INSERTION GUIDE
20170258489 · 2017-09-14
Inventors
- Ben GALILI (Haifa, IL)
- Ofer ARNOLD (Ma'ale Tzviya, IL)
- Simon SHARON (Hof Carmel, IL)
- Daniel GLOZMAN (Kfar Adumim, IL)
Cpc classification
A61B10/04
HUMAN NECESSITIES
A61B34/20
HUMAN NECESSITIES
A61N1/372
HUMAN NECESSITIES
A61M25/0113
HUMAN NECESSITIES
A61M2025/0008
HUMAN NECESSITIES
International classification
A61B34/20
HUMAN NECESSITIES
A61M25/01
HUMAN NECESSITIES
A61N1/372
HUMAN NECESSITIES
Abstract
A device for insertion of a flexible needle or other such instrument into a tissue, incorporating a collapsible support guide which supports that part of the needle which has not yet penetrated the tissue, preventing it from buckling, and an arrangement which pulls the needle from its proximal end to provide sufficient force for the penetration process. The collapsible support guide can be a pair of flexible strips connected along their length and enclosing the needle along its uninserted length in order to support it, with a mechanism at the distal end of the device to peel the strips from the needle as it is inserted. Insertion can be achieved by a pair of rollers engaging and advancing the strips distally. Alternatively, a telescopic support tube can be used to support the needle, the tube collapsing telescopically as the needle is inserted, to maintain clearance above the needle.
Claims
1. A device for insertion of a tool, comprising: a guide member having an opening adapted to allow passage of said tool therethrough; a propulsion mechanism configured to advance said tool through said opening in the direction of an insertion site; and a buckling prevention mechanism configured to support said tool along at least a portion of its length while it is advanced in the direction of the insertion site; wherein the device is configured such that its height relative to the insertion site decreases as said tool is advanced in the direction of the insertion site.
2. An insertion device according to claim 1, further comprising a head element to which said tool is coupled at its proximal region.
3. An insertion device according to claim 2, wherein the propulsion mechanism includes the buckling prevention mechanism and comprises: a pair of flexible strips connected along at least part of their length and having a central channel therebetween adapted to receive and support said tool, said pair of strips being coupled at its proximal region to said head element; and a pair of rollers disposed on either side of said pair of flexible strips, and interacting therewith such that counter-rotation of said pair of rollers causes said pair of flexible strips to move between said pair of rollers; wherein upon said tool being received within said central channel, said pair of flexible strips and said tool are connected by means of said head element, such that counter-rotation of said rollers in an appropriate direction pulls said pair of flexible strips and said tool towards said pair of rollers.
4. An insertion device according to claim 3, wherein each roller of said pair of rollers comprises a plurality of protrusions arranged along its circumference, said plurality of protrusions being adapted to engage with a corresponding plurality of holes formed along the length of each strip of said pair of flexible strips.
5. An insertion device according to either of claims 3 and 4, wherein said pair of flexible strips is connected on at least one side of said central channel adapted to receive said tool.
6. An insertion device according to any of claims 3 to 5, wherein said pair of flexible strips is not connected in a region of said central channel adapted to receive said tool.
7. An insertion device according to any of claims 3 to 6, further comprising a separating feature adapted to direct each strip of said pair of flexible strips around one of said pair of rollers.
8. An insertion device according to claim 7, wherein said separating feature comprises unconnected distal ends of said pair of flexible strips, each of said unconnected distal ends being wound around an associated roller of said pair of rollers.
9. An insertion device according to claim 3, wherein each roller of said pair of rollers comprises a plurality of ridges arranged along its circumference, said ridges being adapted to engage with corresponding ridges formed in said pair of flexible strips.
10. An insertion device according to any of claims 3 to 9, wherein said central channel includes weakened sections along its length to facilitate the winding of each strip of said pair of flexibles strip around its associated roller.
11. An insertion device according to any of claims 3 to 10, wherein the insertion device comprises two separate units adapted to be connected to and disconnected from each other, each unit comprising: one strip of said pair of strips; one roller of said pair of rollers; and at least a portion of said guide member.
12. An insertion device according to claim 1, wherein the buckling prevention mechanism comprises a telescopic tube.
13. An insertion device according to claim 12, further comprising a head element to which said tool is coupled at its proximal region, wherein said telescopic tube is attached between said head element and said guide member.
