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The present invention relates to a compact fitness device, methods of manufacturing same, and methods of using same. More particularly, the present invention relates to a compact physical fitness device capable of generating a high level of resistance, especially one with a concentric exercise capability.
Traditional physical fitness exercise devices are well known in the art, including one of the most common types of resistance training techniques, including resistance exercise machines. Such devices are typically an exercise machine that either includes resistance weights or resistance elastic bands for exercising certain muscle groups. Such devices utilize both eccentric and concentric training. The eccentric phase is the lowering or negative portion of the exercise repetition, while the concentric phase is the lifting, shortening and/or positive portion of the repetition.
However, practitioners of those inventions have become aware of certain problems which were presented by those prior art inventions. Particularly in the field of physical therapy for muscular rehabilitation, and due to the aforementioned inclusion of an eccentric phase of the repetition in prior resistance devices, one can induce hypertrophy and edema. Both are undesirable conditions when one tries to develop atrophied or injured muscle tissue.
One additional particular problem that has plagued users has been that compactness and portability had to be sacrificed for adjustable resistance. Additional sacrifices precluded a wide range of resistance, and/or compatibility with full body exercises. For example, there are issues with the use of prior art resistance elastic bands, because the amount of resistance is limited. Moreover, resistance adjustability meant that one would have to carry around additional sets of elastic bands with handles attached that needed to be replaced in order to provide varying resistance to the exercise. Additionally, bands have the disadvantage of variable resistance depending on the length of stretch. Or, in another resistance technology of cable and pulley resistance type machines, they are large, heavy, stationary and often specialized for specific muscle groups. Yet another weight resistance technology includes the use of free weights. To use free weights, numerous plates of various and extremely heavy weights are necessary along with a bench and a bar to complete similar exercises. Free weights are neither compact, nor are they especially portable.
Furthermore, nothing in these types of prior art devices was able to relay meaningful data-driven information about the progress a person was making for strength by performing the exercise repetitions or provide personalized coaching instruction.
It would be desirable to the medical and sports industries if there was provided a truly compact and/or portable fitness device utilizing predominantly concentric phase training exercises. Especially desirable would be a compact fitness device that is also capable of monitoring, tracking and correlating the data indicative of the progress being made by the user, while providing coaching direction for further improvement. Further, it would be advantageous to provide an easy to manufacture method of making such a device, as well as a method of using the device to keep track of progress.
Sports medicine and physical therapies need to be monitored after injuries and/or accidents in order to inform doctors about readiness of the injured to return to work or to return to the sports field. Patients would benefit tremendously if their progress could be measured by constructive data, especially by means of a smartphone app with built-in algorithms.
In order to provide a suitable compact and/or portable physical fitness device capable of high resistance training, the present invention combines a number of novel features to provide a physical fitness device that has an impressive ratio of size of unit to the amount of resistance, which is adjustable from 5 to 500 pounds. The fitness device comprises an elongated platform having a pair of concentrically acting, independent resistance modules at opposing ends of the platform. These resistance modules are capable of providing a wide range of resistance, from low to very high. The high resistance capability is fully adjustable and may go all the way up to at least five hundred (500) pounds of resistance per side. The resistance modules each have a retractable pull cord terminating in a handle. The handle can be used by one's hand, foot, or any other body part that needs to be strengthened.
Especially useful is the optional integration of a number of electronic features for on-the-fly weight resistance adjustments, transmission of data to a smartphone, computer, or the Internet.
Another aspect of this fitness device may provide electromagnetic resistance by means of either DC braking of an AC motor, or the rotation of a brushless DC motor in the direction opposite to the rotation pull direction of the user. Such electric DC braking coupled with user pre-selected resistance profiles allow a novel way for users to modify resistance during the actual exercise without further input or action from the user. This resistance could follow a pre-programmed or user personalized resistance profile, similar to a treadmill or exercise bike, to allow for maximum muscle stimulation. An example may include reducing/increasing resistance by 10% after rep 7, or ascending/descending resistance with every rep, or repetition, again without user input during the exercise.
For a further understanding of the nature and advantages of the expected scope and various aspects of the present invention, reference shall be made to the following detailed description, and when taken in conjunction with the accompanying drawings, and wherein:
Generally, a compact high resistance fitness device 10 is disclosed which utilizes a platform base plate or support plate 28 including two small widely spaced pivotally mounted resistance modules 11 each having independent user-selectable resistance settings with very large force ranges (of possibly a low 5 pounds up to 500 pounds or more for example) and very long pull strokes while each achieving minimal in-stroke force increases or decreases. In use, the resistance modules 11 are spaced apart on a platform base plate 28 preferably at a distance that allows the user's shoulders to fit substantially between the two resistance modules 11. The resistance modules 11 each include a small diameter, high-strength resistance cord 16 terminated at the outer end by a hand/foot receptacle or handle 14 and with a length sufficient to allow pull strokes of up to eight feet or more. The resistance modules 11 include covers 54 that define barrels 26 and that can rotate to move the angle of a cord exit orifice or cord escape bushing 12 to minimize cord wear. A large user-actuated resistance force selector knob or resistance adjustment knob 24 includes incremental radial position marks that are labeled with a corresponding approximate resistance force value indication.
