PROSTHETIC SYSTEM WITH MOTORIZED HYDRAULIC PUMP DESIGNED TO CONTROL THE INFLATION OF AN INFLATABLE ELEMENT
20220125589 ยท 2022-04-28
Assignee
Inventors
Cpc classification
A61F2250/0001
HUMAN NECESSITIES
A61F2250/0003
HUMAN NECESSITIES
International classification
Abstract
The invention relates to a prosthetic system including; an implanted device including: at least one inflatable element (1) that can be inflated in response to a pressure of a fluid; a tank (2) for the fluid in communication with the inflatable element; a sealed case (3) in which is mounted a motor-driven pump supplied with energy by a wireless energy transfer system, part of which (30) is mounted in the case, this pump being in communication on the one hand with the inflatable element via a one-way discharge obturator and on the other hand with the tank via a one-way suction obturator; a manual command for deflating the inflatable element (1) acting simultaneously on the one-way suction and discharge obturators; the control case (B) integrating another part of the energy transfer system and ensuring the control of the operation of the energy transfer system.
Claims
1. A hydraulic prosthetic system including a device implanted (A) in the body of a patient and a control case (B) outside the patient's body; the implanted device including: at least one inflatable element (1) that can be inflated in response to a pressure of a fluid; a tank (2) for the fluid in communication with the inflatable element; a sealed case (3) in which is mounted a motor-driven pump (4) driven by an electric motor (17) supplied with energy by a wireless energy transfer system, part of which (30) is mounted in the case, this pump being in communication on the one hand with the inflatable element via a one-way discharge obturator (14) and on the other hand with the tank (2) via a one-way suction obturator (13), the pump ensuring only the circulation of the fluid from the tank (2) to the inflatable element (1) to ensure its inflation; a manual command (40) for deflating the inflatable element (1) accessible from outside the sealed case (3) and acting on the one-way suction obturator (13) and on the one-way discharge obturator (14) to open the communication between the inflatable element (1) and the tank during its manual actuation; the control case (B) integrating another part (28) of the energy transfer system and ensuring the control of the operation of the energy transfer system.
2. The system according to claim 1, according to which the motor-driven pump (4) includes a bellows (18) delimiting a chamber (15) for the fluid whose volume varies under the action of the electric motor, this chamber (15) communicating with the inflatable element (1) via the one-way discharge obturator (14) and with the tank (2) via the one-way suction obturator (13).
3. The system according to claim 2, according to which the electric motor (17) acts on the bellows (18) via a system (20) for transforming the rotational movement of the electric motor into a translational movement ensuring the compression and the expansion of the chamber for the fluid.
4. The system according to claim 3, according to which the system for transforming (20) the rotational movement of the electric motor (17) into a translational movement includes a set of rollers (22) driven in rotation by the rotor of the electric motor and cooperating with a cam (23) fixed to the bellows (18).
5. The system according to claim 1, according to which each one-way suction (13) and discharge (14) obturator is elastically returned to its closed rest position.
6. The system according to claim 5, according to which each one-way suction (13) and discharge (14) obturator includes a valve (13a, 14a) biased by a spring (13d, 14d) to bear on a seat (13c, 14d) presented by the case, the valves being carried by an actuation rod (13b), one free end of which is accessible from outside the case to constitute the manual command (40) for deflating the inflatable element (1).
7. The system according to claim 6, according to which the wireless energy transfer system includes a transmitting antenna (28) integrated into the control case (B) and a receiving antenna (30) mounted in the sealed case (3) and connected to an electronic card (31) for conversion into a direct current supplying the electric motor.
8. The system according to claim 1, according to which the control case (B) includes a button (33) for activating the wireless energy transfer system and a timing of the operation of the wireless energy transfer system after a determined duration of transmission.
9. The system according to claim 1, wherein at least one inflatable element (1) is a penile implant.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021]
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF THE EMBODIMENTS
[0026] As seen more specifically in
[0027] The implanted device A includes at least one and in the illustrated example, two inflatable elements 1 that can be inflated in response to a pressure of a fluid. According to this preferred exemplary embodiment, the prosthetic system 1 aims to create a penile implant in order to create an erection. According to this application, the two inflatable elements 1 are each in the form of an elongated body intended to be placed in the cavernous bodies of the penis of a man and intended to occupy a straight erection position during the inflation of the inflatable elements 1 and a folded position when the inflatable elements 1 are deflated.
[0028] Of course, the inflatable element 1 can have different shapes depending on the intended applications. Thus, the inflatable element 1 may be in the form of a cuff able to surround a member provided with an internal passage intended to be closed or opened by constriction by this inflatable element. For example, this inflatable element can be an esophageal sphincter, a gastric band or a urinary or anal sphincter.