14. An insertion device according to either of claims 12 and 13, further comprising at least one gripping member connected to said telescopic tube, said at least one gripping member being configured to receive said tool and to support it as it advances in the direction of the insertion site.
15. An insertion device according to either of claims 12 and 13, wherein said tool is enclosed within said telescopic tube.
16. An insertion device according to any of claims 13 to 15, wherein said head element is moved towards said guide member by means of a cable attached between said head element and said guide member.
17. An insertion device according to claim 16, wherein said cable is wound around a pulley attached to said guide member.
18. An insertion device according to claim 1, wherein the propulsion mechanism comprises one or more piezo-electric actuators.
19. An insertion device according to any of the previous claims, wherein said opening further comprises a constraining mechanism configured to be adjusted according to the dimensions of said tool, at least a portion of said constraining mechanism being disposed within said opening.
20. An insertion device according to claim 19, wherein said constraining mechanism comprises at least two portions disposed opposite each other, and wherein at least one of said at least two portions is adapted to be moved towards another of said at least two portions.
21. An insertion device according to claim 20, wherein said constraining mechanism further comprises a tightening screw.
22. An insertion device according to any of the previous claims, further comprising an encoder configured to determine the position of said tool.
23. An insertion device according to claim 22, wherein said encoder is an optical encoder configured to determine the position of said tool by one or more of: sensing markings on said tool and sensing features on one or more components of said buckling prevention mechanism.
24. An insertion device according to any of the previous claims, wherein the insertion device comprises two separate units adapted to be connected to and disconnected from each other, each unit comprising: at least a portion of the guide member; at least a portion of the propulsion mechanism; and at least a portion of the bucking prevention mechanism.
25. An insertion device according to any of the previous claims, wherein said tool comprises one or more of: a needle, a cannula, a catheter, an introducer, a port, a fluid delivery tube or an electrode rod.
26. An assembly for insertion of a tool, comprising: an insertion module comprising: a guide member having an opening adapted to allow passage of said tool therethrough; a propulsion mechanism configured to advance said tool through said opening in the direction of an insertion site; and a buckling prevention mechanism configured to support said tool along at least a portion of its length during its advance in the direction of the insertion site; a housing configured to receive said insertion module; and an actuation mechanism configured to activate said propulsion mechanism.
27. An insertion assembly according to claim 26, wherein said insertion module is configured such that its height relative to the insertion site decreases as said tool advances in the direction of the insertion site.
28. An insertion assembly according to either of claims 26 and 27, wherein said insertion module further comprises a head element to which said tool is coupled at its proximal region.
29. An insertion assembly according to any of claims 26 to 28, wherein the propulsion mechanism includes the buckling prevention mechanism and comprises: a pair of flexible strips connected along at least part of their length and having a central channel therebetween adapted to receive and support said tool, said pair of strips being coupled at its proximal region to said head element; and a pair of rollers disposed on either side of said pair of flexible strips, and interacting therewith such that counter-rotation of said pair of rollers causes said pair of flexible strips to move between said pair of rollers; wherein upon said tool being received within said central channel, said pair of flexible strips and said tool are connected by means of said head element, such that counter-rotation of said rollers in an appropriate direction pulls said pair of flexible strips and said tool towards said pair of rollers.
30. An insertion assembly according to claim 29, wherein each roller of said pair of rollers comprises a plurality of protrusions arranged along its circumference, said plurality of protrusions being adapted to engage with a corresponding plurality of holes formed along the length of each strip of said pair of flexible strips.
31. An insertion assembly according to either of claims 29 and 30, wherein the distal ends of said pair of flexible strips are unconnected, each of said unconnected distal ends being wound around an associated roller of said pair of rollers.
32. An insertion assembly according to any of claims 26 to 31, wherein the insertion module comprises two separate units adapted to be connected to and disconnected from each other, each unit comprising: one strip of said pair of strips; one roller of said pair of rollers; and at least a portion of said guide member.
32. An insertion assembly according to claim 26, wherein the buckling prevention mechanism comprises a telescopic tube.
33. An insertion assembly according to claim 32, wherein the buckling prevention mechanism further comprises at least one gripping member connected to said telescopic tube, said gripping member being configured to receive said tool and to support it as it advances in the direction of the insertion site.
