SYSTEM AND METHOD FOR PROVIDING A MOTORIZED AND MODULAR AUTOMATED HIGH-RESOLUTION MATTRESS AND MATTRESS-BED ASSEMBLY FOR PREVENTION AND HEALING BED SORES
20250186280 ยท 2025-06-12
Inventors
Cpc classification
International classification
Abstract
The present invention is a modular mattress assembly that can prevent the appearance of bed sores and can heal the developed sores by spreading the weight of the body on the mattress using an array of motorized support. The modular mattress is an array of small cushionettes each placed on top of a linear motion mechanism. Each cushionette can be adjusted in height independently of any other cushionettes through the electrical linear motion mechanism. This actively adjustable array mechanism of the mattress which can extend infinitely in Z-axis through motorized linear actuator brings a high resolution of the shape of the mattress. The array can change position in XYZ axis to accurately accommodate the patients medically required shape and skin contact points. The device uses predefined and amended algorithms to adapt the patients' situations individually or provide personalized treatment.
Claims
1. (canceled)
2. The mattress system of claim 11, wherein the plurality of sensors are pressure sensors.
3. The mattress system of claim 2, wherein the pressure sensors are piezoelectric sensors.
4. The mattress system of claim 11, wherein the controller unit is a Programmable Logic Controller unit (PLC).
5. The mattress system of claim 11, further having a patient monitoring system coupled to the controller unit, said patient monitoring system configured to receive and analyze a set of pressure data associated with each of the plurality of sensors, wherein the patient monitoring system makes an independent assessment of an adjustment to be made to the support surface.
6. The mattress system of claim 11, wherein the controller unit comprising: a) a pressure monitoring module configured to determine whether a pressure adjustment needs to be made to the support surface and isolate one or more cushionettes of the plurality of cushionettes, and b) a support surface adjustment module configured to adjust one or more cushionettes of the plurality of cushionettes in the support surface, wherein the pressure monitoring module communicates adjustment information to the support surface adjustment module.
7. The mattress system of claim 11, wherein the motor is a stepper motor equipped with a feedback measurement system.
8. The mattress system of claim 11, wherein the motor is selected from the group consisting of an electric motor, a magnetic motor, a DC motor, a servo motor, and a stepper motor.
9. The mattress system of claim 11, wherein the plurality of sensors further comprising temperature sensors that generate information indicating ambient temperature, pH sensors, biological sensors and chemical sensors.
10. The mattress system of claim 11, wherein each corresponding cushionette of each moving linear actuator has a square, an oval, a spherical or a cylindrical shape.
11. A mattress system comprising: a) a support surface to support a body of a user, comprising a plurality of cushionettes, wherein the plurality of cushionettes define a resolution of the support surface, and the support surface is divided into a plurality of zones, wherein each of the plurality of zones is defined by a set of cushionettes in contact with a part of the body of the user; b) an array of moving linear actuators placed below the support surface, wherein each moving linear actuator comprising: an upright shaft defining a Z-axis and having a distal end coupled to a cushionette and a proximal end coupled to a motor, wherein each moving linear actuator is configured to move a corresponding cushionette along the Z-axis to adjust a height of each corresponding cushionette; c) a folding mechanism for the movement of the plurality of cushionettes along an X-axis and a Y-axis, perpendicular to the Z-axis and parallel to the support surface, wherein the folding mechanism changes locations of the plurality of the cushionettes in the X and Y axes; d) a plurality of sensors, each sensor configured to measure a pressure exerted on each of the plurality of cushionettes, wherein at least one sensor is provided in each of the plurality of zones, and a controller unit configured to control the operation of said array of moving linear actuators and to communicate with the plurality of sensors and obtain data therefrom and to determine whether adjustments are to be made to the support surface to reduce or increase pressure in one or more zones of the plurality of zones, whereby the mattress system can measure a weight of the user, assign a plurality of topography to the support surface, memorize and log each topography and change it in specific intervals, measure the weight applied on each cushionette independently and assign a specific height in the Z-axis to each cushionette, thereby, spread the weight in high resolution and precision on the cushionettes, elevating or lowering each zone of the plurality of zones under the body of the user to alleviate pressure and disconnect the affected skin from the mattress system.
12. The mattress system of claim 11, wherein the folding mechanism is selected from a group consisting of scissor folds, sliding rails, or a nut and screw mechanism.
