Vacuum driven planting apparatus
The vacuum-powered device and system address the inefficiencies of manual follicular unit handling by enabling rapid, damage-reduced, and automated follicular unit implantation, facilitating efficient and precise follicular unit implantation.
Patent Information
- Application Number
- JP2025159468
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-03-23
- Filing Date
- 2025-09-25
- Publication Date
- 2026-01-06
AI Technical Summary
Existing methods for handling follicular units are inefficient and cumbersome, often requiring manual handling and can cause damage to the fragile follicular units, and the implantation process is labor-intensive and time-consuming.
A vacuum-powered device with an elongate body, intermediate reservoir, and angled hollow needle, utilizing a linear rod to load and implant follicular units, and a system with a pressure source, vacuum source, and differential pressure detector for automated implantation.
Facilitates rapid, minimally invasive, and efficient implantation of follicular units while reducing damage, allowing for precise control and automation of the process.
Smart Images

Figure 2026001093000001_ABST
Abstract
Description
[Technical Field]
[0001] 1.Technical Field The field relates generally to devices and systems for implanting hair grafts and methods of use thereof. [Background technology]
[0002] 2. Description of Related Technology Follicular unit harvesting (FUE) is a process in which individual hair follicular units are harvested for implantation into an incision site on the scalp. Current methods for handling harvested hair follicular units include forceps to hold and implant the harvested hair follicular units. However, as practitioners know, handling the fragile harvested hair follicular units and implanting them with forceps can compromise the growth of the hair follicular units by placing unnecessary stress on the hair follicular units. Furthermore, current hair transplantation methods involve creating an incision site and then implanting the harvested hair follicular units into the incision site. This process is then repeated until the desired or required amount of harvested hair follicular units has been implanted into the target area. Such processes are often labor-intensive and time-consuming. Therefore, there remains a need for devices and systems that allow for rapid loading and implantation of harvested hair follicular units while simultaneously reducing damage to the harvested hair follicular units. Summary of the Invention
[0003] One embodiment of the present disclosure herein relates to a device for implanting hair grafts, the device having an elongate body with an internal channel and a rear plug configured to be operably coupled to a tube, and an intermediate reservoir operably coupled to and extending axially from a front end of the elongate body. In such an embodiment, the intermediate reservoir includes an internal longitudinal central channel extending the entire length of the intermediate reservoir, the internal longitudinal central channel being fluidly connected at its rear end to the front end of the internal channel and configured to receive and accommodate a hair graft; a front opening disposed in the intermediate reservoir proximal to the front end of the intermediate reservoir and configured to allow the hair graft to pass from the front opening through the front orifice to the internal longitudinal channel; a rear opening disposed in the intermediate reservoir forward to the rear end of the intermediate reservoir and configured to lead vertically from the rear opening through the rear orifice to the internal longitudinal central channel; and an accessory opening disposed in the intermediate reservoir between the front and rear openings and configured to lead vertically from the opening through the accessory orifice into the internal longitudinal central channel. The device also includes a skin abutment piece movably coupled to the front end of the intermediate reservoir, and an angled hollow needle operably coupled to the front end of the skin abutment piece. In such an embodiment, the skin abutment piece is configured to allow a hair graft to pass from the internal central longitudinal axis channel into the lumen of the angled hollow needle, the elongate body further comprising an actuatable linear rod within the internal channel, the actuatable linear rod having a length sufficient to slide from the internal central longitudinal axis channel along the entire length of the angled hollow needle, the actuatable linear rod being movable between a first position for facilitating loading of the hair graft into the internal central longitudinal axis channel, where the rear orifice is partially blocked by the front end of the actuatable linear rod, and a second position where the front end of the actuatable linear rod occupies the lumen of the angled hollow needle, and when in the second position, the actuatable linear rod is configured to displace the hair graft from the internal central longitudinal axis channel through the lumen and through the tip of the angled hollow needle.
[0004] One embodiment of the present disclosure herein relates to a system for implanting hair grafts, comprising the aforementioned device for implanting hair grafts, a pressure source operably coupled to the rear plug, a hair graft container operably coupled to the front opening, a vacuum source operably coupled to the rear opening, a differential pressure detector operably coupled to the accessory opening, and a controller in communication with the pressure source, the hair graft container, the vacuum source, and the differential pressure detector.
[0005] One embodiment of the present disclosure relates to a method for implanting hair grafts into a scalp using the aforementioned device, the method comprising the steps of creating a vacuum in the central longitudinal channel; inserting the beveled hollow needle into the scalp to block the beveled hollow needle; loading the hair graft into the inner central longitudinal channel by passing the hair graft from the hair graft container through the front opening and through the front orifice into the inner longitudinal channel; detecting the hair graft in the inner central longitudinal channel; and actuating the actuable linear rod so that the actuable linear rod displaces the hair graft from the inner central longitudinal channel through the lumen and through the tip of the hollow needle.
[0006] One embodiment of the present disclosure relates to a hair graft storage tray having a plurality of hair graft storage wells. Each of the plurality of hair graft storage wells is configured to allow the hair graft to be properly oriented. In some embodiments, the proper orientation includes storing the hair graft with its root facing down. Furthermore, the hair graft storage tray is configured to be operably coupled to a hair graft reservoir.
[0007] Further objects and advantages will become apparent from a consideration of the description, drawings, and examples. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a perspective view of an apparatus for implanting hair grafts into the scalp according to one embodiment of the present disclosure.
[0009] [Figure 2] 2 is a cross-sectional view of the embodiment of FIG. 1 along plane P. FIG.
[0010] [Figure 3A] 2 is an enlarged cross-sectional view of the intermediate containment tank of the embodiment of FIG. 1. [Figure 3B] 2 is an enlarged cross-sectional view of the intermediate containment tank of the embodiment of FIG. 1.
[0011] [Figure 4A] 3 is a cross-sectional view according to FIG. 2 showing the position of the components of the planting device of FIG. 1 in the rest position and in the working position; [Figure 4B] 3 is a cross-sectional view according to FIG. 2 showing the position of the components of the planting device of FIG. 1 in the rest position and in the working position; [Figure 4C] 3 is a cross-sectional view according to FIG. 2 showing the position of the components of the planting device of FIG. 1 in the rest position and in the working position;
[0012] [Figure 5A] 2A-2C are cross-sectional views showing different successive stages of loading a hair graft into the implantation device of FIG. 1 and implanting the hair graft into the skin. [Figure 5B] 2A-2C are cross-sectional views showing different successive stages of loading a hair graft into the implantation device of FIG. 1 and implanting the hair graft into the skin. [Figure 5C] 2A-2C are cross-sectional views showing different successive stages of loading a hair graft into the implantation device of FIG. 1 and implanting the hair graft into the skin. [Figure 5D] 2A-2C are cross-sectional views showing different successive stages of loading a hair graft into the implantation device of FIG. 1 and implanting the hair graft into the skin. [Figure 5E] 2A-2C are cross-sectional views showing different successive stages of loading a hair graft into the implantation device of FIG. 1 and implanting the hair graft into the skin. [Figure 5F]2A-2C are cross-sectional views showing different successive stages of loading a hair graft into the implantation device of FIG. 1 and implanting the hair graft into the skin.
[0013] [Figure 6A] 2 is a partial detailed view of the front part of the planting device of FIG. 1 in the rest position and in the working position. [Figure 6B] 2 is a partial detailed view of the front part of the planting device of FIG. 1 in the rest position and in the working position.