Although the entire force range from 5 to 500 pounds resistance may be selectable within one 360° rotation of the resistance force selector knob 24, it may also be selected by any angle of rotation from 0-180°, or it may be selected by means of a digital keypad and display in communication with a brushless DC (BLDC) motor described hereinafter. The lowest resistance force value is primarily contributed from the low-force spirally coiled rewind spring 64 (
Some versions of the compact high resistance fitness device 10 will include a base plate 28 of segments or sections as seen in
Any of the compact high resistance fitness device aspects herein can include electronic sensors, circuitry, a CPU and communication devices that allow the Compact high resistance fitness device 10 to record the number and length of pull strokes, set the resistance force of each stroke and compile these values from each of the two resistance modules 11 and transmit this information to a receiving device that will record and display the information to the user. The resistance modules 11 communicate wirelessly between modules and one module 11 will be designated to communicate wirelessly with a receiving display device. (See
A chair may be substituted for a portion of the base plate to allow a pair of right-hand, left-hand resistance modules to be mounted to the chair, one unit on each side, near the height of the seat as seen in
The present invention uniquely focuses on concentric only training, unlike any other form of resistance training. Other resistance training techniques incorporate both eccentric and concentric forms of resistance training. The present invention removes the eccentric part of an exercise while still eliciting a training effect but significantly reduces potential muscle soreness and recovery time. Primarily concentric training provides for safer strengthening of muscles.
Generally, a repetition consists of two distinct phases. Using the classic bicep curl exercise as an example here:
Concentric muscle workouts have some significant benefits, increasing blood flow through the muscle, providing a level of hypertrophy, but with minimal or no edema or swelling of the muscle which can delay onset muscle soreness. Concentric-only strength training may be an efficient way to increase muscle hypertrophy without edema and eccentric muscle damage.
The eccentric phase of an exercise causes the most damage and carries the greatest potential for soreness. While the eccentric phase is much more demanding on the body and the central nervous system, it also takes longer to recover. This can be particularly important for patients recovering from muscle related injuries during physical rehabilitation. Previously known exercise devices on the market involve concentric and eccentric use of the muscle. The present invention is unique because it provides an eccentric-less form of training.
In its basic format, the present invention discloses a compact high resistance fitness device 10 that includes a platform base plate 28 having at least one resistance module 11, but may also include two widely spaced pivotally mounted resistance modules 11 at opposing ends of the platform base plate. Each resistance module 11 has independent user-selectable resistance settings with incremental resistance force ranges of from about 5 pounds up to 500 pounds. This is a large advantage over prior art devices, because they have not been able to achieve such a high level of resistance in such a compact device. Regarding the resistance module location, it may be positionable between up, middle, and down positions, depending on what exercise or rehabilitation mode is desired. For instance, if the compact fitness device 10 is mounted on a wall to exercise upper body parts, the resistance module 11 would preferably be mounted in a way to accommodate that. If, on the other hand, a person wished to only rehabilitate their legs, the resistance module would be mounted or placed on the floor such that one's feet held the present fitness device in the proper position. Further, the compact fitness device made in accordance with the present invention may preferably be mounted on a fitness stand or a stationary track, whether any of these can be wall mounted or not. For general exercising use, the length of the platform base plate is sufficient to allow space for the user's shoulders to fit between the resistance modules in the in-use position.
Each resistance module 11 includes a pull cord coil storage spool 58 configured to wrap and unwrap a pull cord 16 of a small diameter, high-strength pull cord emanating from the resistance module 11. The high strength pull cord 16 may be up to at least 50 feet, and it terminates at its outer end by a hand/foot handle, or receptacle, 14 with a length sufficient to allow pull strokes of up to fifty feet or more. In certain aspects, it may be preferable for the pull cord coil storage spool 58 to be V-shaped.
A rotatable housing 54 defines a barrel 26 and externally covers the at least one resistance module 11. The housing 54 has a cord escape port orifice 12 for directing and delivering the high-strength cord 16. The housing cover 54 can rotate about the resistance module 11 to move the cord exit orifice angle to minimize cord wear. In the various aspects, i.e. a single resistance module 11 or the dual resistance modules 11, a user-actuated resistance force selector knob 24 may be made integral with the housing cover 54, and the resistance force selector knob 24 will include incremental radial position marks that are labeled with a corresponding approximate resistance force value indicator. The resistance module 11 may be self-winding, or it may include a return spring, a motorized or manual retraction system, and/or it may be programmable to be retracted in a pre-determined fashion. Further, the resistance module 11 may be a non-momentum, non-resisting resistance device, and it may be a locking device. The resistance module 11 may further include a potentiometer for adjusting resistivity to any level for exercise or rehabilitation Any commercially available electronic controls, such as Hall sensors, may be used for possible scenarios to control the resistivity or any other aspect of the present invention.