34. An insertion assembly according to claim 26, wherein the propulsion mechanism comprises one or more piezo-electric actuators.
35. An insertion assembly according to any of claims 26 to 33, further comprising an encoder configured to determine the position of said tool.
36. An insertion assembly according to any of claims 26 to 35, wherein said tool comprises one or more of: a needle, a cannula, a catheter, an introducer, a port, a fluid delivery tube or an electrode rod.
37. An insertion assembly according to claim 26, wherein a first portion of said actuation mechanism is coupled to said housing, and a second portion of said actuation mechanism is coupled to said guide member of the insertion module.
38. An insertion assembly according to any of claims 26 to 37, further comprising a locking mechanism configured to lock said insertion module within said housing.
39. An insertion assembly according to claim 38, wherein said locking mechanism comprises: a rotating member coupled to said insertion module; and one or more slits formed in said housing; wherein rotation of said rotating member such that at least a portion of said rotating member enters at least one of said one or more slits, locks said insertion module within said housing.
40. An insertion assembly according to any of claims 26 to 39, wherein said housing comprises one or more coupling elements adapted to couple said housing to an automated insertion device, said automated insertion device including at least a controller.
41. An insertion assembly according to any of claims 26 to 40, wherein the insertion module comprises two separate units adapted to be connected to and disconnected from each other, each unit comprising: at least a portion of the guide member; at least a portion of the propulsion mechanism; and at least a portion of the bucking prevention mechanism.
42. A device for insertion of a tool, comprising: a pair of flexible strips connected along at least part of their length and having a central channel therebetween adapted to receive said tool; and a pair of rollers disposed on either side of said pair of flexible strips, and interacting therewith such that counter-rotation of said pair of rollers causes said pair of flexible strips to move between said pair of rollers; wherein upon said tool being received within said central channel, said pair of flexible strips and said tool are secured together at an end remote from said pair of rollers, such that counter-rotation of said rollers in an appropriate direction pulls said pair of flexible strips and said tool towards said pair of rollers.
43. An insertion device according to claim 42, wherein each roller of said pair of rollers comprises a plurality of protrusions arranged along its circumference and adapted to engage with corresponding plurality of holes formed along the length of each strip of said pair of flexible strips.
44. An insertion device according to either of claims 42 and 41, wherein said pair of flexible strips are connected on at least one side of said central channel adapted to receive said tool, and are not connected in a region of said central channel.
45. An insertion device according to any claims 42 to 44, further comprising a holder member configured to secure together said pair of flexible strips and said tool.
46. An insertion device according to any of claims 42 to 45, further comprising a guide member, the guide member including: one or more cavities adapted to accommodate said pair of rollers; and an opening adapted to allow passage of said tool therethrough.
47. An insertion device according to claim 46, wherein said opening further comprises a constraining mechanism configured to be adjusted according to the dimensions of said tool, at least a portion of said constraining mechanism being disposed within said opening.
48. An insertion device according to claim 47, wherein said constraining mechanism comprises at least two portions disposed opposite each other, and wherein at least one of said at least two portions is adapted to be moved towards another of said at least two portions.
49. An insertion device according to any of claims 42 to 48, further comprising a separating feature adapted to direct each strip of said pair of flexible strips around one of said pair of rollers.
50. An insertion device according to claim 49, wherein said separating feature comprises unconnected distal ends of said pair of flexible strips, each of said unconnected distal ends being wound around an associated roller of said pair of rollers.
51. An insertion device according to claim 49, wherein said separating feature comprises a pair of structural edges, each being disposed sufficiently close to an associated roller that each flexible strip is directed by one of said edges around that roller disposed close to said edge.
52. An insertion device according to claim 49, wherein said pair of rollers is disposed within a guide member, and each of said structural edges are the edges of a component of said guide member.
53. An insertion device according to any of claims 42 to 52, wherein said central channel includes weakened sections along its length to facilitate the winding of each flexible strip around its associated roller.
54. An insertion device according to any of claims 42 to 53, wherein the distance between two adjacent protrusions of said plurality of protrusions is larger than the distance between two adjacent holes of said plurality of holes.
55. An insertion device according to claim 42, wherein the external surfaces of said pair of rollers and the external surfaces of said pair of flexible strips are roughened such that the interaction between them is achieved by means of friction.
