The present invention relates to a personalized sleeping posture correction system for bedding article having multiple pressure sensing and adjustable zones either responsive to an instantaneous sleeping posture or according to decisions of a user.
Mattress is an essential in a civilized lifestyle of human being. A good mattress can provide support for our whole body, especially from the spine all the way to the hip of our back, to rest and relax during sleeping. However, an inappropriate sleeping posture sometimes could worsen the situation that some of our body parts become more stressful during the sleeping, leading to a bad quality of sleep. Ordinary mattress cannot help in this situation, and sometimes even worse.
Many researchers and mattress manufacturers mainly focused on how to improve the materials of the mattress or distribution of the support force to our body during sleeping. There can be divided into two main streams of mattress available on the market, inner-spring coils and all-foam (or a hybrid of both). Although some materials like memory foam can conform to the shape of our body when pressure is applied and provide pressure relief, it may be too soft to some users. On the other hand, the inner-spring mattress is relatively firmer and provides more pressure point relief, but it may be too firm to some users.
In recent years, bedding products with certain pressure sensing mechanisms have been emerged on the market. Though there may be some mattress products that can monitor pressure distribution during sleeping, active adjustment based on the signal from sensor seems to be missing on the market.
US2021372866A1 disclosed a pressure sensor array having a pressure-sensing substrate including a piezoresistive material printed on a filling portion of a fabric by spraying, and a plurality of pressure-sensing columns separated by a non-filling portion of the fabric. Each of the pressure-sensing columns is fixed (by adhesive or stitching) with top and bottom electrodes in a way to form a periodic electrode row and column between the top and bottom surfaces of the substrate. However, this pressure sensor array neither provides any response actions to any sensed pressure exerted thereon nor independent zones customized to fit the anatomy of human body.
CN107744304A disclosed an air inflatable pillow including a first and two second pressure sensors with an air pump and control mechanism, which was claimed to adjust the air inflated or deflated into different airbags of the pillow body corresponding to the pressure exerted on the first and second pressure sensors by the head and neck in order to optimize the height of the pillow. However, no detail of how the height is optimized corresponding to different pressure distribution exerted by the head and neck of the user is provided in this patent disclosure. That patent disclosure simply described how the inflation and deflation of the airbags are controlled, which appears to be known in the art.
CN208371375U disclosed a seat pad and a device for detecting sitting posture. There was provided a pressure sensor array including two layers of conductive wires where one set of conductive wires (M) on one layer is arranged perpendicular to the other set (N) on the other layer, and the two conductive wire layers sandwich a piece of conductive fibrous layer made of piezoelectric fibers with a large resistance when it is not under compression. This pressure sensor array only contains M+N number of signal outputs, although it has M×N number of sensing points on the pad. A microprocessor unit was also provided in this device to adjust the voltage output from the two conductive wire layers and convert the voltage into digital signal before feeding the same to a CPU. A pressure distribution map was an ultimate product in that patent disclosure after processing those voltage output data by the CPU, in order to suggest what type of sitting posture the user of the seat pad was having during the measurement. However, no interactive/correction function or detail of response mechanism was provided in this patent disclosure for the user to adjust the height of the seat pad.
In a co-pending PCT application under the application number PCT/CN2021/122537, a sensory mat for use in pillow incorporated with a piezoresistive fabric layer sandwiched between two electrode layers is provided, where each electrode layer has conductive and non-conductive portions alternately arranged with each other, and the conductive portions of one electrode layer are arranged perpendicular to those of the other electrode. The pillow also includes a number of airbags arranged differently in various embodiments in order to provide multi-zonal responses corresponding to different pressure distributions arising from different sleeping postures of a user during sleeping. The disclosure of this co-pending application also briefly describes an interactive control and response mechanism to adjust the height of different zones of actuators in the pillow according to contact pressure distribution exerted by different head and neck positions during sleeping. However, when the same mechanism applies to bedding articles with a larger contact surface such as a mattress, it may involve a relative larger scale pressure sensing mechanism and actuating means to counteract any inappropriate sleeping postures.
