Abstract:
Apparatus for automatic delivery of chest compressions and ventilation to a patient, the apparatus including: a chest compressing device configured to deliver compression phases during which pressure is applied to compress the chest and decompression phases during which approximately zero pressure is applied to the chest a ventilator configured to deliver positive, negative, or approximately zero pressure to the airway; control circuitry and processor, wherein the circuitry and processor are configured to cause the chest compressing device to repeatedly deliver a set containing a plurality of systolic flow cycles, each systolic flow cycle comprising a systolic decompression phase and a systolic compression phase, and at least one diastolic flow cycle interspersed between sets of systolic flow cycles, each diastolic flow cycle comprising a diastolic decompression phase and a diastolic compression phase, wherein the diastolic decompression phase is substantially longer than the systolic decompression phase.
Abstract:
Apparatus for automatic delivery of chest compressions and ventilation to a patient, the apparatus including: a chest compressing device configured to deliver compression phases during which pressure is applied to compress the chest and decompression phases during which approximately zero pressure is applied to the chest a ventilator configured to deliver positive, negative, or approximately zero pressure to the airway; control circuitry and processor, wherein the circuitry and processor are configured to cause the chest compressing device to repeatedly deliver a set containing a plurality of systolic flow cycles, each systolic flow cycle comprising a systolic decompression phase and a systolic compression phase, and at least one diastolic flow cycle interspersed between sets of systolic flow cycles, each diastolic flow cycle comprising a diastolic decompression phase and a diastolic compression phase, wherein the diastolic decompression phase is substantially longer than the systolic decompression phase.
Abstract:
A system and method of monitoring, controlling and/or detecting events during the removal of heat from subcutaneous lipid-rich tissue is described. In some examples, the system detects an increase in temperature at a treatment device in contact with the skin of a subject, determines that the increase in temperature is related to a treatment event, and performs an action based on the determination. In some examples, the system shuts off the treatment device, alerts an operator, or reduces the cooling in response to a determined treatment event.
Abstract:
Systems and methods for improving or preventing a condition, such as the treatment of pain syndromes and migraine headaches are disclosed. A method for treating pain can include one or more of the steps including identifying a region of the patient comprising glabrous tissue; positioning the region of the patient comprising glabrous tissue into an enclosed chamber; adjusting the relative humidity of the enclosed chamber sufficient to create a physiologic effect. The method need not involve altering the temperature within the enclosed chamber.
Abstract:
A light emitting module and massage device provide vaginal rejuvenation. The device exposes collagen in the vaginal area or mucosa to temperatures elevated over normal body temperature to cause the collagen to reversibly or irreversibly denature while simultaneously applying vibration. Once thermally-induced collagen denaturation has occurred, both neoelastogenesis and neocollagenesis may occur and may be initiated with fibroblast proliferation, which may be promoted with vibration. Neofibrogenesis also occurs due to the fibroblastic activity, responsible for secretion of new collagen matrix to effect tissue repair. Thus, the device exploits thermally-induced collagen denaturation and repair along with simultaneous vibration to improve tissue tone, connective tissue tension and bulk tissue regeneration.
Abstract:
The present invention discloses a system to decrease the blood flow of a targeted organ in case of bleeding or a medical requirement comprises an integrated electrostimulator and a subsystem.
Abstract:
Systems, methods, and devices used to treat eyelids, meibomian glands, ducts, and surrounding tissue are described herein. In some embodiments, an eye treatment device is disclosed, which includes a scleral shield positionable proximate an inner surface of an eyelid, the scleral shield being made of, or coated with, an energy-absorbing material activated by a light energy, and an energy transducer positionable outside of the eyelid, the energy transducer configured to provide light energy at one or more wavelengths, including a first wavelength selected to heat the energy-absorbing material. Wherein, when the eyelid is positioned between the energy transducer and the scleral shield, the light energy from the energy transducer and the heated energy-absorbing material of the scleral shield conductively heats a target tissue region sufficiently to melt meibum within meibomian glands located within or adjacent to the target tissue region.
Abstract:
Apparatus for automatic delivery of chest compressions and ventilation to a patient, the apparatus including: a chest compressing device (12) configured to deliver compression phases during which pressure is applied to compress the chest and decompression phases during which approximately zero pressure is applied to the chest, a ventilator (15) configured to deliver positive, negative, or approximately zero pressure to the airway; control circuitry and processor, wherein the circuitry and processor are configured to cause the chest compressing device to repeatedly deliver a set containing a plurality of systolic flow cycles, each systolic flow cycle comprising a systolic decompression phase and a systolic compression phase, and at least one diastolic flow cycle interspersed between sets of systolic flow cycles, each diastolic flow cycle comprising a diastolic decompression phase and a diastolic compression phase, wherein the diastolic decompression phase is substantially longer than the systolic decompression phase.
Abstract:
The present invention discloses a method of treating nasal congestion and/or relieving sinusitis symptoms in a patient comprising attaching a vibration generating means to the patient head, at a location adjacent to sinuses to be treated, generating a vibration by said vibration generating means, and delivering the same to said patient. The present invention also discloses a device for treating nasal congestion and/or relieving sinusitis symptoms in a patient, comprising attaching means and a vibration generating means; said attaching means are in communication with the patient's head in a location adjacent to said nasal cavity, nasal passageway or sinuses to be treated; said generating means are adapted to vibrate said attaching means, to vibrate the location adjacent to said nasal cavity or sinuses and thus improved mucociliary clearance of secretions in nasal cavity or sinuses.