56. An insertion device according to any of claims 42 to 54, wherein said tool comprises a tip, and the insertion device further comprises a protecting element configured to prevent said tip from contacting an internal surface of said central channel as said tool is advanced in the direction of the insertion site.
57. An insertion device according to claim 56, wherein said protecting element is inserted within said central channel.
58. An insertion device according to claim 57, wherein said protecting element comprises a hollow tube.
59. An insertion device according to claim 56, wherein said protecting element is coupled to at least a portion of said insertion device externally to said central channel.
60. An insertion device according to any of claims 42 to 59, wherein the insertion device comprises two separate units adapted to be connected to and disconnected from each other, each unit comprising: one strip of said pair of strips; and one roller of said pair of rollers.
61. An assembly for insertion of a tool, comprising: an insertion module comprising: a pair of flexible strips connected along at least part of their length and having a central channel therebetween adapted to receive said tool; and a pair of rollers disposed on either side of said pair of flexible strips, and interacting therewith such that counter-rotation of said pair of rollers causes said pair of flexible strips to move between said pair of rollers; wherein upon said tool being received within said central channel, said pair of flexible strips and said tool are secured together at an end remote from said pair of rollers, such that counter-rotation of said rollers in an appropriate direction pulls said pair of flexible strips and said tool towards said pair of rollers; a housing configured for receiving said insertion module; and an actuation mechanism configured to rotate said pair of rollers.
62. An insertion assembly according to claim 61, wherein a first portion of said actuation mechanism is coupled to said housing.
63. An insertion assembly according to claim 62, wherein the insertion module comprises a second portion of said actuation mechanism.
64. An insertion assembly according to any of claims 61 to 63, further comprising a locking mechanism configured to lock said insertion module within said housing.
65. An insertion assembly according to claim 64, wherein said locking mechanism comprises: a rotating member coupled to said insertion module; and one or more slits formed in said housing; wherein rotation of said rotating member such that at least a portion of said rotating member enters at least one of said one or more slits locks said insertion module within said housing.
66. An insertion assembly according to any of claims 61 to 65, further comprising a separating feature adapted to direct each strip of said pair of flexible strips around one of said pair of rollers.
67. An insertion assembly according to claim 66, wherein said separating feature comprises unconnected distal ends of said pair of flexible strips, each of said unconnected distal ends being wound around an associated roller of said pair of rollers.
68. An insertion assembly according to any of claims 61 to 67, further comprising: a front leading element coupled to said insertion module; and a back leading element coupled to said housing; wherein said front and back leading elements are configured to receive therebetween one of said unconnected ends of said pair of strips after said one of said unconnected ends is wound around its associated roller of said pair of rollers.
69. An insertion assembly according to any of claims 61 to 68, wherein said housing comprises one or more coupling elements adapted to couple said housing to an automated insertion device, said automated insertion device including at least a controller.
70. An insertion assembly according to any of claims 61 to 69, wherein the insertion module comprises two separate units adapted to be connected to and disconnected from each other, each unit comprising: one strip of said pair of strips; and one roller of said pair of rollers.
71. A device for insertion of a tool, comprising: a head element to which said tool is attached at a proximal region of said tool; an end guide element through which said tool is delivered to an insertion site; and a telescopic tube attached between said head element and said end guide element, wherein as said telescopic tube collapses, said head element is moved towards said end guide element and said tool advances towards the insertion site.
72. An insertion device according to claim 71, wherein said head element is moved towards said end guide element by means of a cable attached between said head element and said end guide element.
73. An insertion device according to claim 72, wherein said cable is wound around a pulley attached to said end guide element.
74. An insertion device according to any of claims 71 to 73, further comprising at least one gripping element configured to receive said tool and to support it as it advances in the direction of the insertion site.
