This patent claims priority from provisional patent application No. 62/392,752 filed Jun. 10, 2016 the entire disclosure of which is incorporated herein by reference.
The present invention relates to medical devices and more specifically to modular endoscopes.
Endoscopes are medical devices used to visually observe an internal body anatomy for the monitoring and/or treatment of medical conditions. The scope will include a handle that controls the elements of the scope. Endoscopes generally include the following elements:
Endoscopes present a number of technical challenges. A first technical challenge is sterilization. The instrument will be introduced into a patient's body and thus requires sterilization. Although some surgical tools can be inexpensively heat sterilized, an endoscope which is made of differing materials, is not adaptable to heat sterilization and instead must be sterilized by low temperature chemicals or other means. A second technical challenge is reliability. If the sterilization process degrades the performance or reliability of an endoscope, current practice is to simply use the endoscope a single time, when the device is provided in a sterile, sealed package. However, this presents a third challenge, cost, which is greatly increased if an entire endoscope must be discarded after a single use. It is an object of the embodiments to improve on the current technology to address these technical challenges.
The present described embodiments have a number of advantages, including cost reduction, simplification of sterility, and reliability. The embodiments describe a modular endoscope that includes a handle and a sheath. The sheath has a proximal coupling end that may be joined to the handle and a distal tip end. The sheath may be rigid, semi-rigid, or flexible, as selected by requirement for a procedure. A coupling mechanism joins the handle to the sheath. An image sensor is mounted on the tip of the sheath. The image sensor could be connected by a wired connection through the sheath, to the handle, and then to a display. Alternatively, the image sensor may be wireless, allowing still images or video to be collected directly onto a system external to the endoscope. The tip end also includes an illumination source. This illumination source may be an LED at the tip of the sheath (along with a power source). Alternatively, the illumination source may be an LED in the handle of the endoscope or in the proximal end of the sheath and an optical fiber bringing light from the LED to the tip to illuminate the area in front of the tip of the sheath. The tip also includes a tip deflecting mechanism which allows the tip to be angularly deflected to allow a wider view of an internal area. Depending on the embodied design, this deflection could be up to 280 degrees. The endoscope sheath may include an auxiliary channel having a first end proximate to the coupling end of the sheath, and a second end terminating to the tip end of the sheath. This auxiliary channel allows a fluid or a surgical tool or component to be introduced through to the tip end of the sheath.
With reference to
This mating also allows for powering of the camera/visualization scope function and the lighting (i.e., Light Emitting Diodes (LED's)). As mentioned previously, the sheath maybe rigid (no appreciable bending), semi-rigid (bending resistant, but sight bend possible), or flexible (able to bend). The tip 4 of the sheath (i.e., scope tip end) will be capable of deflecting in one or more directions and up to 280° depending on endoscope design. For both flexible ureteroscopes and the hysteroscope, the tip will deflect in two opposing directions in the same plane. There will be times when the user will need to rotate the tip which the user will do by twisting the handle. This will rotate the sheath in a close ratio of 1:1 with the handle.
With reference to
With reference to
The handle locking knob 14 is joined to locking joint assembly 18 connected to locking gear joint 20. Rotation of gear joint 20 engages sliding spline gear 21 on locking spline 23. This moves gear rack 22 on rack following gear 24 locking rack spline sleeve 25 into the sheath. At the end of handle 17 is the handle side electrical connector 26, in electrical connection with buttons 16 and to the existing cable that connects to the camera control unit (CCU) and power.
With reference to
In addition, the Shaft/Sheath may incorporate a single or multiple integrated channels to be used for introduction/withdrawal of various surgical tools and/or infusion/evacuation of water or saline/lactate ringer's solution and/or other fluid substances (e.g., drugs).
The endoscope's imaging platform will be produced via an integrated color CMOS sensor (and complementary objective lens) located at the distal end of the sheath tip 4. The processing of the signal will either be completed within the endoscope's body (to include Shaft/Sheath and Handle) that is wired directly to a remote camera processor unit that is connected to a display (i.e., monitor (e.g., integrated small monitor, stand-alone monitor, computer, tablet, cell phone, etc.)) or transmitted wirelessly to a display (i.e., monitor). Light will be produced through either an integrated powered LED(s) placed at the distal end of the endoscope or positioned within the Handle where the emitted light is transmitted down a fiber optic bundle embedded within the Shaft/Sheath exiting the distal tip end of the endoscope. The endoscope will be wired directly to a remote power source (i.e., AC power) or powered by an integrated rechargeable battery for wireless designed endoscopes.