Therefore, there is a need for a personalized, sleeping posture correction system for bedding articles to overcome or at least mitigate the drawbacks in the prior arts.
The present invention provides a system incorporating pressure sensing and imaging techniques to more accurately map pressure distribution exerted by the user and provide a more personalized posture correction instruction to multiple actuators of the system in response to a sleeping posture of a particular user.
In a first aspect, the present invention provides a personalized, system for use in bedding articles, especially for those with a relatively larger contact surface area such as mattress. The present system includes:
In certain embodiments, the present system further includes an image processing module including one or more image capturing devices, one or more image processors, and a data transmission device. In those embodiments, the central processing device further receives image data from the data transmission device, and may process and analyse the image data with the pressure data to eventually provide one or more suggestions of pressure level adjustment in one or more pressure sensing and response zones to the user.
In one embodiment, the one or more image capturing devices include one or more motion sensors.
In certain embodiments, the one or more pressure sensing mechanisms include at least one pressure sensing layer, one or more electrodes having both conductive and non-conductive portions arranged in such a way to substantially cover all the pressure points on the contact surface of the bedding article with the user. In order to substantially cover all the pressure points on the contact surface area of the bedding article, the one or more pressure sensing mechanisms is/are configured to be fabricated as thin as possible, e.g., into a sheet form, for maximizing the surface area overlapping the contact surface of the bedding article with the user. It should be understood that the one or more pressure sensing mechanisms is/are not limited to a particular form, provided that it/they can accurately measure the contact point pressure exerted by the user on the contact surface of the bedding article.
In certain embodiments, the pressure sensing layer is not a continuous, single layer. In those embodiments, the pressure sensing layer may be composed of multiple pressure sensors where each of them has its corresponding electrodes. In some embodiments, each pressure sensor, its corresponding electrodes and corresponding actuator(s) define a pressure sensing and response zone of the present system.
In certain embodiments, the one or more actuators include one or more airbags, where air flow direction, volume and/or flow rate in and out of each of the airbags is/are controlled by an associated valve disposed between the airbag and an air pump. Each or a set of airbags within the same zone can be inflated by one or more air pumps. Each of the valves and/or the air pumps can be controlled electrically or digitally by the central processor automatically or manually by the user. One or more zonal pressure sensors can be incorporated into each or a set of airbags forming the pressure sensing zone to monitor an overall internal pressure of that zone.
Pressure data received by any of the one or more pressure sensing mechanisms and the one or more zonal pressure sensors are transmitted to and processed by the central processor, and it can be further fed to a user terminal that can be fully controlled by the user.
In certain embodiments, the central processor contains a pre-set of pressure data including, but not limited to, pressure distribution mapping data of one or more groups of population categorized by height, weight, gender, age and/or authenticity, etc. The pre-set of pressure data may include the data recorded during different sleeping positions by the present system, including, but not limited to, back, side, and stomach positions.
In certain embodiments, the present system can also be trained by different datasets obtained from users with different background, physical fitness, and characteristics associated with sleeping positions, either received by the present system, from a peer system or a database.
In certain embodiments, the user can select which dataset(s) to be fed into the present system.
In certain embodiments, the user can select which of the pressure sensing and response zones to be activated/deactivated and/or airbags to be inflated or deflated, and/or adjust the volume/flow rate of air pumped into/out of one or more airbags.
In certain embodiments, the central processor includes a plurality of integrated circuits, microprocessors, and chips to receive and process any signals and/or data obtained from the pressure sensing mechanisms, zonal pressure sensors, and/or any external device or system, and provide instructions to the one or more actuators in response to the sensed signals/data automatically or according to the preference of actuation selected by the user manually.
In certain embodiments, the central processor is built based on a multi-layered artificial neural network structure in order to provide machine learning capacity.
In certain embodiments, the user terminal that allows the user to obtain data from, adjust different parameters of, and control operations of the present system can include, but not limited to, a computer terminal, a remote control, and a portable device.