75. An insertion device according to any of claims 71 to 73, wherein said tool is enclosed within said telescopic tube.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0044] The present invention will be understood and appreciated more fully from the following detailed description, taken in conjunction with the drawings in which:
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DETAILED DESCRIPTION
[0065] Reference is first made to
[0066] The strips 110 may be paper-based or plastic-based, or made of any other material capable of supporting the needle 100 along its length, thereby preventing it from buckling, but at the same time being flexible enough to curve around the rollers 120 and away from the needle 100. Such materials may be, for example, Polyethylene terephthalate (PET), Polyurethane (PU) or rubberized fabric. At their proximal ends, the flexible strips 110 may be attached to the needle head 102, or to a needle head holder 160, which encloses and grips the needle head 102, such that as the rollers 120 counter-rotate and move the double strip-needle assembly towards the patient's skin, the proximal end of the flexible strips 110 pulls with it the needle head 102, and thus the needle 100, distally towards the insertion point in the patient's skin. The propulsion of the needle 100 from its proximal end is a unique feature which provides the needle 100 with sufficient force to enable it to overcome any obstacles in its insertion path, whether at the skin entry point or further down during the insertion process.
[0067] An encoder may optionally be disposed adjacent to the strips 110, so that the position of the strips, and hence the insertion position of the needle 100 can be determined, such as by a controller or a processor (not shown) receiving the output signals of the encoder. By this means, the medical personnel are able to track the progress of the insertion depth of the needle 100. The encoder can be, for example, an optical encoder, which can either count features on the strip 110, such as the strip drive holes or ridges, as will be shown hereinbelow in
[0068] The insertion device 10 may be a stand-alone device, or it may be part of an insertion assembly/system. In case the insertion device 10 is a stand-alone device, it may further comprise an actuation mechanism, e.g., motor and gears, for rotating the rollers 120 and thus moving the needle 100 towards (and into) the patient's body. In the case that the insertion device is part of an insertion assembly/system, it may be configured to be coupled to an external actuation mechanism.
[0069] Reference is now made to
[0070] As mentioned above, a number of methods are available in order to propel the needle distally into the patient's body. Reference is now made to
[0071] Reference is now made to
[0072] Although the implementations shown in
[0073] In order to provide sterilized operation of the device, a number of options are available. The flexible strips may be supplied with the needle installed as a complete sterile assembly, ready for mounting into the roller assembly. Alternatively, the roller assembly may also be part of the supplied device, making the entire device a disposable one-time use device. In further embodiments, the roller assembly, with the strips inserted thereto devoid of any needle, may be provided as a one-time use disposable unit, such that the user can choose the needle to be installed into the double flexible strip guide. In such embodiments, the double flexible strip guide may be supplied with a thin walled introducer tube down its bore, into which the user can insert the needle, following which the introducer tube can be withdrawn and the needle left enveloped by the flexible strips guide. This enables the user to introduce the needle without unintentionally scratching or puncturing the soft material of the flexible strips, which may further result in particles of the strips' material remaining inside the needle and entering the patient's body.
[0074] Another solution for preventing the needle from scratching the inner surface of the strips may be, for example, including within the bore between the strips a short rod (i.e., shorter than the length of the bore between the strips) with a cone-shaped head, positioned at the top (proximal) end of the bore, the concave side of the cone-shaped head facing the proximal end of the bore, and thus also the incoming needle, such that when the needle is introduced into the bore, its tip encounters the bottom of the concave side of the cone-shaped rod head, and as the needle is being inserted into the bore it pushes down on the cone-shape rod head, thus pushing the entire rod downwardly until the rod falls out from the bottom (distal) end of the bore and the needle is left therein. Yet a further solution may be using an external stabilizing mechanism that is coupled to the device, or at least to the double strip-needle assembly, in order to hold it straight and prevent the strips from folding as the needle is being inserted into the bore, thus preventing the needle from scratching/puncturing the strips' inner surface. Once the needle is positioned properly within the bore between the strips, the external stabilizing member may be removed. Such a mechanism may be disposable and provided with the device, i.e., pre-assembled, and discarded after a single use.
[0075] Reference is now made to
[0076] Reference is now made to
[0077]
[0078] Reference is now made to
[0079] Reference is now made to
[0080] Reference is now made to
[0081]
[0082] The flexible strips 810a, 810b have perforations (or -holes) 812 running along at least a portion of their length, and a groove 814a, 814b running along their longitudinal centerline, such that when the strips are attached to each other their coupled grooves 814a, 814b form together the channel that receives and encloses the needle 800.