13. The mattress system of claim 11, further having a thermometer, a hygrometer, a voice command unit, and/or cameras.
14. (canceled)
15. (canceled)
16. (canceled)
17. A method for manipulating a support surface of a modular mattress system to facilitate rolling or sliding a user, comprising: a) mapping a body position of the user by a controller; b) defining boundaries of the body of the user by the controller to implement a criteria for safety; c) applying increased pressure by a plurality of motors to elevate a first array of cushionettes arranged in a longitudinal line beneath one side of the user and raise the cushionettes to form a vertical safety grill bars on one side of the user; d) lowering a second array of the cushionettes positioned opposite the first array to their lowest position forming a sloped surface to roll the body of the user, whereby, the slow and programmed adjustment of a height of cushionettes can safely maneuver the body of the user to assume various shapes for various care actions such as the purpose of cleaning, bathing, feeding and massaging.
18. The method of claim 17, wherein the controller is a AI controller.
19. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0039] Embodiments herein will hereinafter be described in conjunction with the appended drawings provided to illustrate and not to limit the scope of the claims, wherein like designations denote like elements, and in which:
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DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0072] In conventional APM (Alternating Pressure Mattress) systems, the alteration of mattress shape is typically achieved by creating channels within the mattress and periodically pumping air into these channels to generate inflated and deflated cells following a predefined pattern. However, a significant limitation of these systems lies in their inadequate resolution and awareness concerning the exposed area. Present APMs passively modify the pressure surface without discerning which portions of the mattress are in contact with the skin or to what degree, thereby employing a generalized one size fits all approach.
[0073] In
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[0075] The surface area of the skin exposed to the inflated channels depends on the patient's position and location on the bed, variables that are not predetermined. Consequently, the adjustment in mattress surface or shape adheres to a pre-established pattern that is often irrelevant to the specific affected region. If the patient's position on the mattress does not align with the alternating shape, the risk of developing ulcers persists regardless of the frequency or extent of mattress shape changes. Therefore, a system is needed that can precisely determine the optimal pressure to apply, the specific locations for application, and the appropriate duration. This system should incorporate high-resolution sensors to continuously monitor and adapt the pressure patterns for improved performance.
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[0077] The motorized system 100 can be used in one of many forms, including but not limited to, a bed including a mattress and bed frame, such as a hospital bed configured for use during or after medical procedures, a conventional bed used for sleeping, a mattress for a bed, a mattress cover configured to be placed on top of a mattress, a chair such as a wheelchair, couch, or any other suitable device.
[0078] In some embodiments, each of linear motion actuator 120 and the correspondent cushionette 101 are in the shape of a square and are arranged to form a square grid. In other embodiments, The linear motion actuator 120 and the corresponding cushionette 101 can be in a shape other than a square. For example, a non-square rectangle, an oval, a sphere, a cylinder, or any other suitable geometric shape.
[0079] Each cushionette 101 can be adjusted in height independently of the others through electric signals controlled by an electrical motor 110. The combined adjustment of the cushionettes 101 form a shape that optimally supports the weight of the patient. The weight applied on each cushionette 101 is measured by using motors feedback system. The weight applied on each cushionette 101 can further be measured using other input devices.
[0080] Each motorized linear actuator 120 can be powered by an electric or magnetic motor 110, which may include but is not limited to a DC motor, a servo motor, or a stepper motor. These motors are coupled to the linear actuator 120 that can include but is not limited to a lead-screw/nut, geared lead-screw/nut, hydraulic motion, motion belt, chain-driven motion, magnetic motion, etc. The mechanism for motor-induced motion can vary mechanically, magnetically induced rotary motion, magnetic linear motor, etc. Each motor 110 can raise or lower one or multiple cushionettes 101 by several meters or as small as micrometers, resulting in a precise surface topography that optimally distributes the patient's weight. Additionally, motor 110 can employ various methods, such as gearing or position shifting, allowing one motor to adjust the height of multiple independent cushionettes 101.
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[0082] The resolution of the support surface 200 is determined by the number of cushionettes 101 that contains the support surface 200. For instance, an array of 48 cushionettes, as shown in
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[0084] According to
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[0086] The lack of specificity poses a significant limitation on existing air inflatable Alternating Pressure Mattresses (APMs), leading to inefficiency in their functionality. These APMs, irrespective of the patients' body position, weight, or the location of bed sores, maintain a uniform configuration on the mattress surface. In contrast, the present invention addresses this limitation by enabling the support surface to dynamically adapt to the location of bed sores. through the implementation of logical and mathematical algorithms.
[0087] Referring to
[0088] By obtaining precise weight data from each cushionette, a comprehensive map of weight distribution can be generated, recorded, and inputted into an automated intelligent algorithm or an AI-powered system. This facilitates the optimal distribution of the specific patient's body weight, enhancing the effectiveness of the mattress system in mitigating pressure-related issues.
[0089] The present invention addresses this limitation by enabling the support surface to dynamically adapt to the location of bed sores through the implementation of logical and mathematical algorithms.
