The invention disclosed herein generally relates to spinal care systems. More particularly, the invention relates to an automated posture correction system for dynamically improving a posture of a user by selective application of force on predetermined sections of a spinal area of the user.
Posture, in general, refers to the positioning of the body against gravity while standing, sitting, or walking. An incorrect posture, over time, contributes to a majority of spine related aches or injuries. Since posture is a characteristic unique to an individual, there is no single overarching solution to the problem. Spinal pain is a significant medical problem that effects a large percentage of the population. Conventionally, various treatment methods have been implemented to alleviate or prevent pain in the cervical, thoracic, or lumber region of the spine. One of these treatment methods has been the use of devices, for example, braces, supportive and restrictive corsets, etc. These devices limit the range of motion of the spine in a passive or active way. Active movement of the spinal region refers to the patient using his/her muscles to move the spinal region, for example, flexion/extension of side bending. Alternately, passive movement of the spinal region refers to movement of the spinal region facilitated by an external force, for example, gravity, a therapist, etc. Incidentally, braces used presently are either flexible and do not restrict patient's motion to a significant degree or are made of non-flexible material where a patient's spine would not be able to move actively. A system, which dynamically adapts and supports a spinal region of a user for improving the posture of the user, is required.
Additionally, an orientation of the spinal region is dependent on a multitude of other factors, for example, age, gender, etc. For individuals of a particular age group, the corrective action or method used for posture correction depends also on the existing health condition of the individual/s. In some cases, due to the lack of strength in the spinal muscles of a patient, it is highly disadvantageous to travel multiple times to consult a physician. With the advent of remote health care methods, it is now possible for a patient to consult a physician remotely from the comforts of his/her home. However, with regard to posture correction, there is a lack of a system, which allows a physician to manipulate the posture of the patient with the help of a remote electronic device. Such an improvement in the art will permit more independence on the part of a patient to consult a remote physician and receive corrective action based on the individual's age, gender, existing health condition, etc.
Hence, there is a long felt but unresolved need for a system, which dynamically adapts and supports a spinal region of a user for improving the posture of the user. Furthermore, there is a need for a system, which allows a physician to manipulate the posture of the patient with the help of a remote electronic device.
This summary is provided to introduce a selection of concepts in a simplified form that are further disclosed in the detailed description of the invention. This summary is not intended to identify key or essential inventive concepts of the claimed subject matter, nor is it intended for determining the scope of the claimed subject matter.
The automated posture correction system, disclosed herein, addresses the above-mentioned need for a system, which dynamically adapts and supports a spinal region of a user for improving the posture of the user. Furthermore, the invention addresses the need for a system, which allows a physician to manipulate the posture of the patient with the help of a remote electronic device. The automated posture correction system for dynamically improving a posture of a user by selective application of force on predetermined sections of a spinal area of the user comprises a spinal brace and an electronic device. The spinal brace is configured to be worn by the user comprising a plurality of inflatable elements and at least one actuator. The inflatable elements are positioned along the length of the predetermined sections of the spinal area of the user.
The inflatable elements comprise one or more sensors for detecting one or more parameters of the spinal area. The electronic device is configured to receive sensor data variables generated by the one or more sensors based on the detected one or more parameters via a communications network. Further, the electronic device is configured to compare the one or more parameters with a set of preset reference values stored in a non-transitory readable computer storage medium of the electronic device. The electronic device then actuates the at least one actuator to inflate or deflate the inflatable elements. The inflatable elements are either inflated or deflated based on the sensor data variables differing from the set of preset reference values. The inflatable elements due to their inflation or deflation selectively apply force on the predetermined sections of the spinal area for dynamically improving the posture of the user.
The foregoing summary, as well as the following detailed description of the invention, is better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, exemplary constructions of the invention are shown in the drawings. However, the invention is not limited to the specific methods and structures disclosed herein. The description of a method step or a structure referenced by a numeral in a drawing is applicable to the description of that method step or structure shown by that same numeral in any subsequent drawing herein.
As used herein, a “non-transitory readable computer storage medium” refers to a memory unit of the electronic device for storing computer program instruction and other data required by the automated posture correction system 100. As such, the terms “non-transitory readable computer storage medium” and “memory unit” are used interchangeably in the specification and the drawings to represent the same component. The electronic device 102 comprises a memory unit 106 and a processor 107. The non-transitory readable computer storage medium 106 stores computer program instructions defined by modules of the automated posture correction system 100. The processor 107 is communicatively coupled to the non-transitory readable computer storage medium 106 to execute the computer program instructions defined by the modules of the automated posture correction system 100. In an embodiment, the modules of the automated posture correction system 100 comprise an input module 108, a comparator module 109, and an actuating module 110. The input module 108 is configured to receive the sensor data variables via a communications network 112. In an embodiment, the communications network 112 is, for example, a Wi-Fi network, a Bluetooth network, an NFC communications protocol, a Bluetooth Low Energy (BLE) network, etc. The comparator module 109 is configured to compare the sensor data variables with a set of preset reference values stored in the non-transitory readable computer storage medium 106.
The actuating module 110 is configured to trigger the at least one actuator 104 to one of inflate and deflate the inflatable elements 103 based on the sensor data variables differing from the set of preset reference values. The inflatable elements 103 selectively apply force on the predetermined sections of the spinal area for dynamically improving the posture of the user. As used herein, the “predetermined sections” of the spinal area refer to sections of the spinal area that the automated posture correction system 100 identifies as weak or having an incorrect inclination relative to the vertical axis. The automated posture correction system 100 does so by comparing the sensor data variables generated by the sensors 105 with a set of preset reference values. As used herein, the “set of preset reference values” comprise a reference position of the spinal area, an inclination of the spinal area relative to a vertical axis, and relative distances of the inflatable elements from the vertical axis. The set of preset reference values vary based on a gender, an age, and a health statistic of the user. The data associated with the gender, age, and the health statistic of the user is entered into the application installed on the electronic device 102. In an embodiment, the electronic device 102 is, for example, a smart phone, a laptop, a tablet, a smart watch, a personal computer, etc.
Since restricting muscle-movement to maintain proper posture of the spine leads to muscle atrophy and weakness, this feature of the automated posture correction system 100 is advantageous. This would remind the individual to maintain proper posture using appropriate musculature and once the person has done so, the inflatable elements 103, exemplarily illustrated in
A set of reference values for an optimum posture is pre-programmed in the electronic device 102 based on a patient's height, weight, etc., or as assessed by a specialist. The specialist then populates the information on the electronic device 102. The inflatable elements 103, exemplarily illustrated in
In an embodiment, the electronic device 102 is capable of communicating wirelessly with the wearable spinal brace 101 via the communications network 112 as exemplarily illustrated in
The foregoing examples have been provided merely for the purpose of explanation and are in no way to be construed as limiting of the automated posture correction system 100, disclosed herein. While the automated posture correction system 100 has been described with reference to various embodiments, it is understood that the words, which have been used herein, are words of description and illustration, rather than words of limitation. Further, although the automated posture correction system 100, has been described herein with reference to particular means, materials, and embodiments, the automated posture correction system 100 is not intended to be limited to the particulars disclosed herein; rather, the automated posture correction system 100 extends to all functionally equivalent structures, methods and uses, such as are within the scope of the appended claims. Those skilled in the art, having the benefit of the teachings of this specification, may effect numerous modifications thereto and changes may be made without departing from the scope and spirit of the automated posture correction system 100 disclosed herein in their aspects.
Number | Date | Country | |
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62331643 | May 2016 | US |