This disclosure relates to the field of surgical devices. More particularly, this disclosure relates to a device for cleaning a lens of a surgical instrument used for minimally invasive surgery.
Clear visualization of the surgical field in minimally invasive surgery (MIS) is vitally important for the surgeon's operation efficiency and the patient's safety. Surgical scope cameras have been developed with various dimensions, flexibility, and controllability to reach inside human bodies for various MIS procedures, such as laparoscopic, endoscopic, bronchoscopic, arthroscopic, and thoracoscopic. Surgeons manipulate surgical instruments to carry out surgical procedures solely based on the visual guidance of these scope cameras. Uninterrupted and clear visual guidance is critical to the success of all these surgeries.
However, clarity of a visual field of a surgical scope camera 1 can easily be impaired by contaminated lenses due to vapor condensation, particle debris, rinsing fluid, and body fluid 2; or accumulated smoke 3 caused by electrocautery during surgery as shown in
Surgical smoke, also known as cautery smoke or electrosurgery smoke, is produced by interaction of mechanical and heat producing instruments with tissue, such as dissection and homeostasis tools. Generated smoke is a gaseous byproduct of the disruption and vaporization of tissue, protein, and fat. Fogging or smoke can deteriorate vision of a camera used during a procedure such as by blocking a field of view of the camera.
What is needed, therefore, is a modular surgical lens cleaning device that functions to evacuate smoke plumes to maintain visual clarity of robotic surgical cameras inside a body cavity.
The above and other needs are met by an airflow device for projecting a flow of air proximate to a field of view of a camera. In a first aspect, the airflow device includes: a housing shaped to fit over an end of a camera lens; one or more air pumps located within the housing, the one or more air pumps receiving air through one or more air inlets; and one or more air outlets formed in the housing proximate the camera lens. The one or more air outlets are oriented to project air from the one or more air pumps across a field of view of the camera lens.
In one embodiment, the one or more air outlets include: one or more projecting outlets oriented to project air from the one or more air pumps away from an end of the housing and substantially parallel to a field of view of the camera and one or more lens outlets oriented to projected air from the one or more air pumps perpendicular to and across a field of view of the camera.
In another embodiment, the the one or more air pumps are piezoelectric air pumps. In yet another embodiment, the one or more air pumps are piezoelectric air pumps are arranged in an array around the housing of the airflow device. In one embodiment, the piezoelectric air pumps are arranged in an array and are located within walls of the housing of the airflow device.
In another embodiment, the one or more air pumps further comprising at least one check valve in fluid communication with an interior of the one or more air pumps.
In yet another embodiment, the housing includes a lens cover attached to the housing and a camera chamber located between the lens cover and the camera when the airflow device is installed on the camera.
In a second aspect, an airflow device includes: a housing shaped to fit over an end of a camera lens; one or more air pumps located within the housing, the one or more air pumps receiving air through one or more air inlets, the one or more air pumps comprising piezoelectric air pumps; one or more air outlets formed in the housing proximate the camera lens. The one or more air outlets are oriented to project air from the one or more air pumps across a field of view of the camera lens.
In one embodiment, the one or more air pumps are piezoelectric air pumps are arranged in an array around the housing of the airflow device.
In another embodiment, the one or more air outlets include: one or more projecting outlets oriented to project air from the one or more air pumps away from an end of the housing and substantially parallel to a field of view of the camera and one or more lens outlets oriented to projected air from the one or more air pumps perpendicular to and across a field of view of the camera.
In yet another embodiment, the piezoelectric air pumps are arranged in an array and are located within walls of the housing of the airflow device.
In a third aspect, an airflow device includes: a housing shaped to fit over an end of a camera lens; one or more air pumps located within the housing, the one or more air pumps receiving air through one or more air inlets; one or more air outlets formed in the housing proximate the camera lens, the one or more air outlets are oriented to project air from the one or more air pumps across a field of view of the camera lens, the one or more air outlets including: one or more projecting outlets oriented to project air from the one or more air pumps away from an end of the housing and substantially parallel to a field of view of the camera and one or more lens outlets oriented to projected air from the one or more air pumps perpendicular to and across a field of view of the camera.
Further features, aspects, and advantages of the present disclosure will become better understood by reference to the following detailed description, appended claims, and accompanying figures, wherein elements are not to scale so as to more clearly show the details, wherein like reference numbers indicate like elements throughout the several views, and wherein:
Various terms used herein are intended to have particular meanings. Some of these terms are defined below for the purpose of clarity. The definitions given below are meant to cover all forms of the words being defined (e.g., singular, plural, present tense, past tense). If the definition of any term below diverges from the commonly understood and/or dictionary definition of such term, the definitions below control.