[0014] [Figure 7] 2 is a detailed perspective view of the implantation head and skin abutment device according to the embodiment of FIG. 1. FIG.
[0015] [Figure 8] FIG. 1 is a perspective view illustrating a first mode of use of a system for robotically implanting hair grafts into the scalp according to a predetermined program in accordance with one embodiment of the present disclosure.
[0016] [Figure 9] FIG. 10 is a perspective view showing another mode of use of a system for implanting hair grafts into the scalp according to one embodiment of the present disclosure, involving a robot equipped with a device for visually positioning the grafts.
[0017] [Figure 10] FIG. 1 is a diagram of a hair graft receiving tray according to an embodiment of the present disclosure. [Figure 10A] FIG. 1 is a diagram of a hair graft receiving tray according to an embodiment of the present disclosure. [Figure 10B] FIG. 1 is a diagram of a hair graft receiving tray according to an embodiment of the present disclosure. [Figure 10C] FIG. 1 is a diagram of a hair graft receiving tray according to an embodiment of the present disclosure.
[0018] [Figure 11] FIG. 10 is a view of a second embodiment of an implant containing tray according to the present disclosure. [Figure 11A]FIG. 10 is a view of a second embodiment of an implant containing tray according to the present disclosure. [Figure 11B] FIG. 10 is a view of a second embodiment of an implant containing tray according to the present disclosure. [Figure 11C] FIG. 10 is a view of a second embodiment of an implant containing tray according to the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0019] Hereinafter, several embodiments of the present disclosure will be described in detail. In describing the embodiments, specific terms will be used for clarity. However, the disclosure of this specification is not intended to be limited to the specific terms so selected. As will be appreciated by those skilled in the art, other equivalent components can be used and other methods can be developed without departing from the broad concept of the present disclosure herein. All references cited anywhere in this specification, including the Background and Detailed Description sections, are incorporated herein by reference as if each were individually incorporated.
[0020] The terms "graft" and "hair transplant" are used interchangeably throughout. Generally, the terms "graft" and "hair transplant" refer to any piece of hair-supporting tissue that can be implanted. A harvested graft is a piece of hair-supporting tissue that has been removed from one area and is to be implanted or otherwise transplanted in a separate area. Methods for harvesting hair grafts are known in the art.
[0021] The terms "subject" and "patient" are used interchangeably throughout. Generally, the terms "subject" and "patient" refer to an individual needing or desiring a hair transplant procedure.
[0022] The term "target tissue" as used throughout refers to a tissue location targeted for a hair transplant procedure. In many of the embodiments disclosed herein, the target tissue is an area on the patient's or subject's scalp. However, the target tissue is not limited to the patient's or subject's scalp, but can include other areas of the patient's or subject's epidermis and the underlying dermis.
[0023] The terms "hair graft container" and "hair transplant reservoir" are used interchangeably throughout and refer to a container for containing multiple hair grafts, which is separate from the device for implanting the hair grafts. In some embodiments, the hair graft container or reservoir comprises a hair graft containing tray.
[0024] The term "controller" refers to a component configured to interact with and at least partially support the operation of various components, including, but not limited to, a pressure source, a hair graft container, a vacuum source, and a differential pressure detector. The controller supports the operation of the various components based, at least in part, on information received from one or more of the various components. In some embodiments, the controller comprises a processor and / or software components.
[0025] Device One embodiment of the present disclosure relates to a device for implanting hair grafts, the device including an elongate body having an internal channel, a rear plug configured to be operably coupled to a tube, and an intermediate reservoir operably coupled to and extending axially from a front end of the elongate body, the intermediate reservoir including an internal longitudinal central channel extending the entire length of the intermediate reservoir, the internal longitudinal central channel fluidly connected at a rear end to the front end of the internal channel and configured to receive and accommodate a hair graft, a front opening disposed in the intermediate reservoir proximal to the front end of the intermediate reservoir, the front channel configured to allow the hair graft to pass from the front opening through a front orifice to the internal longitudinal channel, a rear opening disposed in the intermediate reservoir forward to a rear end of the intermediate reservoir, and a rear channel configured to lead from the rear opening through the rear orifice to the internal longitudinal central channel. The device also includes a skin abutment piece movably coupled to the front end of the intermediate reservoir and a hollow needle operably coupled to the front end of the skin abutment piece, the skin abutment piece configured to allow a hair graft to pass from the internal central longitudinal channel into the lumen of the hollow needle, the elongate body further including an actuatable linear rod within the internal channel, the actuatable linear rod having a length sufficient to slide from the internal central longitudinal channel along the entire length of the hollow needle, the actuatable linear rod movable between a first position for facilitating loading of the hair graft into the internal central longitudinal channel, where the rear orifice is partially blocked by the front end of the actuatable linear rod, and a second position where the front end of the actuatable linear rod occupies the lumen of the hollow needle, and when in the second position, the actuatable linear rod is configured to displace the hair graft from the internal central longitudinal channel through the lumen and through the tip of the hollow needle.
[0026] In the embodiments described above and throughout, the "rear opening" and "rear orifice" are separate structures separated by a "rear channel." The rear opening provides access to a first end of the rear channel, while the rear orifice connects a second end of the rear channel to the longitudinal channel of the intermediate reservoir of the device.
[0027] In the embodiments described above and throughout, the "front opening" and "front orifice" are distinct structures separated by a "front channel." The front opening provides access to a first end of the front channel, while the front orifice connects a second end of the front channel to the longitudinal channel of the intermediate reservoir of the device.
[0028] One embodiment of the present disclosure relates to the above device, wherein the intermediate reservoir further includes an accessory opening disposed in the intermediate reservoir between the front opening and the rear opening, and an accessory channel configured to lead vertically from the accessory opening through the accessory orifice into the internal longitudinal central axis channel.
[0029] One embodiment of the present disclosure relates to the above device, wherein the rear opening and the accessory opening are spaced apart by at least 10 mm.
[0030] One embodiment of the present disclosure relates to the above device, wherein the rear channel is configured to lead vertically from the rear opening through the rear orifice into the interior central longitudinal axis channel.
[0031] One embodiment of the present disclosure relates to the above device, wherein the hollow needle is a beveled hollow needle.
[0032] One embodiment of the present disclosure relates to the above device, wherein the intermediate reservoir further includes a hollow slide extending over the entire length of the intermediate reservoir, and the skin contact piece includes a rigid shaft movably coupled to the front end of the intermediate reservoir, the rigid shaft having a front end connected to the rear end of the skin contact piece, the rigid shaft configured to pass through the hollow slide, and the rigid shaft having a rear end connected to the front end of the elongated body.
[0033] An embodiment of the present disclosure relates to the above device, wherein movement of an actuatable linear rod to a first position moves the skin contact piece to a first skin contact piece position where the skin contact piece contacts an intermediate reservoir, and movement of the actuatable linear rod to a second position moves the skin contact piece to a second skin contact piece position where the intermediate reservoir is axially spaced from the skin contact piece by a rigid shaft.