With reference to
In
With reference to
The Handle will house the integrated LED(s) for designs that integrate a light fiber bundle in the Shaft/Sheath. In other designs where no light fiber bundles are used, the LED(s) will be positioned at the distal end or tip of the endoscope. As shown in
The steering pull wire 11 is shown within a threaded mating 8. Threaded mating 8 screws into a receiving threaded receptacle on the handle, affixing the handle and sheath together.
To ensure complete endoscope function, there will be between the Handle and the Shaft/Sheath the following connections.
First the embodiment shown will have an electronic connection between the wires emanating from the CMOS sensor of the sheath to the wires from the AC power (or if wireless, a rechargeable battery included on the sheath. LED(s) exiting the handle or proximal end of the sheath will be positioned within a specified/optimized distance to the light fiber bundles within the Shaft/Sheath (Or for endoscopes not utilizing light fiber bundles but with LED(s) positioned at the distal end or tip of the endoscope, a special mating connection will be designed so that the electrical connection between the LED(s) wires within the Shaft/Sheath are mated to the powered wires emanating from the Handle). The power will be supplied by AC power (or if wireless, rechargeable battery).
The novel connection between the angulation wires within the Shaft/Sheath and the angulation wires and controlling actuator of the Handle (as described above with respect to
The sheath design will be rigid, semi-rigid, or flexible with or without an active endoscope distal end tip deflection. The sheath will incorporate or integrate single or multi-channeled depending on endoscope design and application. The CMOS sensor with complementary objective lens will be positioned at the distal end of the endoscope. The LED(s) will also be positioned at the distal end of the endoscope (unless the LED(s) are positioned within the handle or proximal end of the sheath in which case, there will be a minimum of one or more light fiber bundles integrated within the sheath and exiting both ends of the sheath or mated to an LED within the proximal end of the sheath).
All image signals will be processed and transmitted to an integrated display monitor and/or to an external unattached display monitor.
Operation
This endoscope design is a ‘plug & play’ system. In a wired configuration, select your Handle, choose your Shaft/Sheath for the intended application, snap these two components together, connect to desired display/monitor, and plug into a power source and camera control unit (unless it is a wireless design endoscope). Turn on the system and begin your procedure.
Upon procedure completion, clean and reprocess components according to standard AORN operating room reprocessing procedures or if an office setting, adhere to minimum reprocessing requirements. (If the Shaft/Sheath is disposable, follow standard biohazard disposal standards.)
Number | Name | Date | Kind |
---|---|---|---|
5125394 | Chatenever | Jun 1992 | A |
5205280 | Dennison, Jr. | Apr 1993 | A |
5291010 | Tsuji | Mar 1994 | A |
5311859 | Monroe | May 1994 | A |
5813996 | St. Germain | Sep 1998 | A |
5895350 | Hori | Apr 1999 | A |
5984861 | Crowley | Nov 1999 | A |
6001058 | Sano | Dec 1999 | A |
6004263 | Nakaichi | Dec 1999 | A |
6554765 | Yarush | Apr 2003 | B1 |
6960161 | Amling | Nov 2005 | B2 |
7214183 | Miyake | May 2007 | B2 |
7399275 | Goldfain | Jul 2008 | B2 |
8029439 | Todd | Oct 2011 | B2 |
8702602 | Berci | Apr 2014 | B2 |
9517184 | Branconier | Dec 2016 | B2 |
10051166 | Duckett, III | Aug 2018 | B2 |
10163309 | Shelton, IV | Dec 2018 | B1 |
10729315 | Harrah | Aug 2020 | B2 |
20040054254 | Miyake | Mar 2004 | A1 |
20040260303 | Garrison | Dec 2004 | A1 |
20060173245 | Todd | Aug 2006 | A1 |
20060287576 | Tsuji | Dec 2006 | A1 |
20080125628 | Ueno | May 2008 | A1 |
20080214896 | Krupa | Sep 2008 | A1 |
20120004503 | Kawaura | Jan 2012 | A1 |
20120100729 | Edidin | Apr 2012 | A1 |
20120238813 | Ashida | Sep 2012 | A1 |
20130144123 | Nakamura | Jun 2013 | A1 |
20130197307 | Ashida | Aug 2013 | A1 |
20130261391 | Dejima | Oct 2013 | A1 |
20140012084 | Naito | Jan 2014 | A1 |
20140107416 | Birnkrant | Apr 2014 | A1 |
20140296633 | Gumbs | Oct 2014 | A1 |
20160038012 | McMahon | Feb 2016 | A1 |
20160128550 | Laser | May 2016 | A1 |
Number | Date | Country | |
---|---|---|---|
20210145257 A1 | May 2021 | US |