SCOPE WARMING DEVICE
20180310816 ยท 2018-11-01
Inventors
- Michael Joseph Blackhurst (Auckland, NZ)
- Laurence Gulliver (Auckland, NZ)
- Robert Ashton Murphy (Auckland, NZ)
Cpc classification
G02B27/0006
PHYSICS
A61B1/313
HUMAN NECESSITIES
International classification
A61B1/00
HUMAN NECESSITIES
G02B23/24
PHYSICS
G02B27/00
PHYSICS
Abstract
A warming device (30) for warming the lens portion (2) of an optical instrument (I), such as a laparoscope, to a temperature above ambient to prevent lens fogging comprising: a double walled cylindrical tube (3) having an intemal wall (3b), and an external wall (3a), an upper surface and an open distal portion (7) with a central cavity (4) therebetween; a protrusion (9) extending from said upper surface, sized and shaped to receive the lens portion; a circular cap (5) sized to attach to said distal portion of said double walled cylindrical tube; and, a heating element (15) enclosed within said central cavity and thermally coupled to said insulation layer.
Claims
1.-21. (canceled)
22. A device configured to receive an optical instrument during a surgical procedure, the device comprising: a cylindrical tube having a proximal end, a distal end, and a central cavity between the proximal end and the distal end, the central cavity configured to receive the optical instrument; one or more gas tubing connectors disposed on the cylindrical tube and configured to receive a portion of insufflation gas used to insufflate a body cavity; wherein the portion of the insufflation gas being diverted into the central cavity raises a temperature of the central cavity above a dew point of the insufflation gas.
23. The device of claim 22, wherein the cylindrical tube is double walled, the double walled cylindrical tube having an internal wall and an external wall.
24. The device of claim 23, further comprising an insulation layer between the internal wall and the external wall of the double walled cylindrical tube.
25. The device to claim 24, wherein the insulation layer comprises air.
26. The device of claim 23, further comprising a protrusion extending from the proximal end and into the central cavity, the protrusion sized and shaped to receive the optical instrument.
27. The device of claim 26, wherein the proximal end comprises an upper surface extending from the external wall of the double walled cylindrical tube to the protrusion.
28. The device of claim 26, wherein the protrusion comprises a plurality of steps of decreasing circumference toward a distal portion of the protrusion to provide enhanced support for the optical instrument when inserted into the device.
29. A device of claim 26, further comprising flexible grommet surrounding at least a portion of the proximal end, the flexible grommet adapted to enable optical instruments of differing sizes to be inserted into the protrusion.
30. The device of claim 29, wherein the flexible grommet comprises a plastic material.
31. The device of claim 26, further comprising a material coating on the protrusion.
32. The device of claim 22, wherein the one or more gas tubing connectors comprises an input gas tubing connector and an output gas tubing connector attached to the cylindrical tube, the input gas tubing connector configured to receive at least the portion of the insufflation gas.
33. The device of claim 32, wherein the input gas tubing connector is longitudinally offset from the output gas tubing connector.
34. The device of claim 22, wherein the portion of the insufflation gas is heated and/or humidified prior to entering the device.
35. The device of claim 22, wherein the distal end is open.
36. The device of claim 35, further comprising a circular cap sized to attach to the distal end of the cylindrical tube.
37. The device of claim 22, further comprising an attachment mechanism attached to the proximal end of the cylindrical tube, the attachment mechanism configured to removably attach the device to a surgical drape or table.
38. The device of claim 37, wherein the attachment mechanism comprises a handle or a handle clip.
39. The device of claim 22, wherein the one or more gas tubing connectors are positioned such that the portion of insufflation gas flows distally toward the distal end of the optical instrument.
40. The device of claim 22, wherein the one or more gas tubing connectors are positioned such that the portion of insufflation gas flows transversely across the optical instrument.
41. An instrument configured to receive a surgical optical instrument, the instrument comprising: a first cylindrical body having a first end and a second end opposite the first end; a second cylindrical body positioned at least partially within the first cylindrical body, the second cylindrical body having a first end and a second end opposite the first end; wherein the second cylindrical body comprises a passage for a heating substance configured to warm the surgical optical instrument to prevent lens condensation.
42. The instrument of claim 41, wherein the heating substance is a fluid.
43. The instrument of claim 41, further comprising an insulation layer between the first and second cylindrical bodies.
44. The instrument of claim 43, wherein the insulation layer comprises air.
45. The instrument of claim 41, wherein the passage is configured to receive a portion of the insufflation gas used to insufflate a body cavity.