[0034] One embodiment of the present disclosure relates to a device for implanting hair grafts, the device having an elongate body including an internal channel, a rear plug configured to be operably coupled to a tube, and an intermediate reservoir operably coupled to and extending axially from a front end of the elongate body. In such an embodiment, the intermediate reservoir includes an internal longitudinal central channel extending the entire length of the intermediate reservoir, the internal longitudinal central channel being fluidly connected at its rear end to the front end of the internal channel and configured to receive and accommodate a hair graft; a front opening disposed in the intermediate reservoir proximal to the front end of the intermediate reservoir and configured to allow the hair graft to pass from the front opening through the front orifice to the internal longitudinal channel; a rear opening disposed in the intermediate reservoir forward to the rear end of the intermediate reservoir and a rear channel configured to lead vertically from the rear opening through the rear orifice to the internal longitudinal central channel; an accessory opening disposed in the intermediate reservoir between the front and rear openings and an accessory channel configured to lead vertically from the accessory opening through the accessory orifice into the internal longitudinal central channel. The device also includes a skin abutment piece movably coupled to the front end of the intermediate reservoir, and an angled hollow needle operably coupled to the front end of the skin abutment piece. In such an embodiment, the skin abutment piece is configured to allow a hair graft to pass from the internal central longitudinal axis channel into the lumen of the angled hollow needle, the elongate body further including an actuatable linear rod within the internal channel, the actuatable linear rod having a length sufficient to slide from the internal central longitudinal axis channel along the entire length of the angled hollow needle, the actuatable linear rod being movable between a first position for facilitating loading of a hair graft into the internal central longitudinal axis channel, where the rear orifice is partially blocked by the front end of the actuatable linear rod, and a second position where the front end of the actuatable linear rod occupies the lumen of the angled hollow needle, and when in the second position, the actuatable linear rod is configured to displace a hair graft from the internal central longitudinal axis channel through the lumen and through the tip of the angled hollow needle.
[0035] One embodiment of the present disclosure herein relates to the aforementioned device, wherein the intermediate reservoir further comprises a hollow slide extending the entire length of the intermediate reservoir, and the skin contact piece comprises a rigid shaft movably coupled to the front end of the intermediate reservoir, the rigid shaft having a front end connected to the rear end of the skin contact piece, the rigid shaft configured to pass through the hollow slide, and the rigid shaft having a rear end connected to the front end of the elongated body.
[0036] One embodiment of the present disclosure herein relates to the aforementioned device, wherein movement of the actuatable linear rod to a first position moves the skin abutment piece to a first skin abutment piece position where the skin abutment piece contacts the intermediate reservoir, and movement of the actuatable linear rod to a second position moves the skin abutment piece to a second skin abutment piece position where the intermediate reservoir is axially spaced from the skin abutment piece by a rigid shaft.
[0037] An embodiment of the present disclosure herein relates to the aforementioned device, wherein the rear opening and the accessory opening are spaced apart by at least 10 mm.
[0038] One embodiment of the present disclosure relates to a device for implanting a hair graft at an implantation site on a patient's scalp to an implantation depth, the device including: a hollow needle through which a hair graft can be implanted at the implantation site; a skin abutment piece at least partially surrounding the hollow needle, the skin abutment piece being movable between a first position in which the hollow needle protrudes beyond the skin abutment piece by the implantation depth and a second position in which the skin abutment piece is substantially flush with the tip of the hollow needle, a spring biasing the skin abutment piece to the first position; and a rod slidably positioned inside the hollow needle and configured to advance the hair graft through the hollow needle while the hollow needle is inserted to the implantation depth at the implantation site and while the skin abutment piece is in the first position. In such an embodiment, the skin abutment piece is moved to a second position so that after the hair graft has been passed through the hollow needle and implanted to the implantation depth, the hollow needle is withdrawn from the implantation site, leaving the hair graft implanted at the implantation depth.
[0039] One embodiment of the present disclosure herein relates to the aforementioned device further including a piston for advancing the rod through the needle, wherein the skin abutment piece extends longitudinally toward the inside of the device to its rear end, and the piston has a stopper positioned longitudinally to engage the rear end of the skin abutment piece and move the skin abutment piece from a first position to a second position.
[0040] One embodiment of the present disclosure herein relates to the aforementioned device, wherein the piston is spring loaded to bias the stopper out of engagement with the rear end of the skin abutment piece.
[0041] An embodiment of the present disclosure herein relates to the aforementioned device, further comprising a port configured to receive pressurized gas to drive the piston against the bias of its spring load.
[0042] One embodiment of the present disclosure herein relates to a device for implanting a hair graft at an implantation site on a patient's scalp to an implantation depth, the device including: a reservoir configured to receive the hair graft; a hollow needle extending from a front end of the reservoir to the outside of the device; a movable rod biased to a first position at a rear end of the reservoir, the movable rod slidably positionable inside the hollow needle and configured to advance the hair graft through the hollow needle to the implantation depth while the hollow needle is inserted into the implantation site; an accessory channel opening into the interior of the reservoir, the accessory channel positioned from the first position toward the hollow needle a distance substantially corresponding to the length of the hair graft; and a rear channel opening into the interior of the reservoir, the rear channel positioned substantially adjacent to the first position. In such an embodiment, a vacuum source connected to the rear accessory channel draws the hair graft into the reservoir in response to placement of the hollow needle adjacent the patient's scalp, and a detector connected to the accessory channel provides an indication that the hair graft is being drawn into the reservoir in response to detecting a pressure change in the accessory channel.
[0043] An embodiment of the present disclosure herein relates to the aforementioned device further comprising an inclined channel through which the hair graft is aspirated, the inclined channel being angled obliquely relative to the reservoir and positioned between the accessory channel and the hollow needle.
[0044] An embodiment of the present disclosure herein relates to the aforementioned device, wherein the indication comprises at least one of a plurality of signals including an audible signal, a visual signal, and an electronic control signal.
[0045] One embodiment of the present disclosure herein relates to the aforementioned device, wherein in response to an indication, a pressure source drives a movable rod from a first position to a second position in which the hollow needle is inserted into the implantation site while the hair graft is advanced through the hollow needle to an implantation depth.
[0046] FIG. 1 is a perspective view of an apparatus for implanting hair grafts into the scalp according to one embodiment of the present disclosure.
[0047] FIG. 2 is a cross-sectional view of the embodiment of FIG. 1 taken along plane P.
[0048] 3A and 3B are enlarged cross-sectional views of the intermediate implant containment reservoir of the embodiment of FIG.
[0049] As shown in Figures 1, 2, 3A, and 3B, a hair transplant device 1 according to one embodiment of the present disclosure includes a hollow, cylindrical, elongated body 2 having a rear plug 3 and a connection means 4 for a tube (not shown) connected to a compressed air source. The device 1 has, at its front, a cylindrical piece acting as an intermediate reservoir 5 for grafts, which is axially extended forward by an inclined hollow needle 6. The intermediate reservoir 5 is extended forward by a conical, movable piece acting as a skin abutment portion 7 by means of a hollow screw acting as an adjustable skin abutment head 8 for portion 7. The intermediate reservoir 5 has a cylindrical, longitudinal central channel 9 throughout its entire length, the diameter of which is suitable for receiving and accommodating hair grafts. The reservoir 5 has, at its front, a first inclined front channel 10 suitable for the passage of grafts, which opens into the central channel 9 through an orifice (or front opening) 10a of substantially the same diameter as the central channel. The reservoir 5 has a second rear (or back) channel 11 at its rear, which vertically communicates with the central channel 9 through an orifice (or back opening) 11a. The reservoir 5 has a third accessory channel 12 located between the angled channel 10 and the rear channel 11. The accessory channel 12 vertically communicates with the central channel 9 through an orifice (or accessory opening) 12a. The orifices 11a, 12a are spaced apart by a minimum distance "I" that is longer than the length of the graft, i.e., approximately 10 mm. The angled front channel 10 is remotely connected to the hair graft reservoir (see Figures 8 and 9) by a flexible tube 101. The rear channel 11 is remotely connected to a vacuum source (see Figures 8 and 9) by a flexible tube 110. The accessory channel 12 is remotely connected to a differential pressure detector (see Figures 8 and 9) connected to the tube 110 by a flexible tube 120.
