 100 to the starting location, the user 120 may proceed to terminate method step 550. If the user 120 determines they would like to push the lower body assist device 100 to the starting location, the user 120 may do so during step 545. Once the user 120 has pushed the lower body assist device 100 to the starting location, the method may proceed to the terminate method step 545.
The implementations set forth in the foregoing description do not represent all implementations consistent with the subject matter described herein. Instead, they are merely some examples consistent with aspects related to the described subject matter. Although a few variations have been described in detail above, other modifications or additions are possible. In particular, further features and/or variations can be provided in addition to those set forth herein. For example, the implementations described above can be directed to various combinations and subcombinations of the disclosed features and/or combinations and subcombinations of several further features disclosed above. In addition, the logic flow depicted in the accompanying figures and/or described herein do not necessarily require the particular order shown, or sequential order, to achieve desirable results. It will be readily understood to those skilled in the art that various other changes in the details, materials, and arrangements of the parts and method stages which have been described and illustrated in order to explain the nature of this inventive subject matter can be made without departing from the principles and scope of the inventive subject matter.
This application is a continuation of a co-pending U.S. patent application Ser. No. 17/194,154 filed Mar. 5, 2021, which claims priority to U.S. Provisional Application Ser. No. 62/985,803, filed on Mar. 5, 2020, in which all applications are incorporated herein in their entirety by reference.
Number | Date | Country | |
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62985803 | Mar 2020 | US |
Number | Date | Country | |
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Parent | 17194154 | Mar 2021 | US |
Child | 18378549 | US |