Dynamic neck muscle exerciser
11633644 · 2023-04-25
Inventors
Cpc classification
A63B2220/833
HUMAN NECESSITIES
A63B21/00076
HUMAN NECESSITIES
A63B21/0023
HUMAN NECESSITIES
A63B2220/80
HUMAN NECESSITIES
A63B21/0608
HUMAN NECESSITIES
A61H2201/5048
HUMAN NECESSITIES
A63B21/4043
HUMAN NECESSITIES
A63B21/00196
HUMAN NECESSITIES
A63B2071/0627
HUMAN NECESSITIES
A63B2071/065
HUMAN NECESSITIES
A63B71/0622
HUMAN NECESSITIES
International classification
A61H1/02
HUMAN NECESSITIES
Abstract
The present invention may be embodied as a system or method for dynamically exercising a user's neck muscles. The system includes a headset, an arm attached thereto, a weight, and at least one motor to move the weight, for example, about the arm. The weight may be mounted eccentrically on a radial track that is rotatable by one motor and moved linearly by another motor. The direction of the arm, the distance between an apex of the headset and the weight, the eccentricity of the weight on the axis, and the speed of rotation of the motor are all parameters that can be adjusted by the caregiver or user, either manually or via controlling software.
Claims
1. A neck muscle exercise system comprising: a headset; a rigid arm mounted on the headset; and a motor mounted on the rigid arm, the motor enabling the rigid arm to apply a periodically-changing moment to the headset; wherein the moment is generated by a radial and azimuthal moving weight.
2. The system as in claim 1, wherein weight is eccentrically rotating.
3. The system as in claim 2 wherein the axis of rotation of the eccentric weight is one of the roll, the pitch and the yaw axes.
4. The system as in claim 1 further comprising: a generator of a corrective audial signal to the user; wherein the corrective audial signal is activated according to the user's head orientation.
5. The system as in claim 4, wherein the head orientation is determined by an inclinometer.
6. The system as in claim 5, wherein the inclinometer is embedded in a smartphone secured to the user's head.
7. The system as in claim 5, wherein the inclination sensors are solid state inertial measurement units.
8. The system as in claim 1 further comprising: a module located on the top of the head with a mechanism that straps it to the user's head, said strap mechanism having: a. at least one latitudinal strap adjusted to have a circumference smaller than the circumference of the skull at the occipital bone; and b. at least two longitudinal straps configured to pull the latitudinal strap towards the module; wherein tightening the straps firmly attaches the module to the user's head.
9. The system as in claim 1 further comprising: at least four vibrators contacting the user's skull bone and providing sensory outputs to the user by vibrating based on the inclination of the headset.
10. The system as in claim 9, wherein the outputs have unique distinguishable frequencies.
11. The system as in claim 9, wherein a first vibrator contacts the front of the user's skull, a second vibrator contacts the back of the user's skull, a third vibrator contacts the skull to the left of the center of the skull, and a fourth vibrator contacts the skull to the right of the center of the skull, and wherein the third and fourth vibrators are not positioned at the farthest left and right points, respectively, of the center of the skull.
12. The system as in claim 1 further comprising: a. a dynamically-moving weight applying a tilt moment on the user's head; b. a mechanism to graphically direct attention of a user to a target point on a screen; c. a mechanism to sense the direction of the user's face; and d. a mechanism to record the deviation of the user's face direction from the target on the screen.
13. The system as in claim 12 further comprising: at least one battery; wherein the at least one battery is a part of the dynamically-moving weight.
14. A method for exercising neck muscles of a patient comprising: a. providing a helmet with an arm configured to turn between predetermined angles around an essentially vertical axis; b. mounting the helmet on a patient's head; c. providing a weight on the rotating arm configured to slide radially between pre-determined radii; d. sliding the weight in a trajectory along the rotating arm; e. rotating the arm in a trajectory around the axis; and f. monitoring the orientation of the helmet in space while rotating the arm and sliding the weight.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention is described below in the appended claims, which are read in view of the accompanying description including the following drawings, wherein:
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DETAILED DESCRIPTION OF THE DRAWINGS
(13) Attention is now directed to
(14) Attention is now directed to
(15) A radial arm 26 made of any strong and light-weight material, such as plastic, wood, or aluminum, extends from the apex of the headset and rotates in a horizontal plane about an axis 24. Friction or other means of fastening keeps the arm 26 in a fixed orientation relative to the headset.