[0050] The cylindrical body 2 contains a piston 13 movable within the body according to a predetermined stroke. The piston 13 is extended forward by a stopper 130 itself extended by a central straight cylindrical rod 131 having a diameter of about 1 mm and of sufficient length to slide over the entire length of the needle 6 within the central channel 9 in a leak-tight manner. The length of the rod 131 is set so that when the piston 13 is in a rest or retracted position within the body 2, the free front end 132 of the rod is accurately positioned relative to the orifice 11 a by partially blocking the orifice 11 a so that the orifice 11 a allows fluid (air or water) to pass freely through the channel 11 and blocks the hair graft (not shown) within the central channel 9. The piston 13 is moved in a forward position within the body 2 over a predetermined distance "L" until it comes into contact with the stopper 22 of the body 2 when a compressed air source (see Figures 8 and 9) is applied at the connection means 4. A return spring 14 enables the piston 13 to return to its rear rest position when the compressed air source is shut off.
[0051] The skin contact piece 7, located at the front of the main body 2, is configured to move longitudinally relative to the intermediate reservoir 5 by means of at least one eccentric rigid shaft 71 of cylindrical shape parallel to the central channel 9, which slides along a hollow slide 51 of the same diameter as described in Figures 3A, 6A, 6B and 7. The rigid shaft 71 is configured to be moved forward a distance slightly greater than the free length of the needle 6 by approximately 10 mm when the stopper 130 of the piston 13 contacts the rear end 72 of the skin stopper 7.
[0052] 4A-4C are cross-sectional views of the device of FIGS. 1, 2, 3A, and 3B, showing the position of the components in the rest and working positions. In the rest position shown in FIG. 4A, the piston 13 is held in its rear position by the spring 14, and the skin stop 7 is held in its retracted position relative to the intermediate reservoir 5 by a small compression spring 73. The free end 132 of the rod 131 is in its rear position within the channel 9 containing the implant (not shown) facing the orifice 11a.
[0053] When a compressed air source is applied to the connection part 4, the piston 13 is moved forward within the body 2 until the stopper 130 contacts the rear end 72 of the skin stopper 7. At the same time, the end 132 pushes the hair graft (not shown) up to the needle 6. The piston 13 still continues its stroke until the stopper 22 of the body 2 first moves the skin stopper 7 and its stopper head 8 forward relative to the intermediate reservoir 5 (over a distance of about 10 mm), and at the same time moves the end 132 of the rod 131 to the free end of the needle 6, releasing the hair graft (not shown) out of the needle 6. It should be understood that the forward displacement of the skin stopper 7 is a relative displacement with respect to all fixed elements of the body 2 of the implantation device, and that if the skin stopper 7 and its stopper head 8 are held on a fixed plane, such as the skin plane, this will result in a backward movement of the body 2 relative to the skin plane when the skin stopper is pushed forward, as shown in FIG. 4C and more particularly in FIG. 5E.
[0054] Figures 5A-5F are cross-sectional views illustrating different successive stages of loading a hair graft into the implanting device of Figure 1 and implanting the hair graft into the skin, respectively. More specifically, these figures are partial cross-sectional detail views illustrating different successive stages of loading a hair graft into the implanting device and implanting the hair graft into the scalp, respectively, according to a first mode of use of the present disclosure.
[0055] 5A-5F, the implantation tool 1 is remotely connected to a hair graft container (see FIGS. 8 and 9) containing at least one graft by a tube 101, the free end of which is placed in contact with the graft for suction of the graft. A tube 110 is remotely connected to a continuously operating vacuum source (see FIGS. 8 and 9). A tube 120 is remotely connected to a differential pressure detector (see FIGS. 8 and 9) acting as a contactor. The implantation tool 1 is positioned above the skin or bald scalp 55. In this rest position, with the needle 6 outside the skin, an air flow is continuously moving inside the needle 6, and the beveled end of the needle is in the open air and in the central channel 9 via a tube 110 connected to the vacuum source. The introduction of the needle 6 into the scalp occludes the tip of the needle, causing a sudden drop in pressure within the channels 9 that propagates a distance to the free end of the tube 101, thereby stopping momentary suction of the graft 56 moving within the tube 101, the angled front channel 10, and the central channel 9, respectively, upon contact with the free end 132 of the rod 131 near the rear channel 11, as shown in Figures 5B and 5C. The blockage of the graft 56 within the central channel 9 causes a sudden fluctuation in pressure between the orifices 12a and 11a that is transmitted via tubes 120 and 110 to a differential pressure detector, as further shown in Figure 8. The detection of the pressure fluctuation is an indication of the presence and proper positioning of the hair graft 56 within the central channel 9. This presence may be indicated by an audible, visual or electronic control signal to proceed to the next step which consists of pressurizing the connection means 4 as depicted in Figure 8, which causes displacement of the rod 131 to push the graft 56 along the central channel 9 up to the needle 6, and finally withdrawing the needle from the scalp 55 through the skin stop 8, leaving the graft 56 in place fully positioned within the scalp as shown in Figures 5D, 5E and 5F. Ceasing pressure at the connection 4 causes the piston to return to its initial rest position and the implanting device is ready to load and implant the next graft according to the same repeating cycle, and so on.
[0056] 6A and 6B are partial detailed views of the front part of the implantation device of FIG. 1 in the rest position and in the working position. In the rest position (FIG. 6A), the cone-shaped movable piece acting as the skin contact part 7 is in contact with the intermediate reservoir. In the working position, the cone-shaped movable piece acting as the skin contact part 7 is moved axially away from the intermediate reservoir by a rigid shaft 71.
[0057] FIG. 7 is a detailed perspective view of the implantation head and skin engagement device according to the embodiments of FIGS. 1, 2, 3A, 3B, 4A-4C, 5A-5F, 6A and 6B.
[0058] system One embodiment of the present disclosure relates to a system for implanting hair grafts, the system including: a device for implanting hair grafts; a pressure source operably coupled to a rear plug of the device; a hair graft container operably coupled to a front opening of the device; a vacuum source operably coupled to the rear opening of the device; and a controller in communication with the pressure source, the hair graft container, and the vacuum source. In such an embodiment, the device includes an elongate body having an internal channel, a rear plug configured to be operably coupled to a tube, and an intermediate reservoir operably coupled to and extending axially from a front end of the elongate body. The intermediate reservoir includes an internal longitudinal central channel extending the entire length of the intermediate reservoir, the internal longitudinal central channel being fluidly connected at a rear end to the front end of the internal channel and configured to receive and accommodate a hair graft, a front opening disposed in the intermediate reservoir proximal to the front end of the intermediate reservoir, the front channel configured to allow the hair graft to pass from the front opening through the front orifice to the internal longitudinal channel, a rear opening disposed in the intermediate reservoir forward to the rear end of the intermediate reservoir, and a rear channel configured to lead from the rear opening through the rear orifice to the internal longitudinal central channel. The device also includes a skin abutment piece movably coupled to the front end of the intermediate reservoir, and a hollow needle operably coupled to the front end of the skin abutment piece. The skin abutment piece is configured to allow the hair graft to pass from the internal longitudinal central axis channel into the lumen of the hollow needle, and the elongated body further includes an actuatable linear rod within the internal channel, the actuatable linear rod having a length sufficient to slide from the internal longitudinal central axis channel along the entire length of the hollow needle, the actuatable linear rod being movable between a first position for facilitating loading of the hair graft into the internal longitudinal central axis channel in which the rear orifice is partially blocked by the front end of the actuatable linear rod, and a second position in which the front end of the actuatable linear rod occupies the lumen of the hollow needle, and when in the second position, the actuatable linear rod is configured to displace the hair graft from the internal longitudinal central axis channel through the lumen and through the tip of the hollow needle.