[0083] In some implementations, each strip 810a, 810b may include four rows of perforations 812, e.g., two rows on each side of the groove 814a, 814b, as shown in
[0084] The insertion module 80 further comprises two rollers 820a, 820b having protrusions 822 thereon. The protrusions 822 are aligned with the perforations 812 of the strips 810a, 810b, such that as each roller 820a, 820b rotates, its protrusions 822 engage the perforations 812 of the corresponding strip 810a, 810b, resulting in the strips 810a, 810b being pulled down and around the rollers 820a, 820b.
[0085] The insertion module 80 may further include a bevel gear 830 mounted on the same shaft 840a as one of the rollers, in this case roller 820a, such that rotation of the bevel gear 830 causes roller 820a to rotate in the same direction. Counter-rotation of the second roller 820b is achieved via two gears mounted at the opposite end of the shafts 840a, 840b, as described below in
[0086] The shafts 840a, 840b, and the rollers 820a, 820b may be enclosed within a holder 850, which may include a shaft (or -axes) holder portion 853, a strip guide portion 855 and a needle guide portion 857. The shaft holder portion 853 is configured to hold and secure the position of the shafts 840a, 840b. The strip guide portion 855 is configured to lead the strips away from the rollers as the rollers continue to rotate, and its walls may include slits 8552 that allow passage for the protrusions 822 as the rollers rotate. The needle guide portion 857 may include an elongated “tube-like” opening (not shown in
[0087] In some implementations, in order for the insertion module 80 to be used with a variety of needle types and sizes, the elongated opening may have a diameter that is equal or slightly larger than that of the needle with the largest diameter (gauge) intended for use with the insertion module 80. In other implementations, the elongated opening may include therewithin a constraining mechanism, which can be adjusted according to the diameter of the needle being used. An exemplary constraining mechanism is shown in
[0088] The axes holder portion 853, strip guide portion 855 and needle guide portion 857 may be three separate components assembled together to form the holder 850, or they may be manufactured as a single unit. In some implementations two of the three portions (e.g., the strip guide and needle guide portions) may be manufactured as one component, which is then coupled to the third portion (e.g., the axes holder portion).
[0089] The insertion module 80 may further include a needle head holder 860, which secures together the needle head 802 and the proximal end of the strips 810a, 810b. In some implementations, the needle head holder 860 may be composed of two portions 862 which are coupled together after the needle 800 is inserted into the channel between the two strips 810a, 810b, e.g., using screws, an adhesive or a latch mechanism. In some implementations, the two portions 862 of the needle head holder 860 may be fixedly secured together at their distal end, to which the proximal ends of the strips 810a, 810b are attached, and after the needle 800 is inserted into the channel between the two strips, the proximal (top) ends of the two portions 862 are joined together over the needle head 802. If intended for use in the medical field, the insertion module 80 should be a disposable single-use device, in order to prevent cross-contamination between patients. Thus, in some implementations, in order to ensure that the insertion module 80 is not reused with a new needle, the needle head holder 860 may be configured such that once it is fastened over the needle head 802, it cannot be removed from the needle head 802, or that removing the needle head holder 860 from the needle head 802 causes permanent damage to the needle head holder 860 such that it loses its functionality.
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[0091] In some implementations at least one of the gears 870a, 870b may be a ratchet gear, provided with a pawl, so that the gears can only rotate in one direction, while synchronizing or meshing the rotation of the rollers 8201, 820b. Use of a ratchet gear prevents re-use of the insertion module 80, which after one use is no longer sterile, with a new needle. It can be appreciated that the insertion module 80 may include other mechanisms to prevent its re-use, such as a non-removable needle head holder, as described above.
[0092]
[0093] In some implementations, each roller 820a, 820b further includes an additional annular groove 826, which may be wider and deeper than the annular grooves 824, and disposed in the transverse center of the roller, in order to allow uninterrupted passage of the convex side of the grooves 814a, 814b running down the longitudinal center of the strips 810a, 810b, as the strips move in the distal direction and around the rollers 820a, 820b. When the strips 810a, 810b are attached (e.g., adhered) to each other, the longitudinal grooves 814a, 814b form together the channel 815 which receives and accommodates the needle therein. In some implementations, instead of the insertion module 80 including two rollers 820a, 820b each having an annular center groove 826, the insertion module 80 may include four rollers, each pair of rollers disposed on a single shaft, and spaced apart so as to allow uninterrupted passage of the convex side of the grooves 814a, 814b therebetween.