[0029] The implanted device A also includes a tank 2 for the fluid, connected to be in communication with the inflatable elements 1. The implanted device A also includes a sealed case 3 in which is mounted a motor-driven pump 4 designed to ensure the circulation of the fluid only from the tank 2 to the inflatable elements 1 (
[0030] As seen more specifically in
[0031] As seen in the drawings, each one-way suction 13 and discharge 14 obturator is elastically returned to its closed rest position. According to one preferred variant of embodiment, the one-way suction obturator 13 includes a valve 13a carried by a rod 13b mounted inside the duct 11. The valve 13a is intended to cooperate under the action of a return spring 13d, with a seat 13c arranged in the pump head 5. Likewise, the one-way discharge obturator 14 includes a valve 14a carried by the rod 13b and intended to cooperate with a seat 14c arranged in the head of the pump 5. The valve 14a is biased to bear on the seat 14c by a return spring 14d.
[0032] The duct 11 communicates between the one-way suction obturator 13 and the one-way discharge obturator 14, with a chamber 15 for the fluid whose volume varies under the action of the motor-driven pump 4. This chamber 15 thus communicates with the inflatable elements 1 via the one-way discharge obturator 14 and with the tank 2, via the one-way suction obturator 13. The motor-driven pump 4 is designed to ensure only the suction of the fluid from the tank 2 with a view to bringing it into the inflatable elements 1. Typically, the fluid used is of the physiological liquid.
[0033] According to one preferred variant of embodiment illustrated more particularly in
[0034] The rotor 17a transmits its rotational movement to the system 20 for transforming the rotational movement of the electric motor 17 into a translational movement. This transformation system 20 includes a set of two rollers 22 driven in rotation by the rotor 17a of the electric motor and cooperating with a cam 23 fixed to the bellows. In the example illustrated, the rotor 17a includes a base plate 17b provided with the two rollers 22 disposed symmetrically on either side of the axis of rotation 21, with their rolling axes perpendicular to the axis of rotation 21 of the rotor. The rollers 22 are intended to cooperate with a path of a cam 23 arranged on a movable flange 18a of the bellows 18 having a fixed flange 18b fixed on the pump head 5. The cam 23 has a profile adapted so that the rolling of the rollers 22 on the cam path leads to the application of a symmetrical force on either side of the axis of symmetry of the bellows 18 so that the latter is compressed or expanded successively during the rotation of the rotor. This cam 23 allows, by means of the motor, creating a reciprocating compression movement of the bellows 18, and therefore a pumping movement as illustrated in
[0035] According to one characteristic of the invention, the electric motor 17 is supplied with energy by a wireless energy transfer system, part of which is mounted in the case 3 while another part of the energy transfer system is mounted in the control case B. According to one preferred characteristic of embodiment, the wireless energy transfer system includes a transmitting coil or antenna 28 integrated into the control case B and a receiving antenna or coil 30 mounted in the sealed case 3 implanted in the patient's body. This receiving antenna 30 is connected to an electronic card 31 mounted in the case 3 and allowing transforming the high-frequency current of the receiving antenna 30 into a direct current supplying the electric motor 17. As seen more accurately in
[0036] The control case B includes a button 33 for activating the wireless energy transfer system allowing the transfer of energy to the receiving antenna 30 mounted in the sealed case 3. Advantageously, this button 33 activates the energy transfer system as long as it is manually activated. This control case B includes a timing for the operation of the wireless energy transfer system after a determined duration of transmission. Typically, the wireless energy transfer system interrupts its transmission after continuous transmission duration, for example of 3 min, even if an action continues on the button 33.
[0037] According to one characteristic of the invention, the implanted device A includes a manual command 40 for deflating the inflatable elements 1, accessible from outside the sealed case 3. This manual command 40 acts on both the one-way suction obturator 13 and the one-way discharge obturator 14 to open the communication between the inflatable elements 1 and the tank 2. In the exemplary embodiment, the manual command 40 is performed by a deflation button arranged on the head 5 of the pump and constituted by a flexible membrane mounted to sealingly close the duct 11. This manual command 40 allows, by pressing, the actuation of the rod 13b supporting the one-way obturators 13, 14 so as to ensure their opening. Advantageously, the pressing on the manual command 40 leads to the simultaneous displacement of the one-way suction obturator 13 and of the one-way discharge obturator 14. As seen in
[0038] The operation of the hydraulic prosthetic system I in accordance with the invention follows from the description above. The control case B is brought close to the skin P of the patient above the place where the sealed case 3 is implanted. Placing the transmitting antenna 28 in the vicinity of the receiving antenna 30 allows optimizing the coupling. The actuation of the button 33 of the control case B activates the energy transfer system leading to the power supply of the motor 17 of the pump. It follows that the pump 4 ensures the transfer of the fluid from the tank 2 to the inflatable elements 1. When the inflatable elements 1 are inflated, the button 33 is released. For the deflation of the inflatable elements 1, a pressing on the manual command 40 allows simultaneously placing the one-way suction obturator 13 and the one-way discharge obturator 14 in the open position ensuring the return of the fluid into the tank 2.
[0039] The invention is not limited to the examples described and represented because various modifications can be made without departing from its scope.