[0059] One embodiment of the present disclosure relates to the above system, wherein the vacuum source is configured to create a vacuum in the longitudinal central channel such that upon occlusion of the tip of the hollow needle, the hair graft is passed from the hair graft container through the front opening and through the front orifice into the internal longitudinal channel.
[0060] One embodiment of the present disclosure relates to the above system, wherein the intermediate reservoir further includes an accessory opening disposed in the intermediate reservoir between the front opening and the rear opening, and an accessory channel configured to lead vertically from the accessory opening through the accessory orifice into the internal longitudinal central axis channel.
[0061] An embodiment of the present disclosure relates to the above system, wherein the system further includes a differential pressure detector operably coupled to the accessory opening, and the controller is further configured to communicate with the pressure source, the hair transplant container, the vacuum source, and the differential pressure detector.
[0062] One embodiment of the present disclosure relates to the above system, wherein the differential pressure detector is configured to detect whether a hair graft is at least partially present within the internal longitudinal central axis channel by detecting a change in pressure between the accessory orifice and the rear orifice.
[0063] An embodiment of the present disclosure relates to the above system, wherein the system is further configured to inform the user whether a hair graft is present in the inner central longitudinal axis channel.
[0064] An embodiment of the present disclosure relates to the above system, wherein the differential pressure detector is configured to communicate with the controller regardless of whether a hair graft is present in the internal longitudinal central axis channel, and based on positive detection of a hair graft in the internal longitudinal central axis channel, the controller is configured to activate the pressure source to actuate the actuable linear rod to a second position where a front end of the actuable linear rod occupies the lumen of the hollow needle, and when the actuable linear rod is in the second position, displaces the hair graft from the internal longitudinal central axis channel through the lumen and through the tip of the hollow needle.
[0065] An embodiment of the present disclosure relates to the above system, wherein the skin abutment piece is further configured to at least partially assist in withdrawing the hollow needle from the scalp after implanting the hair graft in the scalp.
[0066] One embodiment of the present disclosure relates to the above system, wherein the hair graft container is operably coupled to the front opening including a robotic system, the robotic system being in communication with a controller and configured to mediate the transport of hair grafts from the hair graft container to the internal longitudinal channel.
[0067] One embodiment of the present disclosure herein relates to a system for implanting hair grafts, the system including an apparatus for implanting hair grafts, the apparatus having an elongate body including an internal channel, a rear plug configured to be operably coupled to a tube, and an intermediate reservoir operably coupled to and extending axially from a front end of the elongate body. In such an embodiment, the intermediate reservoir includes an internal longitudinal central channel extending the entire length of the intermediate reservoir, the internal longitudinal central channel being fluidly connected at its rear end to the front end of the internal channel and configured to receive and accommodate a hair graft; a front opening disposed in the intermediate reservoir proximal to the front end of the intermediate reservoir and configured to allow the hair graft to pass from the front opening through the front orifice to the internal longitudinal channel; a rear opening disposed in the intermediate reservoir forward to the rear end of the intermediate reservoir and a rear channel configured to lead vertically from the rear opening through the rear orifice to the internal longitudinal central channel; an accessory opening disposed in the intermediate reservoir between the front and rear openings and an accessory channel configured to lead vertically from the accessory opening through the accessory orifice into the internal longitudinal central channel. The device also includes a skin-contacting piece movably coupled to the front end of the intermediate reservoir, and an angled hollow needle operably coupled to the front end of the skin-contacting piece.In such an embodiment, the skin abutment piece is configured to allow the hair graft to pass from the internal longitudinal central axis channel into the lumen of the tilted hollow needle, and the elongate body further includes an actuatable linear rod within the internal channel, the actuatable linear rod having a length sufficient to slide from the internal longitudinal central axis channel along the entire length of the tilted hollow needle, the actuatable linear rod being movable between a first position for facilitating loading of the hair graft into the internal longitudinal central axis channel in which the rear orifice is partially blocked by the front end of the actuatable linear rod, and a second position in which the front end of the actuatable linear rod occupies the lumen of the tilted hollow needle, and when in the second position, the actuatable linear rod is configured to displace the hair graft from the internal longitudinal central axis channel through the lumen and through the tip of the tilted hollow needle. The system also includes a pressure source operably coupled to the rear plug, a hair graft container operably coupled to the front opening, a vacuum source operably coupled to the rear opening, a differential pressure detector operably coupled to the accessory opening, and a controller in communication with the pressure source, the hair graft container, the vacuum source, and the differential pressure detector.
[0068] One embodiment of the present disclosure herein relates to the aforementioned system, wherein the vacuum source operates continuously to create a vacuum in the longitudinal central axis channel such that upon occlusion of the tip of the beveled empty needle, the hair graft is passed from the hair graft container through the front opening and through the front orifice into the interior longitudinal channel.
[0069] An embodiment of the present disclosure herein relates to the above system, wherein the differential pressure detector is configured to detect whether a hair graft is at least partially present within the internal longitudinal central axis channel by detecting a change in pressure between the accessory orifice and the rear orifice.
[0070] One embodiment of the present disclosure herein relates to the aforementioned system, wherein the pressure detector is configured to communicate with the controller regardless of whether a hair graft is present in the internal longitudinal central axis channel, and based on positive detection of a hair graft in the internal longitudinal central axis channel, the controller is configured to activate the pressure source to actuate the actuable straight rod to a second position where a front end of the actuable straight rod occupies the lumen of the inclined hollow needle, and when the actuable straight rod is in the second position, displaces the hair graft from the internal longitudinal central axis channel through the lumen and through the tip of the inclined hollow needle.
[0071] One embodiment of the present disclosure herein relates to the aforementioned system, wherein the hair graft container is operably coupled to the front opening including a robotic system, the robotic system being in communication with a controller and configured to mediate the transport of hair grafts from the hair graft container to the internal longitudinal channel.
[0072] FIG. 8 is a perspective view showing a first mode of use of a system for robotically implanting hair grafts into the scalp according to a predetermined program, according to an embodiment of the present disclosure. The system of FIG. 8 includes an implantation device 1 according to an embodiment of the present disclosure, having a hollow, cylindrical, elongated body 2 with a rear plug and a connection means 4 to a tube (not shown) connected to a pressure source. In some embodiments, the pressure source is a compressed air source. The device 1 has a cylindrical piece at its front that serves as an intermediate reservoir 5 for the grafts, which is extended axially forward by an angled hollow needle 6. The intermediate reservoir 5 is extended forward by a conical, movable piece that serves as a skin abutment portion 7 by means of a hollow screw that serves as an adjustable skin abutment head 8 relative to portion 7. The intermediate reservoir 5 has a cylindrical, longitudinal central axial channel throughout its entire length, the diameter of which is suitable for receiving and accommodating a hair graft. The reservoir 5 has a first, inclined front channel at its front portion suitable for the passage of grafts, which connects to the central channel through an orifice having a diameter substantially equal to that of the central channel. The reservoir 5 has a second, rear channel at its rear portion, which connects perpendicularly to the central channel through an orifice. The reservoir 5 has a third accessory channel positioned between the inclined and rear channels. The accessory channel connects perpendicularly to the central channel through an orifice. The orifices are spaced apart by a minimum distance "I" greater than the length of the grafts, i.e., approximately 10 mm. The inclined front channel is connected to the hair graft reservoir at a distance by a flexible tube 101. In some embodiments, the hair graft reservoir is operably coupled to the front opening using a robotic system. In such embodiments, the robotic system is in communication with the controller and is configured to mediate the transport of hair grafts from the hair graft reservoir to the intermediate reservoir 5.
