Infiltration pump having insulated rollers and programmable foot pedal
An infiltration apparatus, having a cannula, a flexible tubing connecting to one end of the cannula, a peristaltic pump comprising a pathway for the flexible tubing to extend through and a plurality of non-conductive rollers installed along the pathway to exerting force on the flexible tubing, a reservoir in fluid communication with the cannula via the flexible tubing extending through the peristaltic pump, a foot pedal pneumatically connected to the peristaltic pump to control operation thereof. The response of the foot pedal can be programmed into various modes. Under one of the modes, when the foot pedal is depressed, the peristaltic pump is switched on and remains as long as the foot pedal is depressed. Once the foot pedal is released, the peristaltic pump is switched off. Under another mode, one depression event, regardless how long the depression event lasts, the peristaltic pump is switched from on to off, or from off to on, and remains off/on before a next depression event occurs.
Not Applicable
STATEMENT RE: FEDERALLY SPONSORED RESEARCH/DEVELOPMENTNot Applicable
BACKGROUND OF THE INVENTIONThe present invention relates in general to an improved tumescent anesthesia apparatus and, more particularly, to a tumescent anesthesia infiltration pump including insulated rollers and a foot pedal with a programmable response.
Liposuction is an invasive surgical procedure for removing subcutaneous fat cells by inserting one end of a liposuction cannula into an area of interest of a patient, and attaching the other end of the cannula to a suction device.
It is common that when the fat cells are removed from the patient, blood is inevitably withdrawn. When the amount of the removed fat cells is low, withdrawal of blood is not critical. However, if the removal of a large volume of fat cells is required, complications result and recuperation time is extended and in almost all situations, supplemental blood is added to the patient, thus posing other danger.
To increase safety of the procedure, the Applicant of the present invention, Dr. Jeffrey Klein first introduced the use of the tumescent technique for local anesthesia (Klein, J A, The tumescent technique for liposuction surgery, J Am Acad Comestic Surg 4:263-267, 1987). The tumescent technique involves the infiltration of a solution of extremely dilute lidocaine, epinephrine, and sodium bicarbonate into the subcutaneous fat. Infusion is made through the use of a peristaltic infiltration pump, and the tumescent solution reduces bleeding and also eliminates the need for general anesthetics.
Currently, the peristaltic pump used in the tumescent anesthesia apparatus includes an electric motor and a headstock driven by the electric motor. The headstock allows the tube connecting the cannula extending there through and controls the flow direction of the fluid in the tube. The headstock is made of metal material, such that it is electrically conducted to the live circuitry of the electric motor. Therefore, during the liposuction operation, if the tube extending through the headstock has a breech, or when a leakage occurs to the live circuitry of the electric motor, electric current may be delivered to the patient under operation; and thus causes great danger of the patient.
BRIEF SUMMARY OF THE INVENTIONThe present invention provides an improved liposuction apparatus, comprising a cannula, a peristaltic pump, a reservoir containing a dilute solution of local anesthetic, a flexible sterile tube connecting the cannula to the reservoir, and a footpad on-off switch. One end of the cannula is in fluid communication with the peristaltic pump via the flexible tube. The peristaltic pump includes a pathway allowing the flexible tubing to extend through and a plurality of non-conductive rollers installed along the pathway to exert force on the flexible tubing. The reservoir is in fluid communication with the cannula via the flexible tubing extending through the peristaltic pump. A flexible non-sterile tube is further included to connect the foot pedal that contains an air bellow therein to the peristaltic pump to control operation by means of a pulse of air pressure.
In the above infiltration apparatus, the foot pedal is operative to switch on the peristaltic pump while being depressed and switch off the peristaltic pump while being released. Therefore, the operator/surgeon can actuate the infiltration of local anesthesia simply by continuously depressing the foot pedal. By simply releasing the foot pedal, the infiltration is stopped. This mode of controlling the infiltration pump is referred to as “momentary” mode. Alternatively, when the infiltration is continued for a longer period of time, the response of the foot pedal can be programmed into another mode referred as the continuous or toggle mode. Under this alternate (continuous) mode, the peristaltic pump is switched on and off in a toggle fashion by alternate depression performed on the foot pedal. That is, in response to each depression performed on the foot pedal, regardless the time the depression lasts, the peristaltic pump is either switched from on to off, or from off to on and remains the off/on status before a next depression event is performed thereon. Once the foot pedal is depressed again, the peristaltic pump is switched to the opposite status and remains on/off before another depression event is performed.