In further aspects of the present invention, the compact high resistance fitness device 10 may include at least one resistance module 11 including sensors for momentum, direction, and biometrics for procuring data to be processed by an IoT connectivity app to provide data communication through connectivity apps as described herein. The IoT connectivity app provides numerous capabilities for programmability options, depending on which sensors are included. Such sensors are commercially available and provide any number of possible data collection capabilities. Once data collection is enabled by the use of non-electronic, electronic means or by the incorporation of sensors, the resistance module may be controlled manually, electronically, by computer or by voice actuation. In another aspect, our fitness device may further comprise an audio capable speaker for listening to instructions from a coaching app. The compact high resistance fitness device may also include at least one wireless transmission and receiver to relay data and information to a smartphone, a computer, up into the cloud, or any other desirable receiver for data. Each of the components, including the handles or foot holds, may become smart handles with sensors embedded therein for relaying medical data. Various commercially available biometric devices can also be incorporated into the smart handles to monitor things like blood pressure, temperature, even cholesterol or blood sugar levels.
When collection of the data is desired, the resistance module may include electronic sensors, circuitry, a CPU and/or communication devices that allow the compact high resistance fitness device to record the number and length of pull cord strokes, the set resistance force of each said pull cord stroke and compile these values from the at least one resistance module and transmit this information to a receiving device that will record and display the information to the user. Where two resistance modules 11 are being used, the resistance modules 11 may communicate wirelessly between modules and one module will be designated to communicate wirelessly with a user supplied receiving device.
In a second aspect, for certain fitness applications, where the pull cord 16 may be desired to be relatively longer, it may be preferable to eliminate any return spring, and may include a motor 510, perhaps with a remote control, to retract the pull cord 16 as described herein relative to
The compact high resistance fitness device 10 may be easier to store if the resistance modules 11 can be moved from a locked in-use position to a locked storage position and wherein said locked storage position reduces the overall length of said fitness device 10 by approximately the combined length of the two resistance modules 11 as will be described relative to
The compact high resistance fitness device 10 also is envisioned of having an aspect further including a rotatable slip clutch 35 in the resistance modules 11 that includes a plurality of friction plates 38A and 38B spaced apart by one of a plurality friction disks 38C (best illustrated in
In accordance with yet another aspect of the present invention, a desirable compact high resistance fitness device 10 is adapted for resistance force exercise with a base plate or support plate 28 and at least one resistance module 11 mounted on the base plate 28. In this aspect of the invention, the fitness device 10 includes a frame structure 49 comprising an inner support frame 50 fixed with an inner end housing 66, an axle shaft or axle pin 62 rigidly mounted to the frame structure 49 on the inner end housing 66, a one-way clutch bearing 56 mounted to the axle shaft 62, a user adjustable resistance force adjustment knob 24, and a variable resistance rotary slip-clutch 35 having the stack of stationary friction plates 38A and rotatable friction plates 38B that are engaged with friction pads 38C therebetween. The rotatable friction plates 38B are preferably pivotally engaged with the one-way clutch bearing 56 while the stationary plates are non-rotationally mounted to the frame structure 49 through the axle shaft 62. A user extendable pull-cord 16, and a cord storage spool 58 are pivotally mounted to the axle shaft 62 and it is engaged with the one-way clutch bearing 56.
A rotatable outer cover 54 over the storage spool 58 includes a pull-cord escape port or cord escape bushing 12, where the user extendable pull-cord 16 terminates at the outer end by a user actuated receptacle 14. The pull-cord 16 preferably has a length sufficient to allow pull-strokes of 12-inches or more, preferably to about 8 feet long, although pull strokes of 50 feet or more may be desirable. A portion of the pull-cord 16 passes through the pull-cord escape port 12 while the inner end thereof is attached to the cord storage spool 58 to prevent pulling the cord 16 out of the device 10. The outer cover 54 is preferably pivotally mounted to the frame structure 49 comprising the inner end housing 66 so that the axis of the rotatable outer cover 54 is substantially aligned with the axis of said axle shaft 62. With the compact high resistance fitness device 10 held stationary, rotation of the user adjustable resistance force adjustment knob 24 is engaged to set the adjustable resistance of the slip-clutch 35. When the user pulls on the handle 14, the extension of the pull-cord 16 rotates the spool 58, and the spool 58 rotates the one-way bearing 54 in the locked direction which rotates the rotary clutch plates 38B which are being resisted by friction of engaged clutch friction plates 38A and friction pads 38C. Rewinding of the pull-cord 16 onto the cord storage spool 58 in the unlocked direction of the one-way bearing 56 thereby disengages the rotary clutch plates 38B while the pull-cord 16 is being rewound onto the cord storage spool 58. As further described herein, there are several different mechanisms for retracting the pull cord 16, whether manually, or by a motor 510.