[0073] In the system of FIG. 8 , the rear channel is remotely connected by flexible tubing 110 to a vacuum source 809. The accessory channel is remotely connected by flexible tubing 120 to a differential pressure detector 807, which is connected to tubing 110. The vacuum source 809 operates continuously and creates a vacuum in the longitudinal central axis channel of the intermediate reservoir 5 such that upon occlusion of the tip of the beveled hollow needle 6, the hair graft is forced (aspirated) from the hair graft reservoir 801 into the intermediate reservoir 5. In some embodiments, the vacuum source 809 does not operate continuously but instead is opened on demand by an operator operating a foot pedal with at least two levels. In such embodiments, a first level (soft) commands a solenoid valve for vacuum and a second level (harder) commands air compression to move the hair graft into the scalp.
[0074] In some embodiments, the hair graft is stored in a hydrating solution while in the hair graft reservoir 801. The differential pressure detector 807 is configured to detect whether the hair graft is at least partially present in the internal longitudinal central axis channel of the intermediate reservoir 5 by detecting a change in pressure between the accessory orifice and the rear orifice of the intermediate reservoir 5. This change in pressure between the accessory orifice and the rear orifice of the intermediate reservoir acts as a signal 805, and the pressure detector 811 is also configured to communicate this signal 805 to the controller 803 to indicate whether the hair graft is present in the internal longitudinal central axis channel of the intermediate reservoir 5. Based on positive detection of the hair graft in the internal longitudinal central axis channel, the controller 803 is configured to activate the pressure source 811 to actuate the actuatable straight rod to a second position in which the front end of the actuatable straight rod occupies the lumen of the inclined hollow needle, and when in the second position, the actuatable straight rod displaces the hair graft from the internal longitudinal central axis channel through the lumen and through the tip of the inclined hollow needle.
[0075] FIG. 9 is a perspective view illustrating another mode of use of the system of FIG. 8 for implanting hair grafts into the scalp according to one embodiment of the present disclosure. In such a mode of use, a robotic system used to mediate the transport of hair grafts from the hair graft reservoir to the intermediate reservoir 5 includes an optical system 802 for visually positioning the grafts. In the system of FIG. 9, the rear channel is remotely connected to a vacuum source 809 by a flexible tube 110. The accessory channel is remotely connected by a flexible tube 120 to a differential pressure detector 807 connected to the tube 110. The vacuum source 809 operates continuously and creates a vacuum within the longitudinal central channel of the intermediate reservoir 5 such that the hair graft is threaded from the hair graft reservoir 801 to the intermediate reservoir 5 upon occlusion of the tip of the angled hollow needle 6. In some embodiments, the vacuum source 809 does not operate continuously but instead is opened on demand by the operator operating a foot pedal with at least two levels. In such an embodiment, the first level (soft) commands the solenoid valve for vacuum and the second level (harder) commands air compression to move the hair grafts into the scalp.
[0076] An optical system 802 operatively coupled to the hair graft reservoir 801 identifies the hair graft to be inserted and then assists in accurate transport of the hair graft into the intermediate reservoir 5. A differential pressure detector 807 is configured to detect whether a hair graft is at least partially present within the internal longitudinal central axis channel of the intermediate reservoir 5 by detecting a change in pressure between the accessory orifice and the rear orifice of the intermediate reservoir. This change in pressure between the accessory orifice and the rear orifice of the intermediate reservoir acts as a signal 805, and the pressure detector 811 is also configured to communicate this signal 805 to the controller 803 to indicate whether a hair graft is present in the internal longitudinal central axis channel of the intermediate reservoir 5. Based on positive detection of the hair graft in the internal longitudinal central axis channel, the controller 803 is configured to activate the pressure source 811 to actuate the actuatable straight rod to a second position in which the front end of the actuatable straight rod occupies the lumen of the inclined hollow needle, and when in the second position, the actuatable straight rod displaces the hair graft from the internal longitudinal central axis channel through the lumen and through the tip of the inclined hollow needle.
[0077] 10, 10A, 10B, and 10C are diagrams of a hair graft storage tray 1001 according to one embodiment of the present invention. In some embodiments, the hair graft storage tray 1001 is configured to be operably coupled to a hair graft reservoir, such as the hair graft reservoir 801 of the system of FIG. 8 or 9. FIG. 10 is a top view of the hair graft storage tray 1001 showing a top view of several hair graft storage wells 1003. Each of the hair graft storage wells is configured to store one or more hair grafts adapted to be transported to an apparatus for implanting the hair grafts. In some embodiments, each of the hair graft storage wells is configured to store one hair graft. The hair graft storage wells 1003 are further configured to ensure proper orientation of the hair grafts. In some embodiments, proper orientation includes storing the hair grafts with their roots facing downwards. Figure 10A is a cross-sectional view of the hair graft receiving tray along axis AA in Figure 10. Figure 10B is an enlarged view of area "B" shown in Figure 10A. Figure 10C is a perspective view of the hair graft receiving tray.
[0078] 11, 11A, 11B, and 11C are diagrams of a second embodiment of a hair graft storage tray 1101 in accordance with the present invention. In some embodiments, the hair graft storage tray 1101 is configured to be operably coupled to a hair graft reservoir, such as the hair graft reservoir 801 of the system of FIG. 8 or 9. FIG. 11 is a top view of the hair graft storage tray 1101 showing a top view of several hair graft storage wells 1103. Each of the hair graft storage wells is configured to store one or more hair grafts adapted to be transported to an apparatus for implanting the hair grafts. In some embodiments, each of the hair graft storage wells is configured to store one hair graft. The hair graft storage wells 1103 are further configured to ensure proper orientation of the hair grafts. In some embodiments, proper orientation includes storing the hair grafts with their roots facing downwards. Figure 11A is a cross-sectional view of the hair graft receiving tray along axis AA in Figure 11. Figure 11B is an enlarged view of area "B" shown in Figure 11A. Figure 11C is a perspective view of the hair graft receiving tray.
