Tail piece for remote delivery device and method of attaching same
20190360790 ยท 2019-11-28
Assignee
Inventors
Cpc classification
A61D7/00
HUMAN NECESSITIES
International classification
F42B12/54
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A remote delivery device is disclosed which has a tubular body and a tubular tail piece. The tail piece is adapted to telescope part way into body and has a plurality of stop members provided at a desired axial position. The stop members are located at spaced-apart locations around an outer circumferential surface of the tail piece and extend radially outwardly beyond an inside diameter of the body so that a forward tail end of the tail piece can be inserted into the body only to the location of the said stop members at the desired axial position. The body is crimped onto said tail piece at the desired axial position with a rearmost edge of the body abutting the stop members. With this modification to the stop members on the tail piece, axial expansion of said body caused by a crimping operation imparts less stress and axial force on the tail piece as compared to stress and force which would be imposed upon a tail piece which has a singular annular stop extending around an entire circumference of said tail piece. This results in reducing a rate of failure of said tail piece breaking off from said body when the remote delivery device is subjected to outside stresses or forces.
Claims
1. A remote delivery device comprising a tubular body and a tubular tail piece, said tail piece adapted to telescope part way into body, said tail piece tube having a plurality of stop members provided at a desired axial position, said stop members being located at spaced-apart locations around an outer circumferential surface of said tail piece, said stop members extending radially outwardly beyond an inside diameter of said body whereby a forward tail end of said tail piece can be inserted into said body only to said stop members at said desired axial position, said body being crimped onto said tail piece at said desired axial position with a rearmost edge of said body abutting said stop members.
2. A remote drug delivery device according to claim 1 whereby axial expansion of said body caused by a crimping operation imparts less stress and axial force on said tail piece as compared to stress and force which would be imposed upon a tail piece having a singular annular stop extending around an entire circumference of said tail piece whereby reducing a rate of failure of said tail piece breaking off from said body when said remote delivery device is subjected to outside stresses or forces.
3. A remote delivery device according to claim 1 wherein said tail piece includes an annular groove into which an O-Ring is installed and rear end of said body is crimped.
4. A remote delivery device according to claim 3 wherein said annular groove includes a rearward facing solid wall surface, a groove floor surface having an outer diameter less than an outer diameter of said forward tail end, and a partial forward-facing wall comprised of said spaced-apart stop members.
5. A remote delivery device according to claim 4 wherein said partial forward-facing wall comprises spaced-apart stop member which in combination extend around about 50% said circumferential surface of said tail piece.
6. A remote delivery device according to claim 5 wherein said stop members comprise four spaced apart stop members, each stop member extending 45 radial degrees symmetrically around said tail piece thus providing four spaced apart radial locations where said stop members contact a rearmost edge of said main body and four spaced apart radial locations where no such contact occurs.
7. A remote delivery device according to claim 4 wherein said partial forward-facing wall comprises spaced-apart stop member which in combination extends around between 30% and 70% of said circumferential surface of said tail piece.
8. A remote delivery device according to claim 1 wherein said main body is formed of aluminum.
9. A remote delivery device according to claim 1 wherein said tail piece is formed of formed of polycarbonate.
10. A remote delivery device comprising: a) a tubular body having a forward body end and a rear body end; and b) a tubular tail piece inserted into said rear body end of said tubular body, said body having a rear end thereof mechanically crimped onto said tail piece to secure said tail piece to said body, said tail piece having tubular forward tail end having an outer diameter smaller than an inner diameter of said rear body end allowing said forward tail end to be inserted into said rear body end, said forward tail end also including a plurality of stop members located at spaced-apart locations around an outer circumferential surface of said tail piece defining a rearmost portion of said forward tail end, said stop members having an outer diameter larger than said inner diameter of said rear body end whereby only the forward tail end of said tail piece can be inserted into said rear body end and said tail piece is crimped at a desired axial position relative to said body, said stops having a forward stop surface forming a partial forward-facing wall which collectively abuts a rearmost edge of said rear body end at about 50% of the circumference of said rearmost edge whereby stress on said tail piece caused by axial expansion of said rearmost edge is reduced.
11. A method of attaching a tubular tail piece to a tubular body of a remote delivery device comprising the steps of: providing a tubular body having an inside diameter; providing a tubular tail piece tube having an outside diameter smaller than said inside diameter of said body, said tail piece having a plurality of stop members provided at a desired axial position, said stop members being located at spaced-apart locations around an outer circumferential surface of said tail piece, said stop members extending radially outwardly beyond said inside diameter of said body; inserting a forward end of tail piece telescopically into said body to until a rearmost edge of said body contacts said stop members at said desired axial position; and crimping said body onto said tail piece at said desired axial position with portions of said rearmost edge of said body abutting said stop members and other portions of said rearmost edge not in contact with said stop members.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0033] Referring to
[0034] Referring to
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[0036] Referring to
[0037] Referring to
[0038] As best shown in
[0039] Additionally, although it is preferred that the present invention include stop members 110 which extend around approximately 50% of the circumference of the tail piece, applicant has discovered that the invention provides a reduction in stress to the tail piece if the stop members extend anywhere from 30% to 70% of the distance around the circumference. For example, if the stop members were provided each member having a radial distance of 27 and each stop member being spaced-apart by a radial distance Y of 63 then such an arrangement would provide stop members which extend around 30% perimeter or circumference of the tail piece 100. Alternatively, if four (4) stop members were provided each extending a radial distance X of 63 with a space between them of Y being equal to 27, in this instance, the stop members 110 would extend around 70% the perimeter. It will be obvious to those skilled in the art that the number of stop members and distance between them can be varied in many ways but in order for the present invention to significantly reduce stress on the tail piece it is believed that stop members extending between 30 and 70 around the perimeter is required with stop member extending around 50% of the circumference being considered ideal.
[0040] As will be well understood the provision of a groove 14 shown in
[0041] Referring to
[0042] In practice, prior to the present invention, stop members consisted of a single annular stop 410 which fully encircled the tail piece as shown in
[0043] While this change might at first appear somewhat trivial it has a real and unexpected benefit in practice. The art of manufacturing remote delivery devices is a very difficult process which requires precise manufacturing tolerances. An RDD is a complex device which is literally shot from a projector at a high velocity, flies through the air and into the body of an animal and then dispenses an injectable liquid at a controlled rate. The mechanics of such a device is highly technical and the amount of force which the RDD is subject to especially during the actual discharge from the projector is enormous. By providing an RDD which has a tail piece which is less likely to break off greatly increases the effectiveness of the device and allows for increased performance for both the animal to which medications need to be administered and to the operators who discharges the projector and delivers the RDD into the animal.
[0044] While not specifically mentioned earlier, it is highly desirable that the stop members regardless of the number be provided in a symmetrical pattern around the circumference of the tail piece. Because these devices are designed for accurate flight, having a symmetrical design is believed to be highly advantageous.
[0045] It is to be understood that while certain forms of the present invention have been illustrated and described herein, the present invention is not to be limited to the specific forms or arrangements of parts described and shown.