(16) A motor 28 increases the moment of arm 26 and may include gearing to change the speed of rotation. The motor 28 is attached to the arm 26 by a band 30. The band allows the user to slide the motor along the arm 26 and to fix it in place. An eccentric weight 34, possibly made of a set of heavy eccentric disks, is fixed to the motor axis 32. The mass of the weight can be adjusted by adding or removing disks.
(17) Electricity supplied by a battery 38 on the headset powers the motor. An electronic device 36, such as a dedicated inertial movement unit or a general purpose smartphone, has means to measure the orientation of the head in space using a software application that implements orientation sensors. Such orientation sensors are typically available on modern smart phones. Alternatively, device 36 can be a dedicated device that is designed for the system of the present embodiment and comprises means to measure and record the pitch, roll, and yaw angles of the headset. Additionally, the device 36 is configured, using commercially available text-to-speech software, to send correction messages to the user, alerting him/her when his/her head is inclined away from a desired head position. The message can be played to the user by audio via a speaker on the head set or via earphones in place near or in the user's ears.
(18) Device 36 enables the utilization of the exact position of the headset in three-dimensional space as an input to a virtual reality based software that would require knowledge of precise head movements.
(19) As a result of the eccentric motion of the weight around the X axis, a cyclic moment in the pitch and yaw dimensions is applied to the head and neck. The attachment band 30 can be sled forward and backward along the arm 26, and the mass and eccentricity of the weight 34, as well as the rotational speed of the motor, can be adjusted to change the amplitude and frequency of the moment cycles.
(20) Attention is now directed to
(21) Attention is now directed to
(22) In all the configurations shown in
(23) Attention is now called to
(24) Information about the head orientation (roll, pitch, yaw) is processed to detect whether the user's head is inside of or outside of a normal envelope set by the caregiver. If the orientation of the head of the user is not within the normal envelope, as set by a caregiver, a voice generator 74 generates an alert message such as “forward” or “leftward” that is amplified in an amplifier 72 and played to the user via speakers or earphones. This gives the user real-time feedback that guides him to correct the head orientation.
(25) The signals from the processor 62 also go into a head shake monitor 66 that calculates the amplitude of head shaking, which is indicative of the ability of the user to restrain the moment of the eccentric weigh using his neck muscles. The information together with the data on head orientation is input to a data processor 68 and is recorded on a log 70 that can serve the user and the caregiver for monitoring the user's treatment off-line.
(26) Attention is now directed to
(27) The top of a user's skull 80 is shown in a normal posture, and a device 82 is attached to it comfortably (attachment means not shown). Four inclination Single-Pole, Single-Throw (SPST) mercury switches (such as those described in Handbook of Modern Sensors—Physics, Designs and Applications (3rd Edition). Springer-Verlag. pp. 256-257) 84, 86, and two others not shown for clarity, are mounted diagonally on the device, facing front, rear, right and left sides of the skull. Alternatively, and preferably, electronic inclinometers such as “High Accuracy Digtial Output 1-Axis MEMS Inclinometer Tilt Sensor” available from ZC, 3F, #6 Building, No. 639 Guangzhong Road, Minhang, Shanghai, 201108, China may be used. The switches are arranged so that their slopes, when the user exhibits proper posture, keep the mercury 88, 90 in the switches from reaching the electrodes 92, 94 thus preventing electric flow through the switches. Electric wires 96, 98 lead from the electrodes 92, 94, respectively, to the device and to a controller (not shown).
(28) The inclination of switch 86, which is the rear switch, is adjusted so that when the skull leans forwards, as shown in
(29) The inclination of switch 84, which is the rear front, is adjusted so that when the skull leans backwards, as shown in
(30) In similar way, inclination to the left closes the right-side switch and inclination to the right closes the left-side switch.
(31) The switches can be made implementing other technologies used in the art for sensing inclination.