[0079] method One embodiment of the present disclosure relates to a method for implanting a hair graft into a scalp using a hair graft implanting device, the method comprising the steps of: creating a vacuum in a central longitudinal channel; occluding a hollow needle; loading a hair graft into the inner central longitudinal channel, including passing the hair graft from a hair graft container through a front opening and through a front orifice into the inner central longitudinal channel; detecting the hair graft in the inner central longitudinal channel; and actuating the actuable linear rod such that the actuable linear rod displaces the hair graft from the inner central longitudinal channel, through the lumen, and through the tip of the hollow needle. In such an embodiment, the device includes an elongate body having an internal channel, a rear plug configured to be operably coupled to a tube, and an intermediate reservoir operably coupled to and extending axially from a front end of the elongate body. The intermediate reservoir includes an internal longitudinal central channel extending the entire length of the intermediate reservoir, the internal longitudinal central channel being fluidly connected at a rear end to the front end of the internal channel and configured to receive and accommodate a hair graft, a front opening disposed in the intermediate reservoir proximal to the front end of the intermediate reservoir, the front channel configured to allow the hair graft to pass from the front opening through the front orifice to the internal longitudinal channel, a rear opening disposed in the intermediate reservoir forward to the rear end of the intermediate reservoir, and a rear channel configured to lead from the rear opening through the rear orifice to the internal longitudinal central channel. The device also includes a skin abutment piece movably coupled to the front end of the intermediate reservoir, and a hollow needle operably coupled to the front end of the skin abutment piece.The skin abutment piece is configured to allow the hair graft to pass from the internal longitudinal central axis channel into the lumen of the hollow needle, and the elongated body further includes an actuatable linear rod within the internal channel, the actuatable linear rod having a length sufficient to slide from the internal longitudinal central axis channel along the entire length of the hollow needle, the actuatable linear rod being movable between a first position for facilitating loading of the hair graft into the internal longitudinal central axis channel in which the rear orifice is partially blocked by the front end of the actuatable linear rod, and a second position in which the front end of the actuatable linear rod occupies the lumen of the hollow needle, and when in the second position, the actuatable linear rod is configured to displace the hair graft from the internal longitudinal central axis channel through the lumen and through the tip of the hollow needle.
[0080] An embodiment of the present disclosure relates to the above method, wherein the step of occluding the hollow needle comprises inserting an angled hollow needle into the scalp.
[0081] One embodiment of the present disclosure relates to the above method, further comprising the step of withdrawing the hollow needle from the scalp after actuating the actuatable straight rod, wherein the step of withdrawing the hollow needle is at least partially mediated by the skin abutment piece.
[0082] One embodiment of the present disclosure relates to a method for implanting a hair graft to an implantation depth at an implantation site on a patient's scalp using a device, the method comprising: inserting at least a portion of a hollow needle from the device into the implantation site while a skin abutment piece from the device is in a first position; actuating a rod from the device such that the hair graft is advanced through the hollow needle while the hollow needle is inserted into the implantation site to the implantation depth and while the skin abutment piece is in the first position; and withdrawing the hollow needle from the implantation site, including moving the skin abutment piece to a second position.
[0083] One embodiment of the present disclosure relates to a method for implanting a hair graft into an implantation site on a patient's scalp to an implantation depth using a device, the method comprising the steps of: loading the hair graft into a reservoir of the device; inserting at least a portion of a hollow needle of the device into the implantation site; actuating a rod of the device such that the hair graft is advanced through the hollow needle while the hollow needle is inserted into the implantation site to the implantation depth; and withdrawing the hollow needle from the implantation site. In such an embodiment, the step of loading the hair graft includes aspirating the hair graft into the reservoir at least in part in response to positioning the hollow needle adjacent the patient's scalp, and the step of actuating the movable rod is performed at least in part in response to an indication from a detector of the device that the hair graft is aspirated into the reservoir.
[0084] One embodiment of the present disclosure relates to a method for implanting a hair graft using the aforementioned device or system. One example of a method embodiment includes at least the following steps, as seen in Figures 5A-5F: As seen in Figure 5A, the implantation tool 1 is positioned above the scalp 55. In this rest position, with the needle 6 outside the skin, an air flow is continuously moving inside the needle 6, and the beveled end of the needle is in the open air and in the central channel 9 via a tube 110 connected to a vacuum source. When the needle is introduced into the scalp (Figure 5B), the tip of the needle is occluded, thereby sucking the hair graft 56 through the beveled front channel 10 and into the central channel 9 via the tube 101. The hair graft stops when it contacts the free end 132 of the rod 131 near the rear channel 11 (see Figures 5B and 5C). Blockage of the graft 56 in the central channel 9 causes a sudden change in pressure between orifice 12a and orifice 11a, which is transmitted via tubes 120, 110 to a differential pressure detector. Detection of the pressure fluctuation is an indication of the presence and proper positioning of the hair graft 56 in the central channel 9. The connecting means is then pressurized by an external pressure source, causing displacement of rod 131 which pushes the hair graft 56 along the central channel 9 and up to needle 6, ultimately resulting in the implanting device 1 being withdrawn from the scalp 55 while leaving the hair graft 56 in place on the scalp, as shown in Figures 5D, 5E and 5F. When pressure is removed from the connecting means, the piston returns to its initial rest position and the implanting tool is ready to load and implant the next graft according to the same repeating cycle, and so on.
[0085] The embodiments illustrated and described in this specification are intended only to teach those skilled in the art how to make and use the disclosure herein. In describing the embodiments of the disclosure herein, specific terminology is used for the sake of clarity. However, the disclosure herein is not intended to be limited to the specific terminology so selected. The foregoing embodiments of the disclosure herein can be modified or varied without departing from the disclosure herein, as will be understood by those skilled in the art in light of the above teachings. It is therefore to be understood that, within the scope of the claims and their equivalents, the disclosure herein may be practiced otherwise than as specifically described.
Claims
1. 1. A device for implanting hair grafts, comprising: an elongate body having an internal channel and a rear plug configured to be operably coupled to a tube; an intermediate reservoir operably coupled to and extending axially from a forward end of the elongate body, the intermediate reservoir comprising: an internal longitudinal central channel extending the entire length of the intermediate reservoir, the internal longitudinal central channel being fluidly connected at a rear end to a front end of the internal channel and configured to receive and accommodate a hair graft; a front opening disposed in the intermediate reservoir and proximal to a front end of the intermediate reservoir; a front channel configured to allow the hair graft to pass from the front opening through a front orifice to the interior longitudinal channel; a rear opening disposed in the intermediate reservoir and forward of the rear end of the intermediate reservoir; a rear channel configured to lead from the rear opening through a rear orifice to the interior central longitudinal axis channel; an intermediate reservoir comprising: a skin contact piece movably coupled to the front end of the intermediate reservoir; a hollow needle operably coupled to a front end of the skin contact piece; Equipped with the skin abutment piece is configured to allow the hair graft to pass from the internal longitudinal central axis channel into the lumen of the hollow needle; the elongate body further comprises an actuatable linear rod within the internal channel, the actuatable linear rod having a length sufficient to slide from the internal central longitudinal axis channel along the entire length of the hollow needle, the actuatable linear rod being movable between a first position for facilitating loading of the hair graft into the internal central longitudinal axis channel in which the rear orifice is partially blocked by a front end of the actuatable linear rod, and a second position in which the front end of the actuatable linear rod occupies the lumen of the hollow needle; the actuatable linear rod, when in the second position, is configured to displace the hair graft from the interior central longitudinal axis channel, through the lumen, and through the tip of the hollow needle; Device.
2. The intermediate reservoir is an accessory opening disposed in the intermediate reservoir between the front opening and the rear opening; an accessory channel configured to lead perpendicularly from the accessory opening through an accessory orifice into the interior central longitudinal axis channel; The apparatus of claim 1 further comprising:
3. 3. The device of claim 2, wherein the rear opening and the accessory opening are spaced apart by at least 10 mm.
4. The device of claim 1 , wherein the rear channel is configured to lead vertically from the rear opening through a rear orifice into the interior central longitudinal axis channel.
5. The device of claim 1 , wherein the hollow needle is a beveled hollow needle.
6. the intermediate reservoir further comprises a hollow slide extending the entire length of the intermediate reservoir; the skin contact piece is movably coupled to the front end of the intermediate reservoir with a rigid shaft, the front end of the rigid shaft is connected to the rear end of the skin contact piece, the rigid shaft is configured to pass through the hollow slide, and the rear end of the rigid shaft is connected to the front end of the elongated body; 10. The apparatus of claim 1.