In certain embodiments, the present system further includes a power supply and/or an energy storage element. In other embodiments, the present system is rechargeable by an external power supply.
The bedding articles can include, but not limited to, a pillow, mattress, any support element for human being, shock absorbing and reactive pad, etc.
This summary is provided to introduce a selection of concepts in a simplified form that are further described below in the Detailed Description. This Summary is not intended to identify key features or essential features of the claimed subject matter, nor is it intended to be used as an aid in determining the scope of the claimed subject matter. Other aspects of the present invention are disclosed as illustrated by the embodiments hereinafter.
The appended drawings, where like reference numerals refer to identical or functionally similar elements, contain figures of certain embodiments to further illustrate and clarify the above and other aspects, advantages and features of the present invention. It will be appreciated that these drawings depict embodiments of the invention and are not intended to limit its scope.
The invention will be described and explained with additional specificity and detail through the use of the accompanying drawings in which:
Skilled artisans will appreciate that elements in the figures are illustrated for simplicity and clarity and have not necessarily been depicted to scale.
References in the specification to “one embodiment”, “an embodiment”, “an example embodiment”, etc., indicate that the embodiment described can include a particular feature, structure, or characteristic, but every embodiment may not necessarily include the particular feature, structure, or characteristic. Moreover, such phrases are not necessarily referring to the same embodiment. Further, when a particular feature, structure, or characteristic is described in connection with an embodiment, it is submitted that it is within the knowledge of one skilled in the art to affect such feature, structure, or characteristic in connection with other embodiments whether or not explicitly described.
The terms “a” or “an” are used to include one or more than one and the term “or” is used to refer to a nonexclusive “or” unless otherwise indicated. In addition, it is to be understood that the phraseology or terminology employed herein, and not otherwise defined, is for the purpose of description only and not of limitation. Furthermore, all publications, patents, and patent documents referred to in this document are incorporated by reference herein in their entirety, as though individually incorporated by reference. In the event of inconsistent usages between this document and those documents so incorporated by reference, the usage in the incorporated reference should be considered supplementary to that of this document; for irreconcilable inconsistencies, the usage in this document controls.
Value in a range format should be interpreted in a flexible manner to include not only the numerical values explicitly recited as the limits of the range, but also to include all the individual numerical values or sub-ranges encompassed within that range as if each numerical value and sub-range is explicitly recited. For example, a concentration range of “about 0.1% to about 5%” should be interpreted to include not only the explicitly recited concentration of about 0.1 wt. % to about 5 wt. %, but also the individual concentrations (e.g., 1%, 2%, 3%, and 4%) and the sub-ranges (e.g., 0.1% to 0.5%, 1.1% to 2.2%, and 3.3% to 4.4%) within the indicated range.
In the methods of preparation described herein, the steps can be carried out in any order without departing from the principles of the invention, except when a temporal or operational sequence is explicitly recited. Recitation in a claim to the effect that first a step is performed, and then several other steps are subsequently performed, shall be taken to mean that the first step is performed before any of the other steps, but the other steps can be performed in any suitable sequence, unless a sequence is further recited within the other steps. For example, claim elements that recite “Step A, Step B, Step C, Step D, and Step E” shall be construed to mean step A is carried out first, step E is carried out last, and steps B, C, and D can be carried out in any sequence between steps A and E, and that the sequence still falls within the literal scope of the claimed process. A given step or sub-set of steps can also be repeated.
It will be apparent to those skilled in the art that modifications, including additions and/or substitutions, may be made without departing from the scope and spirit of the invention. Specific details may be omitted so as not to obscure the invention; however, the disclosure is written to enable one skilled in the art to practice the teachings herein without undue experimentation.
The present invention incorporates the pressure sensing and response mechanisms and the actuator system disclosed in a co-pending PCT application under the application number PCT/CN2021/122537 into the present system for providing a larger pressure sensing and response surface area and a user experience learning mechanism to allow a more interactive and personalized bedding article according to the background, physical fitness, and also preference of a user.