46. The instrument of claim 41, wherein the portion of the insufflation gas is heated and/or humidified prior to entering the device.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] Preferred forms of the present invention will now be described with reference to the accompanying drawings.
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DETAILED DESCRIPTION
[0046] The present invention provides a warming device capable of warming the lens portion of an optical instrument, such as a laparoscope, to a temperature above ambient to prevent lens fogging and a means of cleaning the lens during a surgical procedure to remove any biological matter that may adhere to the lens. The lens warming device is self-contained and does not require the attachment of any power source thereby making the device portable for use anywhere within the surgical operating environment.
[0047] In particular a lens warming device is described which provides a means for warming the lens portion of an optical instrument to a temperature above ambient temperature for a prolonged period. At any stage during the operating procedure where the surgeon has to withdraw the laparoscope from the body cavity the lens portion is reinserted into the lens warmer to maintain the lens portion temperature above ambient and where a cleaning member is disposed at the distal end of the lens warming device, the lens will be cleaned on contact with the cleaning member. At the end of the operating procedure the lens warming device may be disposed of thereby potentially eliminating the requirement for the equipment to undergo autoclave or other sterilization procedures.
[0048] It will be appreciated that the lens warming device as described in the preferred embodiment of the present invention can be used for many forms of surgical optical instruments generally but will now be described below with reference to the surgical optical instrument being a laparoscope.
[0049] With reference to
[0050] A non-woven cleaning member 12 made from acrylic, polypropylene or other appropriate filter type material may be disposed at the distal end 14 of the cylindrical protrusion 9 such that when the lens portion 2 of the laparoscope 1 is inserted into the cylindrical protrusion 9, the lens portion 2 contacts the cleaning member 12. A similar cleaning member may be provided in anyone of the embodiments of the lens warming device as described herein.
[0051] As shown in
[0052] With reference to
[0053] Note should be made that any of the embodiments described herein may be provided with a handle as described above in relation to
[0054] Prior to use, the insulated lens warming device 30 is placed in a microwave or other conventional oven type surgical warming device in order to raise the temperature of the heating element 15 to a temperature above ambient body temperature. The cleaning member 12 may then be inserted toward the distal portion 14 of the cylindrical protrusion 9. The lens portion 2 of the laparoscope 2 is then inserted into the cylindrical protrusion 9 such that the lens portion 2 may contact the cleaning member 12. The thermal energy produced by the heating element 15 warms the lens portion 2 to a temperature above ambient such that the lens portion 2 becomes warm enough to prevent lens condensation on insertion of the lens portion 2 into a body cavity while the cleaning member 12 may clean the lens portion 2 in preparation for surgical use.
[0055] The insulation layer 6 is in thermal contact with the heating element 15 such that the heating element temperature is maintained for at least the duration of the surgical procedure. Therefore, when the lens portion 2 is removed from the body cavity, it can be re-inserted into the insulated lens warming device 30 to maintain the temperature of the lens portion 2 to at least above ambient. Also, when the cleaning member 12 is inserted into the cylindrical protrusion 9 the lens potion 2 may also be cleaned in preparation for reinsertion into the body cavity.
[0056] A second embodiment of the insulated lens warming device 43 of the present invention is shown in
[0057] Alternatively, instead of impregnating the cylindrical protrusion walls with black dye during the plastics moulding and forming process, a removable black plastic moulded insert 21 of preferably cylindrical cross-section, having a closed distal end 22 may be inserted into the cylindrical protrusion 44. The black insert 21 provides an alternative means of converting light energy into thermal energy due to conduction using the light source emanating from the lens portion 2 of the optical instrument 1.
[0058] An insulated lens warming device of the third embodiment of the present invention is shown in
[0059] The gas can exit from the central cavity 34 via the output gas tubing connector 24 located towards the distal portion 36 of the insulated lens warming device 31. There is no requirement to attach a gas tube to the second gas tubing connector 24 as the gas is allowed to exit to free air space.
[0060] In a fourth embodiment, shown in
[0061] The whitening block can be constructed from a thermoset plastics material or a thermoform plastics material. Alternatively, the whitening block can be constructed from a ceramic material. Alternatively, the whitening block can be constructed from a non-woven material or a woven fibrous material.
[0062] Alternatively, as shown in