7. 6. The device of claim 5, wherein movement of the actuatable linear rod to the first position moves the skin contact piece to a first skin contact piece position where the skin contact piece contacts the intermediate reservoir, and movement of the actuatable linear rod to the second position moves the skin contact piece to a second skin contact piece position where the intermediate reservoir is axially spaced from the skin contact piece by the rigid shaft.
8. The device for implanting hair grafts according to claim 1; a pressure source operably coupled to the rear plug; a hair graft container operably coupled to the front opening; a vacuum source operably coupled to the rear opening; a controller in communication with the pressure source, the hair graft container, and the vacuum source; A system for implanting hair grafts comprising:
9. 9. The system of claim 8, wherein the vacuum source is configured to create a vacuum in the longitudinal central channel such that, upon occlusion of the tip of the hollow needle, the hair graft is passed from the hair graft container through the front opening, through the front orifice, and into the interior longitudinal channel.
10. The intermediate reservoir is an accessory opening disposed in the intermediate reservoir between the front opening and the rear opening; an accessory channel configured to lead perpendicularly from the accessory opening through an accessory orifice into the interior central longitudinal axis channel; The system of claim 8 further comprising:
11. 11. The system of claim 10, further comprising a differential pressure detector operably coupled to the accessory opening, wherein the controller is further configured to communicate with the pressure source, the hair graft container, the vacuum source, and the differential pressure detector.
12. 12. The system of claim 11, wherein the differential pressure detector is configured to detect whether the hair graft is at least partially present within the internal longitudinal central axis channel by detecting a change in pressure between the accessory orifice and the rear orifice.
13. The system of claim 12, further configured to inform a user whether the hair graft is present within the inner central longitudinal axis channel.
14. 12. The system of claim 11, wherein the differential pressure detector is configured to communicate with the controller regardless of whether the hair graft is present in the internal longitudinal central axis channel, and based on positive detection of the hair graft in the internal longitudinal central axis channel, the controller is configured to activate the pressure source to actuate the actuable linear rod to the second position in which the front end of the actuable linear rod occupies the lumen of the hollow needle, and when the actuable linear rod is in the second position, displaces the hair graft from the internal longitudinal central axis channel through the lumen and through the tip of the hollow needle.
15. 9. The system of claim 8, wherein the skin abutment piece is further configured to at least partially assist in withdrawing the hollow needle from the scalp after the hair graft has been implanted therein.
16. 9. The system of claim 8, wherein the hair transplant container is operably coupled to the front opening with a robotic system in communication with the controller and configured to mediate transport of the hair transplant from the hair transplant container to the internal longitudinal channel.
17. 10. A method for implanting hair grafts into the scalp using the device of claim 1, comprising: creating a vacuum within the central longitudinal axis channel; occluding the hollow needle; loading the hair graft into the inner longitudinal central channel, including passing the hair graft from the hair graft container through the front opening and through the front orifice into the inner longitudinal channel; detecting the hair graft within the interior central longitudinal channel; actuating the actuable linear rod so that the actuable linear rod displaces the hair graft from the interior central longitudinal axis channel, through the lumen, and through the tip of the hollow needle; A method comprising:
18. 18. The method of claim 17, wherein the step of occluding the hollow needle comprises inserting the angled hollow needle into the scalp.
19. 20. The method of claim 18, further comprising the step of withdrawing the hollow needle from the scalp after the step of actuating the actuatable straight rod, wherein the step of withdrawing the hollow needle is at least partially mediated by the skin abutment piece.
20. 1. A device for implanting hair grafts at an implantation site on a patient's scalp to an implantation depth, comprising: a hollow needle through which a hair graft can be implanted at the implantation site; a skin abutment piece at least partially surrounding the hollow needle, the skin abutment piece being movable between a first position in which the hollow needle protrudes beyond the skin abutment piece by the implantation depth and a second position in which the skin abutment piece is substantially flush with the tip of the hollow needle, a spring biasing the skin abutment piece to the first position; a rod slidably positioned inside the hollow needle and configured to advance the hair graft through the hollow needle while the hollow needle is inserted to the implantation depth at the implantation site and while the skin abutment piece is in the first position; Equipped with After the hair graft is passed through the hollow needle and implanted to the implantation depth, the skin abutment piece is moved to the second position so as to withdraw the hollow needle from the implantation site, leaving the hair graft implanted at the implantation depth. Device.
21. 21. The device of claim 20, further comprising a piston for advancing the rod through the needle, the skin contact piece extending longitudinally toward the inside of the device to its rear end, the piston having a stopper positioned longitudinally to engage with the rear end of the skin contact piece, and moving the skin contact piece from the first position to the second position.
22. 22. The device of claim 21, wherein the piston is spring loaded to bias the stopper out of engagement with the rear end of the skin abutment piece.
23. 23. The apparatus of claim 22, further comprising a port configured to receive pressurized gas to drive the piston against the bias of its spring load.
24. 1. A device for implanting hair grafts at an implantation site on a patient's scalp to an implantation depth, comprising: a reservoir configured to receive a hair graft; a hollow needle extending from the front end of the reservoir to the exterior of the device; a movable rod biased to a first position at the rear end of the reservoir, the movable rod slidably positionable inside the hollow needle and configured to advance the hair graft through the hollow needle to the implantation depth while the hollow needle is inserted into the implantation site; an accessory channel opening into the interior of the reservoir, the accessory channel being positioned from the first location toward the hollow needle at a distance substantially corresponding to the length of the hair graft; a rear channel opening into the interior of the reservoir, the rear channel positioned substantially adjacent to the first location; Equipped with a vacuum source connected to the rear accessory channel for sucking the hair graft into the reservoir in response to placement of the hollow needle adjacent to the patient's scalp; a detector connected to the accessory channel provides an indication that the hair graft is being sucked into the reservoir in response to detecting a pressure change in the accessory channel; Device.
25. 25. The device of claim 24, further comprising an inclined channel through which the hair graft is aspirated, the inclined channel being angled obliquely relative to the reservoir and positioned between the accessory channel and the hollow needle.
26. 25. The device of claim 24, wherein the indication comprises at least one of a plurality of signals including an audible signal, a visual signal, and an electronic control signal.
27. 25. The device of claim 24, wherein in response to the indication, a pressure source drives the movable rod from the first position to a second position in which the hair graft is advanced through the hollow needle to the implantation depth while the hollow needle is inserted into the implantation site.
28. 21. A method for implanting hair grafts at an implantation site on a patient's scalp to an implantation depth using the device of claim 20, comprising: inserting at least a portion of the hollow needle into the implantation site while the skin abutment piece is in the first position; actuating the rod so that the hair graft is advanced through the hollow needle while the hollow needle is inserted into the implantation site to the implantation depth and while the skin abutment piece is in the first position; withdrawing the hollow needle from the implantation site, including moving the skin abutment piece to the second position; A method comprising:
29. 25. A method for implanting hair grafts at an implantation site on a patient's scalp to an implantation depth using the device of claim 24, comprising: loading the hair graft into the reservoir; inserting at least a portion of the hollow needle into the implantation site; actuating the rod so that the hair graft is advanced through the hollow needle while the hollow needle is inserted into the implantation site to the implantation depth; withdrawing the hollow needle from the implantation site; Including, the step of loading the hair graft includes aspirating the hair graft into the reservoir at least in part in response to placement of the hollow needle adjacent the patient's scalp; the actuating the movable rod is performed at least in part in response to an indication from the detector that the hair graft is aspirated into the reservoir. method.
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