(32) The controller can determine from the conductance of the four switches whether and in which direction the skull is inclined and can then output voice instructions as described in
(33) Attention is now directed to
(34) A weight 118 is mounted on the arm. The moment of the weight on the skull changes with the distance between the weight and the axis, which is the radius of its rotation.
(35) Another motor (not shown) on the arm rotates a pully wheel 124 and a wire 126 connected to the weight 118 and then to another wheel 122. The weight is mounted on a rail (not shown) so that by rotating the second motor, the wire pulls the weight along the rail (very much like a printhead of a printer). This positions the weight at different locations along the arm, so that the moment of the weight on the head can be changed continuously and automatically. This dynamic moment has a medical value in treating a patient. Batteries and a controller are located in a box 120 on the back of the headset.
(36) Attention is now directed to
(37) A strap system for securing a helmet 130 to a user's head is shown. The helmet is stably fixed to the head of the patient to withstand moments in all three dimensions, pitch, roll, and yaw. Such as in contrast to conventional helmets, such as motorcycle or construction worker's helmet, which protect the head but do not have to withstand moments of the same magnitude. Device carrying helmets, like a combat helmet carrying IR binoculars, or a surgeons' helmet carrying magnifiers and projectors, need to withstand pitch moments but very small yaw and roll moments. The present embodiment has a strapping system for helmets that can sufficiently withstand moments in all three dimensions.
(38) A horizontal, latitudinal band 138 or 127 is strapped around the user's skull 128 so that it passes below the occipital bone 129 and is strapped by a conventional strapping fastener 134. This strap circumference is smaller than the skull circumference at the occipital bone, so the strap cannot move upwards.
(39) A set of longitudinal straps 136, 144, 146, and others not shown, which total typically four or six in number, spaced around the skull 128 connect a payload 132 on top of the skull with the horizontal strap 138. These straps are fastened by conventional fasteners 137, 138, 140.
(40) When all latitudinal and longitudinal straps are fastened, the payload 132 is fixed on the skull unable to slide about the surface of the head. Unlike other types of helmet fastening systems that fasten the helmet to the head with one latitudinal strap and one longitudinal strap going down under the chin, the present invention shows a trapping system that fastens the helmet to the head with one latitudinal strap and a plurality of longitudinal straps going up. A down-going strap can be included to increase the stability of the payload.
(41) Attention is now directed to
(42) In this embodiment, four channels of feedback signals are provided to the user's skull 174 by a head-wearable device 152 using four vibrators 160, 156, 154, and 162. Each of the vibrators is positioned against a skull bone so that a relatively weak vibration will be easily sensed by the user. The four vibrators are assigned to the four main directions—vibrator 156 is assigned to the front direction 166, vibrator 162 is assigned to the back direction 172, and vibrators 160 and 154 are assigned to the side directions 164 and 170, respectively. The user can distinguish between the vibrators by their unique vibration frequencies or by their unique vibration amplitude modulation or by sensing their location on the head, depending on the embodiment.
(43) In this embodiment, the positions of the side vibrators 160, 154 are not identical to the directions that they indicate, that is, they are not positioned at the farthest points left and right of the user's head. Advantageously, they are more easily sensed because they contact bone, which enables the user to quickly learns to interpret them correctly.
(44) Attention is now directed to
(45) Attention is now directed to
(46) A helmet 198 carries an eccentric arm 190 along which a carriage 194 is configured to move radially. The carriage has a weight and some electronic circuits 196. The arm 190 can rotate around the helmet in a horizontal plane around a vertical axis 192. It is desired that the moment of the carriage on the helmet will be variable between zero and a maximum value. The moment is varied by changing the distance between the weight and the axis 192.
(47) The system is powered by one or more batteries 200. In a preferred embodiment of the invention, the batteries are serving as a part of the weight and are a part of the carriage 194. This saves on the weight of the system that a user must wear on his head.
(48) Having thus described exemplary embodiments of the invention, it will be apparent that various alterations, modifications, and improvements will readily occur to those skilled in the art. Alternations, modifications, and improvements of the disclosed invention, though not expressly described above, are nonetheless intended and implied to be within spirit and scope of the invention. Accordingly, the foregoing discussion is intended to be illustrative only; the invention is limited and defined only by the following claims and equivalents thereto.