The peristaltic pump further comprises a rotation mechanism driving the non-conductive rollers to rotate clockwise or counterclockwise. As the rollers is made of an electrically non-conductive material, when there is inadvertent fluid leakage from the live circuitry of the peristaltic pump such as when there is breech on the wall of the flexible tubing, electric current is prevented from being delivered to the patient. Therefore, safer pump operation is provided.
In one embodiment of the present invention, the infiltration apparatus comprises a cannula, a flexible tubing connected to the cannula, an infiltration pump comprising a pathway for the flexible tubing to extend through and a plurality of rollers installed along the pathway to exert force on the flexible tubing, a reservoir connected to the flexible tubing extending through the peristaltic pump, and a foot pedal operative to control the on/off status of the infiltration pump in response to depression performed thereon in a plurality of modes. For example, the infiltration pump is switched on when the foot pedal is depressed, and switched off when the foot pedal is released under one of the modes (the momentary mode). In another operational mode (the continuous mode), the infiltration pump is switched and remains on continuously and off continuously by alternate depression performed thereon.
The present invention further provides an infiltration pump comprising a headstock, which comprises a pathway and a plurality of electrically insulated rollers installed along the pathway. The headstock further comprises a rotation mechanism operative to drive the insulated rollers rotating clockwise or counterclockwise, and the infiltration pump further comprises an electric motor operative to drive the rotation mechanism to rotate.
The present invention also provides a plurality of infiltration pump rollers for controlling the direction of a fluid flowing through the infiltration pump, wherein the rollers are made of insulated material.
BRIEF DESCRIPTION OF THE DRAWINGSThese, as well as other features of the present invention, will become apparent upon reference to the drawings wherein:
The present invention provides an improved tumescent infiltration apparatus. As shown in
As shown in
Preferably, the flexible tubing 13 is made of flexible material such as polyvinyl chloride (PVC). The exposed part of the flexible tubing 13 is preferably transparent, such that the surgeon can monitor the tumescent solution infiltrated into and the material removed from the patient 15. The part of the flexible tubing 13 extending through the peristaltic pump 11 is preferably made of material which can withstand the force exerted by the rollers 25. The material includes Norprene, silicone, Tygon, Pharmed, or C-Flex, for example.
To perform the tumescent liposuction operation, infiltration of local anesthesia agent is required prior to aspirate fat and tissue from the patient. The tumescent solution is contained in the reservoir 12, and the cannula 14 is inserted into an area of interest of the patient 15 through a small incision. In response to the foot pedal 16, the cannula 14 draws the tumescent solution from the reservoir 12 via the peristaltic pump 11, and the infiltrated amount of the tumescent solution can be controlled through adjustment of the headstock, including the rotation direction and speed.
In the continuous or toggle mode, each time the foot pedal 16 is depressed, regardless the duration of the depression, a response signal is generated to reverse the current operation status of the peristaltic pump 11. That is, when the peristaltic pump 11 is currently on, the response signal switches off the peristaltic pump 11. In contrast, if the peristaltic pump 11 is currently inactive, the response signal activates the peristaltic pump 11. The reversed operation status is remained even when the foot pedal 16 is released. Before the foot pedal 16 is depressed again, the peristaltic pump 11 remains on or off as it was. Therefore, in the continuous mode the peristaltic pump 11 operates continuously until it is switched on/off by alternate depression performed on the foot pedal.
The programmable response of the foot pedal 16 allows the operator/surgeon to select the suitable mode for operation. For example, when it is required to frequently switch on/off the peristaltic pump 11, the foot pedal 16 is programmed under the momentary mode that whenever the foot pedal 16 is depressed, the peristaltic pump 11 is switched on and actuated. To keep the peristaltic pump 11 in the on status, the foot pedal 16 must remain depressed. Once the foot pedal 16 is released, the peristaltic pump 11 is switched off, and the infiltration operation is stopped. When it is required to keep the peristaltic pump 11 activated for a longer period of time, the foot pedal 16 can be programmed into the continuous mode under which the peristaltic pump 11 is switched on and off for alternate depression by the operator/surgeon. That is, when the current status of the peristaltic pump 11 is off, by depressing the foot pedal 16, the peristaltic pump 11 is actuated and remains on even when the foot pedal 16 is released. By releasing and depressing the foot pedal 16 again, the peristaltic pump 11 is switched off. In addition to the continuous on/off mode and the momentary on/off mode, other modes can also be programmed according to specific requirement without exceeding the spirit and coverage of the present invention.