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[0095] It can be appreciated that, similarly to the implementation shown in
[0096] As further shown in
[0097] Reference is now made to
[0098] In some implementations the pitch of the roller 820b may be slightly larger than the pitch of the strips 810b, i.e., the distance between two adjacent roller protrusions may be larger than the distance between two adjacent strip perforations. As a result, the load of pulling the strip falls on the last protrusion 822a that remains engaged with the strip 810b before the strip disengages from the roller 820b. This is advantageous since it ensures that the strip 810b remains tightly coupled to the roller 820b in the section between the first engaging protrusion 822b and the last engaging protrusion 822a, as the roller 820b rotates. If the distance between two adjacent protrusions 822 was smaller than the distance between two adjacent perforations 812, the load of pulling the strip 810 would fall on the first protrusion 822b that engages the strip 810b as the roller 820b rotates. This might result in the strip 810b disengaging from the roller 822b as it rotates and falling onto the internal surface of the holder 850, which may result in high friction or even damage to the strip and/or roller and interruption of the insertion procedure. Further, the friction forces may increase in case the strip 810b includes an adhesive on its internal surface for attachment to the second strip 810a, since the remains of the adhesive might cause the strip 810b to attach to the internal surface of the holder 850 after the strips are separated from each other.
[0099] Reference is now made to
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[0103] Reference is now made to
[0104] In some implementations, the insertion module 80 is a disposable single-use unit, and the end effector 1300 is reusable, i.e., it can be used repeatedly with new disposable insertion modules 80. In such cases the end effector 1300 is preferably an integral unit of an automated (e.g., robotic) insertion device (not shown in
[0105] In some implementations, the motor assembly 1320 is an integral component of the end effector 1300. In other implementations, the motor assembly 1320 may be separate from the end effector 1300 such that it is coupled to the end effector 1300 either before or after the insertion module 80 is coupled to the end effector 1300. The motor assembly 1320 actuates the insertion mechanism as follows: the geared motor 1322 rotates the bevel gear 1324, which in turn rotates the bevel gear 830 of the insertion module 80, to which it is coupled. The bevel gear 830 of the insertion module 80 then rotates the rollers (not shown in
[0106] In case the motor assembly 1320 is an integral part of the end effector 1300, the motor assembly 1320 may be connected to the frame 1310 such that the motor assembly 1320 can be moved aside in order to allow proper coupling (and de-coupling) of the insertion module 80 to the end effector 1300. For example, the interface between the motor assembly 1320 and the frame 1310 may be in the form of a hinge, such that the motor assembly 1320 can pivot about its axis. After the insertion module 80 is introduced into the frame 1310, the motor assembly 1320 is moved back to its position such that the bevel gear 1324 is properly coupled to the bevel gear 830 of the insertion module 80. The motor assembly 1320 may be moved back to its position either manually or automatically, e.g., the motor assembly 1320 may include a projection (not shown) which is pressed (or otherwise engaged) by the insertion module 80 as it is being inserted into the frame 1310 of the end effector 1300, such that coupling the insertion module 80 to the end effector 1300 causes the motor assembly 1320 to return to its place and establish operative coupling with the insertion module 80 (e.g., between bevel gear 830 of the insertion module and bevel gear 1324 of the motor assembly 1320).
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[0111] Once the medical tool (e.g., needle) is inserted into its desired position within the patient's body, the physician/clinician may prefer to remove the insertion device/assembly and the entire automated insertion system (when a body-mounted insertion system is employed) from the patient's body, leaving only the tool in its place. For example, during biopsies in which an introducer is inserted into the patient's body using the insertion device, once the introducer is in its position, the core of the introducer is removed from the introducer and a biopsy needle is inserted through the introducer and into the target (e.g., tumor). In such cases, the insertion device and/or the automated insertion device may obstruct the clinician's view or actions such that he/she may prefer to remove all devices/components other than the introducer from the patient's body.
[0112]
[0113]
[0114] It is appreciated by persons skilled in the art that the present invention is not limited by what has been particularly shown and described hereinabove. Rather the scope of the present invention includes both combinations and subcombinations of various features described hereinabove as well as variations and modifications thereto which would occur to a person of skill in the art upon reading the above description and which are not in the prior art.