AIRWAY CARDIOVERTER-DEFIBRILLATOR SYSTEM
20200391042 ยท 2020-12-17
Assignee
Inventors
Cpc classification
International classification
Abstract
An airway cardioverter-defibrillating system comprises a conductive Nano-balloon inserted to an airway tube. The airway cardioverter-defibrillating system functions either with unipolar or bipolar circuit configuration. The system is operatively arranged to supply safe continuous defibrillation pulses directly to the heart with simultaneous continuous external cardiac massage. The system also provides ventilation.
Claims
1. An airway cardioverter-defibrillator system, comprising: an airway tube wherein the tube has a proximal end and a distal end at least a portion of said tube being positioned within the airway of the subject, A power source connected to a first circuit ground; An electrically conductive module; Bridging cables; A Skin surface electrode; and A Mainstream capnometric sensor.
2. Airway cardioverter-defibrillator system according to claim 1, further comprising a bipolar circuit wherein the electrically conductive module is divided into two or more separate conductive surfaces named electrodes by having suitable widths of non-conductive belt thus permitting the module to effectively function as two or more separate cathode & anode connected to the defibrillator power generator unit.
3. Airway cardioverter-defibrillator system according to claim 1, wherein two electrically conductive modules could be placed along the course of the airway tube wherein one distal balloon acts as a cathode electrode while the proximal balloon acts as an anode electrode to complete the circuit.
4. Airway cardioverter-defibrillator system according to claim 1, further comprising unipolar circuit wherein the whole circumference of the electrically conductive module functions as a cathode electrode. The Anode electrode and cable extend from the chest wall surface to the defibrillator power generator.
5. The negative terminal electrode according to claim 4, comprising one cathode bridging cable extends from the electrically conductive module to the power generator and other single or multiple anode bridging cables lead, from the power generator unit to the chest wall of the person directly to the surface of the skin, adhering to the chest wall via a bridge cable.
6. The unipolar circuitry according to claim 4, where in the patient-end of the external Anode terminal is an un-insulated conducting segment of the cable passing through the subcutaneous tissue. The cable is attached to the skin by curved or straight needle.
7. A method performed by an Airway cardioverter-defibrillator system to induce a tachyarrhythmia, the method comprises: Once cardiac arrest is confronted, the medical rescue team insert the airway cardioverter defibrillator system; Connect to a power generator; Wherein, impulses pass through the cathode and anode bridging cables to deliver the electrical current to an electrically conductive module; The electrically conductive module sends out a controlled burst of impulses and shocks to the heart to restore a normal rhythm. The sensor is activated by mainstream &/or side stream end tidal level of carbon dioxide. The sensor breaks the circuit off the defibrillator power generator and hence stop defibrillation.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0007] These and other objects and features of the present invention will be more fully disclosed or rendered obvious by the following detailed description of the preferred embodiments of the present invention, which are to be considered together with the accompanying drawings wherein like numbers refer to like elements and further wherein:
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DESCRIPTION OF RELATED ART
[0017] In the majority of cardiac arrests, the arrest is due to ventricular fibrillation, which causes the heart to immediately stop pumping blood. To treat ventricular fibrillation, defibrillation is administered which involves the delivery of a high energy electric shock to the thorax to depolarize the myocardium, and to allow a perusing rhythm to restart. If, however, more than few minutes pass between the onset of ventricular fibrillation and the delivery of the first defibrillation shock, the heart may be so deprived of metabolic substrates that defibrillation is unsuccessful.
[0018] The role of CPR is to restore the flow of oxygenated blood to the heart, which may allow defibrillation to occur.
PRIOR ART
[0019] US application number 2017304640 described (to SATO MASASHI) describes Automated external defibrillator (AED) which are easy to operate units that may be used by the layperson or healthcare personnel who only have basic training with color indications for the pads. These machines instruct the delivery of shocks when required or deliver them automatically. The drawbacks of this technology are that the AED systems can only be used to treat ventricular fibrillation and ventricular tachycardia and no other forms of cardiac arrhythmia. Furthermore, in order to allow the machine time to analyze the cardiac rhythm, chest compressions usually need to be stopped.