[0090] The linear motion mechanism in the present invention is made of any sturdy material such as steel, aluminum of hard plastic to guarantee the weight support. An array of 128 cushionettes, bears only 580 grams of load per cushionettes for a 75 Kg patient, assuming all the weight of the body is borne by all the cushionettes.
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[0095] The support surface 400 can achieve these alterations in surface topography to modify the body position based on the patient's anatomy. As shown in
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[0100] The PLC controller 650 can measure the weight of the patient, assign certain patterns to the support surface 610, memorize and log the topography and change it in specific intervals. The PLC controller 650 can measure the weight applied on each cushionette independently. By assigning a specific position in Z-axis to each cushionette, it can spread the weight rapidly and in high resolution and precision. The PLC controller 650 can learn the best patterns to make throughout the day by connecting to an Artificial Intelligence server or by using an embedded AI chip and software application. The PLC controller 650 can also take measurement of other additive sensors including but not limited to a thermometer, a hygrometer, a voice command unit, cameras, etc. The PLC controller 650 can assume extended function in order to optimally control of the arrayed mattress to serve its goals. Various input devices such as cameras, IR sensors, LIDARS, thermal sensors, vital signal sensors and time measurement devices can be attached to the bed assembly whether controlled through a PLC or controlled independently.
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[0102] The system comprises one or more sensors 711-712. A PLC Controller 750 can be configured to communicate with the one or more sensors 711-712 and obtain data therefrom. Sensors 711-712 may be placed at any location. Various types of sensors can be implemented. For example, integrated or external sensor can be selected from various type of sensors including but not limited to pressure sensors, temperature sensors that generate information indicating ambient temperature, a pH sensor element or other biological or chemical sensors. The mattress-bed assembly 700 can comprise other types of sensors or combinations thereof, as would be apparent to persons skilled in the relevant art(s). These sensors 711-712 may be placed at zones highly susceptible to pressure injuries such as the sacrum, back of the head, elbows, shoulders, ankles, etc. In an embodiment, these sensors are placed in a location most likely to have direct or indirect contact with the cushionettes 702 likely to exert pressure.
[0103] In an embodiment, PLC controller 750 is configured to receive data from the sensors 711-712 and to determine whether adjustments should be made to support surface 710 to reduce pressure in one or more zones. Controller 750 is further configured to cause adjustments to be made to the support surface 710. A patient monitoring system 760 may be added to the motorized mattress-bed assembly. The controller 750 may be connected to the patient monitoring system 760. Patient Monitoring system 760 receives sensor data over network, and processes the data. Monitoring system 760 may store and analyze the pressure data associated with the individual sensors 711-712 and make an independent assessment of whether adjustments should be made to the support surface 710. The bed-assembly may have a camera 770 as an external device.
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[0105] Communications network 850 is a publicly accessible communications network. Communications network 850 may be a wired network, wireless network, or a combination therefore. In another embodiment, communications network 850 is a private network or a hybrid network including public and private portions. Persons skilled in the relevant art(s) will recognize that various network architectures could be used for communication network 850.
[0106] Controller 820 may comprise a pressure monitoring module 830 and a support surface adjustment module 840. Pressure monitoring module 830 is configured to map the location of the patient on the surface, to determine whether a pressure adjustment needs to be made to the support surface and isolates one or more cushionettes to adjust. Pressure monitoring module 830 communicates adjustment information to support surface adjustment module 840.
[0107] Support surface adjustment module 840 is configured to adjust one or more cushionettes in the support structure. The Controller is a PLC controller comprising logic to determine the amount of adjustment to make to a specific cushionette.
[0108] Monitoring system 860 receives sensor data over network 850, and processes the data. Monitoring system 860 may store and analyze the pressure data associated with the individual sensor 810 and make an independent assessment of whether adjustments should be made to the support surface. The monitoring system 860 may comprise a database 870 to store Records for individuals for healthcare providers. A healthcare provider may determine, if medical intervention is necessary based on sensors, controller, and/or monitoring system.
[0109] The patient monitoring system 860 is a real-time patient monitoring system equipped with various sensors that provides an intelligent high efficiency patient specific solution for preventing and healing bed sores. The system of the present invention is aware of the location and the extent of the touch between the skin and the surface through sensors (camera, piezo, thermometer, hygrometer, etc.) or by native current feedback to the motors or any other technology that provides such means. The system can measure the result of the previous status of the patient and learn to improve the alternating pressure algorithm. The feedback mechanism can actively measure the exposure time and pressure and decide what part of the support surface should change pattern for a specific patient with a specific body shape. The system can benefit from predefined algorithms or learn by training Artificial Intelligence to adapt the patients' situations individually or provide personalized treatment. The present invention is an active system that adjusts the points of contact through feedback and re-adjusts the spread of pressure on the total area of the mattress.