Accordingly,
Disposed under the topping layer 110 is a pressure sensor mat 120 which is flexible with a plurality of pressure sensors and electrodes to convert the pressure signals into electric current and subsequently as digital signals to be further analyzed and processed by the present system. In order to provide a flexible whilst sensitive pressure sensory mat 120, the pressure sensing layer is preferably made of conductive and flexible materials such as conductive fabrics and deposited with piezoelectric or piezoresistive materials at certain areas throughout the whole surface.
Disposed under the pressure sensory mat 120 is an actuator system 130 being separated into a plurality of compartments (represented by dotted lines) each accommodating one or more actuators, one or more valves, and/or optionally zonal pressure sensor (an example of the actuation system is shown in
Disposed under the actuation system 130 is a bottom layer 140 to provide support for the loading of the bedding article 100 and also protect the actuation system 130. Since this is a loading support and backing of the bedding article 100, materials or mechanism used to form the bottom layer 140 can be relatively more rigid than those for the topping layer 110. In some embodiments, the bottom layer 140 can also be a flexible layer that is inflatable by any possible medium such as air or water.
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In certain embodiments, the width of the conductive columns 13 and the conductive rows 14 are approximately in a range from 1 mm to 100 mm, or preferably from 5 mm to 50 mm, or the width can be tuned based on the application requirement. In addition, the conductive columns 13 or conductive rows 14 are usually spaced apart by the non-conductive region 22 with a space in a range approximately from 1 mm to 100 mm, or preferably from 5 mm to 50 mm, depending on the resolution requirement of the pressure sensor mat. The crossing point or overlaying area where each of the conductive columns 13 intersects with each of conductive rows 14 is characterized as one sensor.
In certain embodiments, the pressure sensing layer is not a continuous, single layer. In those embodiments, the pressure sensing layer may be composed of multiple pressure sensors where each of them has its corresponding electrodes. In some embodiments, each pressure sensor, its corresponding electrodes and corresponding actuator(s) define a pressure sensing and response zone of the present system. In other words, the corresponding electrodes of each of the pressure sensor can operate independently from any neighboring electrodes of the other pressure sensor. By such a configuration, it may avoid any failure or disruption of electrical connection among a series of sensors if there is only one single electrode electrically connecting those pressure sensors along either longitudinal or vertical axis as in some conventional pressure sensing mat or pillow. A discontinuous pressure sensing layer under multiple pressure sensing and response zones may also enhance pressure sensitivity and response specificity to a particular sleeping posture.
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In an exemplary embodiment, the pressure sensing layer 24 is made of piezoelectric materials having a high initial resistivity such as piezoresistive ink, and is sandwiched between the top electrode 20 and the bottom electrode 21. In certain embodiments, the conductive materials in the piezoresistive ink can include one or more of conductive polymer, nano material, and binder such that it does not only provide piezoresistance but also strengthen adhesion to the fabrics. The sheet resistance of the pressure sensing layer 24 is at about or greater than 50 K ohm/square to minimize crosstalk one sensor with the neighboring sensors, in particular, in a large area pressure sensor mat where multiple sensors can be pressed at the same time. In other embodiments, the sheet resistance of the pressure sensing layer 24 is adjustable by adjusting the concentration of conductive material in order to tune the overall resistance of the piezoresistive ink. Viscosity of the ink is also tunable according to the selected printing/coating method such as spray coating or dispensing. In order to maintain a soft feeling during contact, it is preferred to coat the fabric partially with the ink in the designated sensing areas 31 instead of the whole fabric.
In other embodiments, the pressure sensing layer 24 can be a textile made of piezoresistive yarns. The piezoresistive yarns have high resistivity and can be woven or knitted into blank fabric without pattern. The resistivity of the piezoresistive layer can limit the sensitivity and sensing range of sensors. Piezoresistive fabric used to form the pressure sensing layer of the present invention can include, but not limited to, cotton fabric, blended fabric and synthetic fabric such as polyester and LYCRA, or any fabric that can provide certain elasticity to the pressure sensor mat.