This disclosure provides exemplary embodiments of a child safety blind. The scope of this disclosure is not limited by these exemplary embodiments. Numerous variations, whether explicitly provided for by the specification or implied by the specification, such as variations in shape, structure, dimension, type of material or manufacturing process may be implemented by one of skill in the art in view of this disclosure.
Claims
1. A liposuction apparatus, comprising:
- a cannula;
- a flexible tubing, connecting to one end of the cannula;
- a peristaltic pump comprising a pathway for the flexible tubing to extend through and a plurality of rollers installed along the pathway to direct flow direction of fluid flowing through the flexible tubing;
- a reservoir, in fluid communication with the cannula via the flexible tubing extending through the peristaltic pump; and
- a foot pedal, having a first mode of operation wherein the peristaltic pump is turned on and off by alternate depression of the foot pedal, the foot pedal having a second mode of operation wherein the peristaltic pump is turned on and off in a different manner compared to the first mode of operation.
6-9. (canceled)
10. The liposuction apparatus according to claim 1, wherein the foot pedal programmed in a momentary mode is operative to switch on the peristaltic pump while being depressed and switch off the peristaltic pump while being released.
11. The liposuction apparatus according to claim 1, wherein the peristaltic pump further comprises a rotation mechanism driving non-conductive rollers to rotate clockwise or counterclockwise.
12. The liposuction apparatus of claim 1 further comprising a mode selector for switching operation of the foot pedal between the first mode and the second mode.
13. A liposuction apparatus, comprising:
- a cannula;
- a flexible tubing, connecting to the cannula;
- an infiltration pump comprising a pathway for the flexible tubing to extend through and a plurality of rollers installed along the pathway to exert force on the flexible tubing;
- a reservoir, connecting to the flexible tubing extending through the peristaltic pump; and
- a foot pedal, operative to activate/inactivate the infiltration pump in response to depression performed thereon in a plurality of modes, wherein the modes comprise: a momentary mode, under which the infiltration pump is activated when the foot pedal is depressed, and switched off when the foot pedal is released; and a continuous mode, under which the infiltration pump is switched and remain on and off by alternate depressions performed thereon.
14. The liposuction apparatus of claim 13 further comprising a mode selector for switching operation of the foot pedal between the momentary mode and the continuous mode.
15. A liposuction apparatus, comprising:
- a cannula;
- a flexible tubing, connecting to the cannula;
- an infiltration pump comprising a pathway, a plurality of rollers, and a rotation mechanism, the pathway being sized and configured to accommodate the flexible tubing therethrough, the plurality of rollers being installed along the pathway to exert force on the flexible tubing, the rotation mechanism being operative to drive the rollers rotating clockwise or counterclockwise;
- a reservoir connecting to the flexible tubing extending through the peristaltic pump; and
- a foot pedal being operative to activate/inactivate the infiltration pump in response to depression performed thereon in a plurality of modes, wherein the modes comprise: a momentary mode, under which the infiltration pump is activated when the foot pedal is depressed, and switched off when the foot pedal is released; and a continuous mode, under which the infiltration pump is switched and remain on and off by alternate depressions performed thereon.
16. The infiltration pump according to claim 15 further comprising an electric motor operative to drive the rotation mechanism.
17. The infiltration pump according to claim 15 wherein the rollers are made of insulated material.
18. The liposuction apparatus of claim 15 further comprising a mode selector for switching operation of the foot pedal between the momentary mode and the continuous mode.
19. A method of operating a liposuction apparatus, the method comprising the steps of:
- a. inserting a cannula into a body of a patient;
- b. depressing and releasing a foot pedal to activate a peristaltic pump for flowing fluid contained in a reservoir through a flexible tubing, the peristaltic pump, the cannula and into the body of the patient;
- c. depressing and releasing the foot pedal to deactivate the peristaltic pump to stop fluid flow through the flexible tubing;
- d. depressing the foot pedal to activate the peristaltic pump for flowing fluid contained in the reservoir through the flexible tubing, the peristaltic pump, the cannula and into the body of the patient; and
- e. releasing the foot pedal to deactivate the peristaltic pump to stop fluid flow through the flexible tubing.
20. The method of claim 19 wherein steps d and e define a continuous mode.
21. The method of claim 20 wherein steps b and c define a momentary mode.
22. The method of claim 21 further comprising the step of selecting either the momentary mode or the continuous mode via a mode selector.
Type: Application
Filed: Dec 19, 2006
Publication Date: May 17, 2007
Inventor: Jeffrey Klein (San Juan Capistrano, CA)
Application Number: 11/641,228
International Classification: F04B 49/06 (20060101);