[0110] The pattern of the appearance of bed sores on the body is different in every patient and depends on the type of disability, the anatomy of the person and the assistance provided, thus the system can have an integrated digital algorithm powered solution (such as Artificial Intelligence) that can watch for the development of the bedsore and decide to change the pressure pattern or to keep with a pre-programmed system.
[0111] The method for adjusting the modular support surface comprising of steps of: [0112] a) obtaining pressure data from one or more sensors placed on the plurality of cushionettes of the support surface; [0113] b) generating a comprehensive map of pressure distribution on the modular support surface; [0114] c) inputting the comprehensive map of the pressure distribution into an automated intelligent algorithm or an AI-powered system; [0115] d) determining by the AI-powered system whether the pressure data needs adjustment, and [0116] e) moving the plurality of linear actuators to a specified heights to provide an alternate pressure distribution on a body of a patient, wherein the AI-powered system is configured to identify a patient's body position and boundaries on the modular support surface and define the one or more cushionettes of the modular support surface to be adjusted.
[0117] The AI-powered system is trained using a set of images obtained from a user or using a set of bedsore locations of a large number of patients and adjust the pressure distribution over a pre-defined period of time after an initial adjustment is made to prevent formation of ulcers.
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[0121] In step 1120-1130 the system moves every motor about 5-10 cm and records the feedback electrical signal in the status of no load on the motor. In the next step 1140, the system goes back to the Baseline position. In next steps 1150-1160 the user places a calibration weight of 500 g on the cushionette and the system moves the motor upwards again and measures the electrical feedback when a 500 g load is born by the motor. In step 1170 the patient is lied on the motorized mattress and in step 1180-1190 the system records the electrical feedback. The pressure applied to the specific contact point after the patient is lied on the bed is measured by the following formula:
Patient body pressure=(Pressure at the body contact point 1190Pressure at no load 1130)(Pressure for 500 g load 1160Pressure at no load 1130)
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[0125] In step 1310 an individual is lied down on the bed when all motors are down in the Baseline. In step 1320 all motors raise slightly to measure the contact pressure of each cushionette with the body, as described before, in the Baseline. The system can now generate a map of the body contact point on the mattress 1330. Separately, in step 1340 a picture of an individual lying on the bed is taken and in step 1350 is fed to the AI engine as the training set. In step 1360 the AI engine will combine the pressure map with the picture taken from individuals lying on the bed to learn the body position and location using only the pressure map. This process can be repeated many times in step 1370 until the system shows sufficient accuracy defined by standards elsewhere. If approved, the AI assisted positioning model is saved in step 1380 on the storage of the system or on the server to be used for real patients.
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[0127] In Step 1440, the motors move up and down to apply the alternating pressure, considering lower pressure around the bed sore, using the pressure map generated in step 1430. At the same time, in step 1450, the system constantly monitors the pressure on each motor. As in step 1460, if the motors do not show the expected pressure after moving to the calculated height, the system can re-adjust the height until it achieves the expected pressure. If pressure is good as in step 1470 the alternating pattern continues.
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[0129] In step 1530, the cushionettes around the body raise significantly (10-50 cm) to secure the body in place. In step 1540 the AI controller maps the location of the knees according to the method described above. In step 1550 the cushionettes under the knee rise enough to bend the knees up to a certain amount. This height can be defined by the professionals depending on the patient's height, body shape and joints condition. Then the motors go back to position zero in step 1560 to straighten the leg.
[0130] According to step 1570, the steps 1550-1560 can be repeated as described before. At the end of the exercise, step 1580, all motors move down to place the motorized mattress in a Baseline flat shape.
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[0132] In step 1640 the software defines what is the best strategy to move the motors sequentially for a roll-over movement. According to step 1650, raising the cushionettes in the right order, can result in forming a sloped surface, where the body is rolled to left and is lying on the left part of it. After the patient is lied on its left, a caregiver needs access to the back of the patient for cleaning. Therefore, in step 1660-1670, the AI system finds which cushionettes should move down and applies the movement. These steps expose the patient's buttocks area for sponge cleaning. After cleaning, the bed can return to its baseline shape according to the step 1680.
[0133] The foregoing is considered as illustrative only of the principles of the invention. Further, since numerous modifications and changes will readily occur to those skilled in the art, it is not desired to limit the invention to the exact construction and operation shown and described, and accordingly, all suitable modifications and equivalents may be resorted to, falling within the scope of the invention.
[0134] With respect to the above description, it is to be realized that the optimum relationships for the parts of the invention in regard to size, shape, form, materials, function and manner of operation, assembly and use are deemed readily apparent and obvious to those skilled in the art, and all equivalent relationships to those illustrated in the drawings and described in the specification are intended to be encompassed by the present invention.