Referring to the exploded view of
The housing 14 preferably has a circular cross-sectional area and is further preferably cylindrical in shape having opposing open first and second ends. The housing 14 preferably contains the one or more air pumps 18 and is configured to direct one or more currents of air generated by the one or more air pumps 18 through the housing 14 and out of an end of the housing 14 that is distal from the camera 12 when the housing 14 is installed on the camera 12.
Referring now to
The one or more projecting outlets 26 are preferably formed around a circumference of the second end 24 of the housing 14 such that the one or more projecting outlets 26 do not obscure a field of view of the camera 12. The at least one lens outlet 28 is preferably formed as a slot formed through an inner wall of the housing 14 such that air flowing out of the lens outlet 28 flows perpendicular across the housing 14.
Referring now to
Referring now to
In one exemplary embodiment, a minimum flow speed for diverting contaminants such as smoke, water, and bloodstreams is determined. As shown in
Air flows generated by the one or more air pumps 18, and preferably the PZT air pumps, preferably merge within the housing 14 and are emitted from the projecting outlets 26 and at least one lens outlet 28 to form a shield of air and a blade of air protecting a clarity of the lens of the camera 12, as shown in
where h is enthalpy; k is air thermal conductivity; T is temperature; and Φ is a function of viscous dissipation.
Embodiments of the airflow device 10 advantageously generate one or more airflows in front of the camera 12 to prevent contamination of the camera 12. The airflow device 10 provides a prevention area that is preferably hemispherical in shape and centered around a field of view of the camera 12. Any contamination approaching the camera 12 is deflected to maintain a clear field of view of the camera 12. The projecting outlets 26 and at least one lens outlet 28 are preferably arranged to substantially uniformly project air around the camera 12. Further, the at least one lens outlet 28 projects a blade of air across the lens cover 16 for peeling off any contaminants that may have adhered to the lens cover 16 during a procedure.
A profile of airflow generated by the projecting outlets 26 is governed by parameters of the projecting outlets 26: an outlet gap B0, outlet air velocity V0, nozzle radius R0, and characterized by a radius of the profile R=fƒ(x, R0, B0, p, σ, ΔP), which is a function of air flow thickness B, gravity g, surface tension σ, a pressure difference on two sides of the air flow ΔP, and nozzle parameters , as shown in
and, radial momentum equation
in cylindrical coordinates, where X is a vertical coordinate, Rc is an air flow's radius of curvature in a vertical plane. It has been found that because a near-vertical air flow is created, an angle θ is small except near a closure area. Inner and outer pressures a flow are assumed as equal. Further, the flow radius R and radius of curvature Rc are assumed to be positive.
The at least one lens outlet 28 preferably projects a flat-fan air flow onto the cover lens 16 of the airflow device 10, as shown in
Embodiments of the airflow device 10 described herein prevent or reduce the accumulation of debris on the camera 12, such as during a surgical procedure in which the camera 12 is inserted into a cavity. The projecting outlets 26 and at least one lens outlet 28 act to create a “shield” of air projecting outward from the camera 12 while further creating a “blade” of air that moves across a field of view of the camera 12. Together, airflow from the projecting outlets 26 and at least one lens outlet 28 cooperate to prevent accumulation of debris or to prevent debris from contacting the cover lens 16 or any portion of the camera 12 to ensure that a field of view of the camera 12 remains unobstructed.
Additional advantages of the airflow device 10 include integration of the airflow device 10 with a wiper or other device that contacts the cover lens 16 or the camera 12 to clear debris from a field of view of the camera 12. For example, the at least one lens outlet 28 may acts to clear debris from the camera 12 after a wiper or other device clears a lens of the camera 12. Further, the airflow device 10 may act to cool components of a lens cleaning device such as through force convection through airflow generated by the airflow device 10.
The foregoing description of preferred embodiments of the present disclosure has been presented for purposes of illustration and description. The described preferred embodiments are not intended to be exhaustive or to limit the scope of the disclosure to the precise form(s) disclosed. Obvious modifications or variations are possible in light of the above teachings. The embodiments are chosen and described in an effort to provide the best illustrations of the principles of the disclosure and its practical application, and to thereby enable one of ordinary skill in the art to utilize the concepts revealed in the disclosure in various embodiments and with various modifications as are suited to the particular use contemplated. All such modifications and variations are within the scope of the disclosure as determined by the appended claims when interpreted in accordance with the breadth to which they are fairly, legally, and equitably entitled.