[0020] Application number WO2015039591 that described the invention is based on a selective double-lumen endotracheal tube (ETT) made of rubber/silicone or other plastic material and hence electrically nonconductive and sticking pieces of electrically conductive electrodes on the balloon with an interconnected circuit metal and wires are stuck to the balloon. The electrodes can become dislodged during insertion, or can produce injury to the inner lining of the bronchi. It will turn out the balloon to be rigid and not fully inflatable. On the other hand electrodes would generate heat and damage the tissues and/or the balloon itself, since heat generated by current is inversely related to the surface area of the electrode. That is why these electrode-mounted balloons did not succeed in defibrillation.
[0021] In U.S. Pat. No. 5,417,713 (to Todd J. Cohen) Transesophageal defibrillating system transesophageal defibrillating system includes a large area anterior patch electrode and a large area posterior patch electrode, as in some conventional exterior defibrillating systems. The system is operatively arranged to supply either defibrillation pulses between the large anterior patch electrode and the distal electrode or the large posterior electrode, depending on which one of the latter two electrodes is connected or coupled by the clinician or paramedic to the defibrillating pulse source. The system includes a source of pacing pulses which may be supplied to the patient via the anterior patch electrode and at least one of the electrodes carried by the esophageal probe. The distal electrode is believed to be the more effective electrode to use for this purpose
DETAILED DESCRIPTION
[0022] This disclosure generally relates to medical devices and, more particularly, airway cardioverter-defibrillator. This invention relates to a method and system for expediting the rescue of victims experiencing sudden cardiac arrest (SCA) when used in conjunction with uninterrupted external cardiac massage. The system involves an airway tube, electrically conductive Nano coated balloon, bridging cables and sensor. Referring to the drawings in detail show an airway cardioverter-defibrillator system. The illustrated system comprises licensed technology Korean application number KR10-2017-0113174 Balloon for catheter coated with multilayer electroconductive 2,3 & 4, to function as means of receiving (sensing) and imparting (delivering) currents of biologically relevant magnitude. A high electrical conductive surface would be coated upon a biocompatible balloon (inflatable/flexible/foldable/stretchable) with high biomechanical properties such as high adhesion strength, high fracture toughness and proper biocompatibility for biomedical application. The coating over the balloon would have suitable conductive conduits/wires 5, to carry the electrical current to and from the conductive balloon surface. The Nano-coated balloon is capable of passage of up to 60 watts energy, without thermal damage to the tissues or damage to the balloon due to the wide area of current transmission from the whole surface of the balloon. The completely Nano-coated balloon or cuff acts as one electrode while the other electrode is attached to the chest wall of the patient 4. Single conductive lead connects the single inflatable member (balloon/cuff) to the outside along various airway tubes, example endotracheal tube, Combitubes, King's tube, Laryngeal mask airway & Oropharyngeal airway. Making the innovation practical in defibrillation during Cardio-Pulmonary Resuscitation (CPR) within general wards, hospital areas and even by emergency staff in out of the hospital places.
[0023] The illustrated embodiment further comprising combination of an airway tube 1 and inflatable Nano-conductive balloon 7 comprises defibrillating electrodes 2,3 electrically conductive inflatable balloon/cuff and skin surface/subcutaneous electrodes 11. The said conductive balloon/s 7 are placed along various airway tubes 1, e.g. endotracheal tube, Combitubes, King's tube, Laryngeal mask airway & Oropharyngeal airway. Bridging cables 5, said cables are insulated, electrical wires extending from the electrically conductive inflatable balloon/cuff to the Power generator 6 and back to the said balloon/cuff or to the skin electrodes 11. An electrically inert belt 4 to separate between the cathode 3 and the anode 2 parts of the conductive balloon. Balloon inflation and deflation conduit 10.
[0024] One other preferred embodiment of the Airway cardiac Defibrillation system illustrated in
[0025] In another embodiment, more than one electrically conductive balloons 7 could be placed along the course of the airway tube. Whereby one distal balloon acts as a cathode electrode while the proximal balloon acts as an anode electrode to complete the circuit.
[0026] In another embodiment
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BRIEF DESCRIPTION OF DRAWINGS
[0030] These and other objects and features of the present invention will be more fully disclosed or rendered obvious by the following detailed description of the preferred embodiments of the present invention, which are to be considered together with the accompanying drawings wherein like numbers refer to like elements and further wherein:
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Drawings: