Poultry injection apparatus and methods of positioning poultry injection apparatus are described herein.
The processing of poultry may include activities such as sexing to determine gender, inoculating or otherwise medicating the birds, feeding the birds, weighing the birds, treating the beaks and/or claws of the birds (to, e.g., retard their growth), etc. Conventionally, birds are handled manually, i.e., individuals must physically hold the bird to perform the injection process.
When injecting birds to, e.g., deliver a medication or some other therapeutic substance, vitamins, or any other substance that should or could be advantageously delivered subcutaneously, the injection process may be complicated by the smaller size of the birds and their movement.
Injection apparatus and methods of positioning an injection needle are described herein. The injection apparatus may include, in various embodiments, one or more axes of rotation. For example, the injection apparatus may include an injection unit attached to a support assembly that slides in a linear direction and/or rotates about a support assembly axis, with the injection unit attached to the support assembly such that it rotates relative to the support assembly about an injection unit axis.
The linear and/or rotational movement of the components of the injection apparatus can potentially enhance positioning of an injection needle in a manner that may improve accurate and repeatable placement of an injection needle on a bird located in a fixed position relative to the injection apparatus.
Another potential advantage of the injection apparatus and methods described herein is that, in some embodiments, the linear and/or rotational motion of the different components may cause the skin of the bird to fold or bunch up at the injection location to enhance subcutaneous delivery of the substances delivered using the injection needles.
Although the injection apparatus and methods described herein may be used with birds of any age, they may be particularly useful when used with hatchlings, where “hatchlings” are defined as young birds (e.g., chickens, turkeys, ducks, geese, etc.) with an age of one week or less.
In one aspect, some embodiments of an injection apparatus as described herein may include: a support assembly attached to a frame, wherein the support assembly is configured to move, relative to the frame, between a forward position and a rearward position; an injection unit attached to the support assembly, wherein the injection unit moves with the support assembly between the forward position and the rearward position; and wherein the injection unit is configured to rotate about an injection unit axis relative to the support assembly, the injector unit rotating between a staging position and an injection position; wherein the injection unit comprises an injection needle fluidly connected to a fluid coupling and a needle actuator, wherein the needle actuator is configured to advance the injection needle from a retracted position to an advanced position.
In some embodiments of the injection apparatus, the support assembly comprises a slide support configured to move in a linear direction between the forward position and the rearward position, and the injection unit is attached to the slide support such that the injection unit moves in a linear direction with movement of the slide support, and wherein the injection unit rotates relative to the slide support when rotating about the injection unit axis. In some embodiments, the slide support is configured to rotate about a support assembly axis that is offset from the injection unit axis, and rotation of the slide support about the support assembly axis changes the orientation of the linear direction along which the slide support moves between the rearward and forward positions. In still other embodiments, the support assembly axis is aligned with the injection unit axis.
In some embodiments of the injection apparatus described herein, the support assembly comprises a support arm attached to the frame, wherein the support arm comprises a first end and a second end, wherein the support arm is configured to rotate about a support assembly axis when moving between the forward position and the rearward position, and the injection unit is attached to the support arm such that the injection unit moves in an arc about the support assembly axis when the support arm moves between the forward position and the rearward position. The support assembly may further include a support arm actuator operably attached to the support arm, wherein the support arm actuator is configured to rotate the support arm about the support assembly axis.
In some embodiments that include a rotating support arm as a part of the support assembly, the injection unit axis and the support assembly axis are aligned with each other.
In some embodiments that include a rotating support arm as a part of the support assembly, the injection needle comprises a tip that follows an injection path between the retracted position and the advanced position, wherein the injection path is located on a line that intersects the injection unit axis. In some embodiments, the line on which the injection path is located intersects the injection unit axis when the injection unit is in all positions between and including the retracted position and the advanced position. In some embodiments, the line on which the injection path is located intersects the support assembly axis when the support arm is in the forward position and the injection unit is in the injection position.
In some embodiments that include a rotating support arm as a part of the support assembly, the distance between a distal end of the needle guard and the injection unit axis is less than the distance between the distal end of the needle guard and the support assembly axis.
In some embodiments that include a rotating support arm as a part of the support assembly, rotation of the support arm about the support assembly axis from the rearward position to the forward position and rotation of the injection apparatus about the injection unit axis from the staging position to the injection position are in the same direction when viewed from the same vantage point.
In some embodiments of the injection apparatus described herein, the injection unit comprises an injection unit bias structure that is configured to apply a biasing force on the injection unit that resists rotation of the injection unit from the staging position to the injection position. In some embodiments, the injection unit bias structure is configured such that the biasing force is adjustable.
In another aspect, methods of positioning an injection needle are described herein, with the method comprising: moving a support assembly from a rearward position to a forward position; and rotating an injection unit attached to the support assembly about an injection unit axis from a staging position and an injection position, wherein the injection unit comprises a needle actuator and an injection needle fluidly connected to a fluid coupling, wherein the needle actuator is configured to advance the injection needle from a retracted position to an advanced position; wherein rotation of the injection unit about the injection unit axis from the staging position towards the injection position is initiated before the support assembly has reached its forward position.
In some embodiments of the methods described herein, the injection unit is rotating between the staging position and the injection position during at least a portion of the time the support assembly is moving between the rearward position and the forward position.
In some embodiments of the methods described herein, the injection unit is biased towards the staging position by a biasing force that resists rotation of the injection unit from the staging position to the injection position. In some embodiments, the method may include adjusting the biasing force.
In some embodiments of the methods described herein, moving the support assembly comprises moving a slide support in a linear direction between the forward position and the rearward position, and wherein the injection unit is attached to the slide support such that the injection unit moves in a linear direction with movement of the slide support. In some embodiments, the method may include rotating the slide support about a support assembly axis that is offset from the injection unit axis, wherein rotating the slide support about the support assembly axis changes the orientation of the linear direction along which the slide support moves between the rearward and forward positions.
In some embodiments of the methods described herein, moving the support assembly comprises rotating a support arm about a support assembly axis between the forward position and the rearward position, and wherein the injection unit is attached to the support arm such that the injection unit moves in an arc about the support assembly axis when the support arm moves between the forward position and the rearward position. In some embodiments, the support assembly axis and the injection unit axis are aligned with each other.
In some embodiments of the methods described herein that include rotating a support arm between a rearward and a forward position, the injection needle comprises a tip that follows an injection path between the retracted position and the advanced position, and wherein the injection path is located on a line that intersects the injection unit axis. In some embodiments, the line on which the injection path is located intersects the injection unit axis when the injection unit is in all positions between and including the staging position and the injection position. In some embodiments, the line on which the injection path is located intersects the support assembly axis when the support arm is in the forward position and the injection unit is in the injection position.
In some embodiments of the methods described herein that include rotating a support arm between a rearward and a forward position, the distance between a distal end of the needle guard and the injection unit axis is less than the distance between the distal end of the needle guard and the support assembly axis.
In some embodiments of the methods described herein that include rotating a support arm between a rearward and a forward position, rotation of the support arm about the support assembly axis from the rearward position to the forward position and rotation of the injection apparatus about the injection unit axis from the staging position to the injection position are in the same direction when viewed from the same vantage point.
In another aspect, the injection apparatus described herein may include a slide assembly attached to a frame, wherein the slide assembly comprises a slide support configured to move in a linear direction between a forward position and a rearward position relative to the frame; an injection unit attached to the slide support, wherein the injection unit is configured to rotate about an injection unit axis relative to the slide assembly, the injector unit rotating between a staging position and an injection position; wherein the injection unit comprises an injection needle fluidly connected to a fluid coupling and a needle actuator, wherein the needle actuator is configured to advance the injection needle from a retracted position to an advanced position.
In another aspect, the injection apparatus described herein may include a support assembly comprising a support arm and a support arm actuator operably attached to the support arm, wherein the support arm is configured to rotate about a support assembly axis relative to a frame to which the support assembly is attached, wherein the support arm actuator is configured to rotate the support arm about the supply assembly axis between a rearward position and a forward position; and an injection unit attached to the support arm, wherein the injection unit is configured to rotate about an injection unit axis relative to the support arm between a staging position and an injection position, wherein the injection axis is displaced from the supply assembly axis; wherein the injection unit comprises an injection needle fluidly connected to a fluid coupling and a needle actuator, wherein the needle actuator is configured to advance the injection needle from a retracted position to an advanced position.
The words “preferred” and “preferably” refer to embodiments of the invention that may afford certain benefits, under certain circumstances. However, other embodiments may also be preferred, under the same or other circumstances. Furthermore, the recitation of one or more preferred embodiments does not imply that other embodiments are not useful, and is not intended to exclude other embodiments from the scope of the invention.
As used herein, “a,” “an,” “the,” “at least one,” and “one or more” are used interchangeably. Thus, for example, an injection needle may refer to one or more injection needles unless otherwise indicated.
The term “and/or” means one or all of the listed elements or a combination of any two or more of the listed elements.
The above summary is not intended to describe each embodiment or every implementation of the present invention. Rather, a more complete understanding of the injection apparatus and methods described herein will become apparent and appreciated by reference to the following Description of Illustrative Embodiments and claims in view of the accompanying figures of the drawing.
The present invention will be further described with reference to the views of the drawing, wherein:
In the following description of illustrative embodiments, reference is made to the accompanying figures of the drawing which faun a part hereof, and in which are shown, by way of illustration, specific embodiments in which the carriers and methods described herein may be practiced. It is to be understood that other embodiments may be utilized and structural changes may be made without departing from the scope of the present invention.
One illustrative embodiment of an injection apparatus and methods of positioning an injection needle as described herein are depicted in connection with
Further, the injection apparatus and methods described herein may be used in processing systems and methods such as those described in U.S. Pat. No. 7,066,112, titled AUTOMATED POULTRY PROCESSING METHOD AND SYSTEM. The injection apparatus and methods described herein may also be used in other systems or environments where transport and/or processing of birds is performed.
One illustrative embodiment of an injection apparatus as described herein is depicted in side views in
Rotation of the support arm 10 around the axis 12 can be accomplished using many different actuation mechanisms. One example of a potential mechanism for rotating the support arm 10 about the axis 12 is depicted in
Also depicted in connection with the illustrative embodiment of
The injection unit 20 includes an injection needle 30 that is used to subcutaneously deliver vaccines or other materials to a bird as described herein. The injection needle 30 is preferably advanced using a needle actuator that is configured to advance the injection needle 30 from a retracted position in which the tip of the needle is not exposed to an advanced position in which the tip of the needle is exposed and capable of piercing the skin of a bird located in the injection apparatus.
As seen in
In the sequence of
In the absence of a bird located in a carrier 40 in the inoculation position within the injection apparatus, the injection unit 20 would, in some embodiments, remain in the staging position throughout movement of the support arm 10. Where, however, a bird in a carrier 40 is located in the inoculation position within the injection apparatus as depicted in
Another feature depicted in connection with
Rotation of the injection unit 20 about injection unit axis 22 may, in some embodiments, preferably be resisted by an injection unit bias structure that is attached between the support arm 10 and the injection unit 20. The injection unit bias structure may preferably be configured to apply a biasing force on the injection unit 20 that resists rotation of the injection unit 20 about the injection unit axis 22 from its staging position to its injection position. In other words, the injection unit 20 may be biased into the staging position by the injection unit bias structure.
In the depicted embodiment, the injection unit bias structure may be provided in the form of a coil spring or other resilient member located in a sleeve 24 with the force applied by the injection unit bias structure to resist rotation of the injection unit 20 being adjusted by rotation of a knob 25. Many other bias structures may be used in place of that depicted in the embodiment seen in
The injection unit 20 of the embodiment depicted in
Although not required, in some embodiments the location of a bird in the inoculation position may cause rotation of the injection unit 20 about injection unit axis 22 such that the injection path followed by the tip of the injection needle 30 is located on a line that also extends through support assembly axis 12 about which support arm 10 rotates as described herein. This arrangement is not, however, required.
In another manner of characterizing the relationships between the support arm 10, the support assembly axis 12 and the injection unit 22, the distance between a distal end of the injection needle guard 36 and the injection unit axis 22 about which the injection unit 20 rotates may preferably be less than the distance between the support assembly axis 12 and the injection unit axis 22. The distal end of the needle guard 36 is the portion of the needle guard 36 that is located furthest from the injection unit axis 22.
In still another manner of characterizing the relationships between the various components of the injection apparatus depicted in
In yet another manner of characterizing the injection apparatus described herein, the direction of rotation of the various components may be such that the support arm 10 and the injection unit 20 rotate about their respective axes 12 and 22 in the same direction. For example, as seen in
Among the other components and features depicted in the illustrative embodiment of the injection apparatus of
In some embodiments, the needle guard 36 may include one or more features to assist in proper placement of the injection needle 30. Such features could include, e.g., structures (such as, e.g., barbs, posts, and other surface features), the use of tacky materials such as adhesives, silicones, and other materials that tend to grip the surface of the bird, etc.
In some embodiments of the injection apparatus described herein, the position of the injection needle guard 36 relative to the injection unit axis 22 can be adjusted to compensate for variations in the position of the bird relative to the injection unit 20, the size of the birds being processed by the injection apparatus, and other features or characteristics. Further, in some embodiments, the force with which the injection needle 30 is advanced may be adjusted depending on the birds being processed and other factors (e.g., the size of the needle, etc.).
The injection apparatus depicted in
Referring now to
The orientation or angle of the linear direction 109 along which the support slide 110 moves between its rearward and forward positions may be adjusted by rotating the support assembly about a support assembly axis 112. Although the support assembly axis 112 is located within the boundaries of the support assembly in the depicted embodiment (in particular, within the boundaries of the base 150, the support assembly axis 112 could be located in any other suitable location outside of the boundaries of the support assembly. In the depicted embodiment, rotation of the support assembly involves rotating the base 150 and the attached support slide about the axis 112. The direction of rotation of the support slide 110 about the support assembly axis 112 is indicated by arc 151 in
Unlike rotation of the support 10 in the embodiment of the injection apparatus depicted in
Movement of the slide support 110 in the linear direction 109 can be accomplished using many different actuation mechanisms. One example of a potential mechanism for moving the slide support 110 relative to the base 150 may include, e.g., a bidirectional piston, a rack and pinion, magnetic drive systems, solenoids, etc.
Also depicted in connection with the illustrative embodiment of
The injection unit 120 includes an injection needle 130 that is used to subcutaneously deliver vaccines or other materials to a bird as described herein. The injection needle 130 is preferably advanced using a needle actuator that is configured to advance the injection needle 130 from a retracted position in which the tip of the needle is not exposed to an advanced position in which the tip of the needle is exposed and capable of piercing the skin of a bird located in the injection apparatus. In most respects, the injection unit 120 is preferably similar to the injection unit 20 depicted in FIGS. 1 and 3-5.
The linear movement of the support slide 110 can be seen by comparing
In the absence of a bird located in a carrier 140 in the inoculation position within the injection apparatus, the injection unit 120 would, in some embodiments, remain in the staging position throughout movement of the support slide 110. Where, however, a bird in a carrier 140 is located in the inoculation position within the injection apparatus (e.g., as depicted in
Rotation of the injection unit 120 about injection unit axis 122 may, in some embodiments, preferably be resisted by an injection unit bias structure that is attached between the support slide 110 and the injection unit 120. The injection unit bias structure may preferably be configured to apply a biasing force on the injection unit 120 that resists rotation of the injection unit 120 about the injection unit axis 122 from its staging position to its injection position. In other words, the injection unit 120 may be biased into the staging position by the injection unit bias structure.
In the depicted embodiment, the injection unit bias structure may be provided in the form of a coil spring or other resilient member with the force applied by the injection unit bias structure to resist rotation of the injection unit 120. Any suitable bias structures may be used in connection with the injection unit 120 so long as rotation of the injection unit 120 is resisted. In some embodiments, the injection unit bias structure may provide an adjustable biasing force, i.e., a force that may be changed as needed, but that is not a necessary component or function of the injection apparatus described herein.
Another adjustment that may be made in some embodiments of the injection apparatus depicted in
Another adjustment that may be made in some embodiments is in the vertical position of the injection unit 120 relative to the support slide 110, where the vertical adjustment is in a direction that is essentially perpendicular to the linear direction 109. That adjustment could be used to, for example, change the position at which the needle guard 136 would contact a bird located in the carrier 140 during advancement of the support slide to its forward position. The vertical adjustment could be used to, for example, change the location at which the needle guard 136 would contact a bird located in the carrier 140.
The injection apparatus and related components may be manufactured of any suitable materials, e.g., metals, plastics, etc. In some instances, it may be beneficial if the materials have selected physical characteristics, such as, e.g., electrical conductivity, thermal conductivity, etc.
The complete disclosure of the patents, patent documents, and publications cited in the Background, the Description of Illustrative Embodiments, and elsewhere herein are incorporated by reference in their entirety as if each were individually incorporated.
Exemplary embodiments of the injection apparatus and methods described herein have been discussed and reference has been made to possible variations. These and other variations and modifications will be apparent to those skilled in the art without departing from the scope of the invention, and it should be understood that this invention is not limited to the illustrative embodiments set forth herein. Accordingly, the invention is to be limited only by the claims provided below and equivalents thereof.
The present application claims the benefit under 35 U.S.C. §119 of U.S. Provisional Patent Application No. 61/435,103, titled POULTRY INJECTION APPARATUS AND METHODS and filed on Jan. 21, 2011, which is hereby incorporated by reference in its entirety
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US12/22014 | 1/20/2012 | WO | 00 | 9/30/2013 |
Number | Date | Country | |
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61435103 | Jan 2011 | US |