To establish a complete circuit for each of the sensors, the designated areas 31 deposited with the piezoresistive ink on the pressure sensing layer 24 preferably aligns with the intersects between the conductive columns 13 in the top electrode 20 and the corresponding conductive rows 14 in the bottom electrode 21. In addition, the pressure sensing layer 24 is optimized to achieve a uniform conduction path between the top electrode 20 and the bottom electrode 21 for each of the sensors on the pressure sensor mat 120.
With a continuous pressure data collected over time through the pressure sensor mat 11, an actuator system 130 is provided to adjust the support through an instant change of shape of the bedding article in response to any significant change in pressure from a preceding time to a present time. The actuator system 40 in the present invention includes one or more airbags each of which is preferably made of flexible materials including, but not limited to, rubber, forming multiple actuation zones of the bedding article.
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In Example 1, when the sleeping posture of a user is a back (supine) position, according to the curvature of the back of the user and corresponding detected pressure levels at different pressure sensing points of the pressure sensory mat, the present system will suggest which part(s) of the user's body should be provided with more support, and let the user to decide the state and/or degree of inflation/deflation of a particular or a zone of inflatable actuators (i.e., airbag in various embodiments). Alternatively, the user may select automatic adjustment mode to let the present system to decide the state and/or degree of inflation/deflation of one or more airbags according to various factors including, but not limited to, instantaneous pressure data from the pressure sensory mat, trained models stored in a corresponding database/network, and user's experience/preference. In Example 1, after sensing and analysing the pressures exerted on different pressure sensing points of the pressure sensory mat, the pressure level of the corresponding actuators in the pressure sensing and response zones adjacent to shoulder, waist and hip sections at the back of the user have been adjusted.
Example 2 in
Example 3 in
For simplicity of illustration, only one column of actuators is shown from a side view of a mattress in each example of
To summarize, the present system includes multiple sensors capable of operating independently from each other, and those sensors include, but not limited to, pressure sensor, motion sensor, light sensor, temperature sensor, and humidity sensor, etc. The present system also includes a plurality of actuators such as inflatable airbags controlled by corresponding air valve(s) in order to respond to a sleeping posture captured at one instance. The data obtained from the multiple sensors are received and processed by a central processor or processing unit, which can be a computer system or a network of computers with or without machine learning or deep learning ability. The corresponding central processor or processing unit can also feed the received data or suggested action to one or more external devices including a user terminal under control by the user. The central processor or processing unit can also send instruction directly based on its own analysis or upon receipt of further instruction from the user to act on the inflation or deflation of the corresponding actuator(s) in response to the instantaneously captured sleeping posture. The present system can sense and respond to a series of sleeping postures real-time throughout a sleeping course or session, or until an active termination by the user. The present system can also optionally be connected to a cloud computing system or a server to store or retrieve data received from the sensors or from a comparable, authorized system or device. The present system can also be equipped with an automatic termination mechanism in case where there is an emergency causing harm to the user such as short circuit, current overflow, or certain system failure. Such an automatic termination mechanism can include, but not limited to, a load switch, integrated power MUX device, electronic fuses, hot swap controllers, ideal diode, ORing controllers, smart high-side or low-side switches.
Although the invention has been described in terms of certain embodiments, other embodiments apparent to those of ordinary skill in the art are also within the scope of this invention. Accordingly, the scope of the invention is intended to be defined only by the claims which follow.
The present invention does not only apply to specialized bed pad or mattress for sports training, medical and rehabilitation purposes, but also to regular bedding articles because the present system provides an easy-to-understand pressure data analysis and suggested correction actions for regular users, instead of complicated pressure distribution map that most of the conventional systems/devices aim to generate.
Filing Document | Filing Date | Country | Kind |
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PCT/CN2022/081894 | 3/21/2022 | WO |