In this aspect, a spirally wound rewind spring 64 is connected at the outer end to the cord storage spool 58 and is attached at the inner end to the frame structure 49. The rewind spring 64 is employed to power the rewinding of the pull-cord 16.
The friction between the clutch friction plates 38A and 38B and the friction pads 38C results from pressure applied by compression springs 46 on the stack of friction plates 38A and 38B.
In further aspects of the present invention, the adjustable resistance force adjustment knob 24 may include an internal thread 42A formed on a threaded spring compression collar 42 that causes the compression springs 46 to be compressed when the knob 24 is turned in one direction.
Referring now to the drawings in detail,
In this aspect, at least one resistance module 11 is in communication with resistance cord 16 being attached to handles 14. A resistance cord escape bushing 12 directs resistance cord 16 and provides minimal frictional damage to resistance cord 16. A resistance module 11 is hingeably attached to support plate 28 for ease of storage, and is enabled to swing underneath support plate 28 by module hinges 30 so that the Compact high resistance fitness device 10 takes up less space for storage.
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The preferred aspect of the present invention includes a pulley system 520 on either side of the exercise machine base unit acting as mechanical linkages that transfer power between the BLDC motor output shafts and rope 522, converting rotational motion to linear motion. Each rope 522 extends from each pulley system 520 to each smarthandle 512, transmitting tension force around the pulley system 520.
In operation, the two smarthandles 512 are pulled by the user during exercise movements. Factory calibrated smarthandles 512 also collect exercise and various sensor data through a Bluetooth® module built into each handle. The data is then sent to the smartphone app 516 to be analyzed and displayed.
Again, in carrying out this aspect of the method of operation in accordance with the present invention, the basic premise of operation is that the BLDC motor shall act as a brake, providing resistance to the user throughout the user's exercise movements using this machine. The user exerts load on the motor shaft use of the Smart Handle and Rope assembly. When the user pulls the rope 522, the pulley system 520 rotates, causing the motor shaft to rotate. The encoder circuit 504 senses the position of the motor shaft and signals the drive circuit 500 to control the motor current and magnetic field to the appropriate position, maintaining the proper torque setting selected by the user.
In a conventional BLDC motor, the output shaft or rotating component is called the rotor, whilst the coil windings are stationary and are called the stator. In this aspect, options for the use of a BLOC motor are for the rotor to be internal or external (out-runner) type.
BLOC motors generally have a low pole count, where the pole is defined as a single magnetic field, for smooth high speed rotation. In contrast to BLDC, stepper motors have a high pole count for low speed high torque. The present invention may preferably have a very controllable HIGH torque, with smooth operation during high stall current operation.
A BLOC motor has a directly proportional linear relationship between torque on the output shaft or rotor and the current applied to the coil windings or stator. i.e
The voltage applied to the stator of the DC motor is proportional to the rotational speed of the rotor.
Back-EMF constant KE from the torque constant KM:
=KM*(2x/GO)
Subtract the product of the current Land terminal resistance P from the applied voltage Q˜ and multiply that quantity by 1,000 over the back-EMF constant to obtain the approximate speed n of the motor at the operating point (speed at torque):
n=(U−I*R)*(1,000/KE)
Thus, the rotational speed and the resistance of the rope pull force may be calculated, the data registered, and the motor rotational position sensing is then determined, selecting the current required to maintain the torque profile which can be set by the user and the relevant program.
The foregoing description of various preferred aspects of the invention has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise form disclosed. Obvious modifications or variations are possible in light of the above teachings with regards to the specific aspects. The aspects were chosen and described in order to best illustrate the principles of the invention and its practical applications to thereby enable one of ordinary skill in the art to best utilize the invention in various aspects and with various modifications as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the claims which are appended hereto.
The present invention finds industrial applicability in exercise equipment, fitness devices as well as in medical rehabilitation devices for providing full functioning after injury.
This application claims the benefit under 35 U.S.C. 119(e) of U.S. Provisional Application Ser. No. 62/696,899 filed on Jul. 12, 2018.
Filing Document | Filing Date | Country | Kind |
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PCT/US2019/041696 | 7/12/2019 | WO |
Publishing Document | Publishing Date | Country | Kind |
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WO2020/014667 | 1/16/2020 | WO | A |
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Number | Date | Country |
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2578416 | May 2020 | GB |
Number | Date | Country | |
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20210339078 A1 | Nov 2021 | US |
Number | Date | Country | |
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62696899 | Jul 2018 | US |