Fabric Tube Propulsion Drive
20170143192 ยท 2017-05-25
Inventors
Cpc classification
International classification
A61B1/00
HUMAN NECESSITIES
Abstract
Fabric Tube Propulsion Drive is a system for propelling medical devices through hollow body organs and within body cavities without causing trauma to the body surfaces upon which it operates. Fabric Tube Propulsion Drive consists of a hollow tube surrounded by a continuous loop of elastic fabric or mesh. Within the tube is a motor drive system that moves the fabric through the lumen of the tube such that the fabric on the outside of the tube can continuously interface with the body part through which the Fabric Tube Propulsion Drive is operating, and thereby drive the whole device through the body cavity or over the surface in question. Furthermore, the motor drive system can selectively apply tension to the fabric over specific areas within the tube to cause flexion of the whole tube.
Claims
1) An atraumatic propulsion system for moving devices within a human or animal body consisting of a flexible hollow tube surrounded by a continuous loop of textured fabric or mesh that continuously loops around from the inner lumen of the tube to the outside of the tube.
2) A tube shaped inner frame or endoskeleton (over which the continuous loop of elastic fabric or mesh is wrapped) with proximal and distal circumferential narrowings on its inner surface to mechanically constrain a motor drive system.
3) Endoskeleton frame designs using single and multiple materials to provide tubelike structure with the properties of lateral flexibility and longitudinal rigidity for the device described in claim #1.
4) A metal or composite coil spring as the body for the endoskeleton described in claim #3 where plastic or composite end caps provide the circumferential inner surface narrowings as described in claim #2 to mechanically constrain a motor drive system.
5) A pile carpet like surface texture for the elastic fabric or mesh surrounding the tubelike structure described in claims #1 to 4 with tufts of fibre of variable lengths and stiffnesses.
6) A motor drive system mounted on a flexible subframe that sits within the lumen of the tube described in claims #1 to 4.
7) A wheel system that provides high traction to the pile carpet like surface of textured fabric in claim #5 within the lumen of the tube described in claims #1-4.
8) A mechanism for removal of the motor drive system from the inside of the tube described in claims #1 to 4, either through retraction of the wheels away from the circumferential inner narrowings of the tube described in claim #2 and claim #4; or a clasp like system to release and expand the inner circumferential diameter of the endoskeleton at the circumferential narrowings.
9) A method for flexing the tubelike structure described in claims #1 to 4 by locally varying the tension of the elastic fabric or mesh described in claims #1 to 5 with the motor drive system described in claims #6 and 7.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING
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DETAILED DESCRIPTION OF THE INVENTION
[0069] The figures and following text describe the longitudinally shortest implementation of the Fabric Tube Propulsion Drive. However, variations of the design can easily accommodate any length and width of device necessary to contain video equipment, surgical tools and energy sources to power the system. Alternatively, the drive system may be operated on a tether to obviate the need for an internal power source during endoscopy or laproscopic surgery. A tethered implementation has certain advantages as it can also enable difficult to implement functions in a device that is independent of any connection outside the body, e.g. continuous suction.
[0070] The fabric tube propulsion drive consists of the following components: [0071] 1) The endoskeleton: For the Fabric Tube Propulsion Drive, the following physical characteristics must be provided from any specific design implementation of the internal frame of the device, otherwise referred to here on forth as the endoskeleton. [0072] a) The endoskeleton must provide a low friction surface over which an elastic fabric or mesh can smoothly pass over both the outside and inner surfaces of the tube. The device takes the overall form of a tube once the endoskeleton is ensheathed in a fabric or mesh. [0073] b) The endoskeleton is flexible such that it can bend in the x or y planes that are perpendicular to the longitudinal axis of the tube. [0074] c) The endoskeleton is able to contain within the lumen of the tube, a motor drive system that is held in place by narrowings at either end of the tube. [0075] The endoskeleton can take various forms. It can be a one piece mould of variable rigidity polymer such that the tube is rigid over the areas where the motor drive wheels contact the fabric at the inner surface of the tube. Yet flexibility is kept through the middle section(s) of the tube and any intervening areas between the motor or runner wheels. Having circumferential flexiblility in the endoskeleton of the tube allows for lateral flexion of the tube. [0076] Another simple implementation of an endoskeleton is that of an elongated coil spring bounded by low friction end caps. The low friction end caps are moulded to serve the dual purposes of i) providing a smooth surface for the fabric or mesh to traverse over the ends of the tube; and ii) a narrowing to the inner diameter of the tube at either end, which physically constrains a motor system within the inner cavity of the tube. The coil spring endoskeleton provides a general tubular frame structure for the Fabric Tube Propulsion Drive while at the same time providing lateral flexibility. [0077] Please note that
[0086] a) Mechanism for lateral flexion of the Fabric Tube Propulsion Drive: [0087]
[0091] Longer variations of the Fabric Tube Propulsion Drive using an endoskeleton with an elongated midsection may add intervening segments of motor drive and/or passive runner wheels between the drive wheels illustrated in
[0092] b) Mechanism for retention of the motor drive system within the lumen of the endoskeleton:
[0093] The motor drive system is mechanically held within the inner lumen of the device by circumferential narrowings of the endoskeleton at both ends of the device. The motor drive system may be permanently manufactured into the device or detachable from the device through one of two methods. [0094] i) a mechanism for expanding the narrowings in the endoskeleton at either end of the device. One such suggested mechanism is a push button clasp that circumferentially unlocks the narrowed end of the endoskeleton, so that it can be widened to free the motor drive system. This push button clasp is situated on the inner surface of the device to avoid accidental actuation during the operation of the device, and is designed such that it can be actuated through the fabric or covering mesh without removing said fabric or covering mesh from the device. [0095] ii) a retraction mechanism for the wheels of the motor drive system that allow the subframe holding motor drive components to be removed through the narrowed end of the endoskeleton.
[0096] c) High friction wheels: [0097] The motor drive system utilizes of a set of high friction wheels that interface with the fabric or mesh lining the inner surface of the tube formed by the endoskeleton. As the wheels have no direct contact the the body, they can have any surface that provides the highest traction possible. Furthermore, as the motor drive system is completely contained within the tube of the device, a significant radial outward pressure can be applied to the motor driving wheels to facilitate traction, without any change in the external pressure exerted by the device on the surrounding tissues.