Cartridge injector

The cartridge injector addresses the need for a two-stage operation in robotic syringes by using a design with a hollow housing and two movable bodies, enabling automated intramuscular injections through an external actuator.

JP7896848B2Active Publication Date: 2026-07-29CHRONOFANG INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
CHRONOFANG INC
Filing Date
2021-11-05
Publication Date
2026-07-29

AI Technical Summary

Technical Problem

Existing medical syringes and automatic syringes are not suitable for use in robotic systems due to the need for human intervention or complex structures, and known linear motors can only perform simple extension motions, failing to meet the requirements for a two-stage operation necessary for intramuscular injections.

Method used

A cartridge injector design with a hollow housing, a catheter, and two movable bodies within the housing, operated by an external actuator capable of performing a two-stage stretching operation, allowing the injection needle to protrude, extrude drug solution, and retract.

Benefits of technology

The cartridge injector can be operated by an external actuator to perform a two-stage stretching operation, facilitating automated intramuscular injections without human intervention, suitable for robotic systems.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a cartridge injector which may be operated by an external actuator which can perform two-stage drawing operation.SOLUTION: A cartridge injector (400) comprises: a hollow housing (410); a catheter (420); a first movable body (430); and a second movable body (460). The housing (410) has on a front side, a tip end part having an opening. The catheter (420) is provided in the housing, and can protrude and retreat from the tip end part. The first movable body (430) holds a rear end part of the catheter in the housing, slidable to a first inner wall of the housing, and has a storage space communicated with the catheter. The second movable body (460) is arranged in the first movable body, slidable to a second inner wall of the first movable body, and can shrink the storage space.SELECTED DRAWING: Figure 4
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Description

Technical Field

[0001] The present invention relates to a cartridge injector, and particularly to a cartridge injector used in an injector module such as an injection device.

Background Art

[0002] Conventionally, various medical robotic devices have been developed. In particular, recently, in order to prevent the novel coronavirus disease (COVID-19) that has spread worldwide, vaccination has been recommended. Such vaccination is sequentially performed on a large number of people using a syringe at a predetermined vaccination site. Therefore, a robotic device that can automatically perform such vaccination without human intervention is desired. As is well known, intramuscular injection is performed in this vaccination. Here, "intramuscular injection" refers to a method of directly injecting a drug such as a vaccine into the muscle deep in the subcutaneous fat.

[0003] For example, Patent Document 1 discloses a disposable syringe that can be used in a vaccination plan. The disposable syringe includes a housing, a plunger body, a drug chamber, an injection needle, and injection moving means (biasing means). The housing has a shaft extending from the distal end to the proximal end and a proximal skin contact wall that abuts against the injection site. The contact wall is provided with an opening for receiving the injection needle. The plunger body has a pressure surface facing the skin contact wall in the proximal direction and is arranged to move between a first proximal position and a first distal position. The plunger body can move axially between a first distal position, an intermediate position, and a first proximal position within the housing. The drug chamber is disposed between the pressure surface and the proximal skin contact wall. The drug chamber can move axially and is pressed non-axially by moving the plunger body toward the proximal end. The injection needle is attached to the drug chamber and is arranged to move axially between a third distal position and a third proximal position. The injection moving means (biasing means) is configured to move the plunger body from the first distal position to the first proximal position.

[0004] In the disposable syringe described above, the plunger body, the drug chamber, and the injection needle are compressed such that when the plunger body moves from a first distal position to an intermediate position and the injection needle moves from a third distal position to a third proximal position, the proximal end of the injection needle protrudes distally from the skin contact wall, and when the plunger body moves to the first proximal position, the drug chamber is compressed so that at least a portion of the liquid in the drug chamber is pushed out from the proximal end of the injection needle, and the injection needle moves from a third proximal position to a third distal position.

[0005] However, with this type of disposable syringe, the user (healthcare worker) must retract the plunger body from the first proximal position to the first distal position against the biasing force of the biasing mechanism. In other words, since this disposable syringe requires human intervention, it is not suitable for use as an injection device to be incorporated into a robotic system that can perform the procedure automatically.

[0006] Furthermore, Patent Document 2 discloses an automatic syringe for the rapid discharge of a bolus of injectable drugs. This automatic syringe has a small external dimension and a substantially flat, sealed housing that approximates a credit card. The syringe, configured to be contained within the flat housing, is pre-filled with the drug. The housing includes a mechanism that, when triggered, automatically moves the syringe and needle forward to the injection position, compressing the volume of the syringe and causing rapid injection. The device includes an actuator at the forward injection end, which keeps the needle hidden and protected at all times, preventing post-injection hazards. The flat surface of the device has a graphical symbol and other visible markers related to the operation and conditions of the device. The device allows for simple three-step operation, reducing the risk of misuse.

[0007] In the above automatic syringe, the housing consists of a cover and a peelable elongated strip that interact with each other. The device includes an actuator assembly and a syringe carrier assembly. The actuator assembly includes a substantially flat needle shield and a pair of arms extending rearward from the shield. The actuator assembly is held in the retracted position by a pair of releasable arm locks. The actuator assembly is biased forward by a pair of longitudinally positioned side compression springs. The syringe has a flat configuration and is defined by a flat piston-type device comprising a cup-shaped container. The open end of the cup-shaped container receives a piston that carries the injection needle. The front end of the piston includes a needle carrier, which holds the injection needle aligned with the partition and space. The needle carrier includes a longitudinally foldable, forward-extending, bellows-like support. The needle is fixed to an anchor embedded within the needle support, along with a portion of the needle. The syringe assembly is biased by a syringe compression spring (drive spring). Once the needle penetrates the tissue to the intended depth, the needle support rests on the rear surface of the needle shield. A return opening is formed on each of the arms behind the opening.

[0008] An automatic syringe of this configuration operates as follows: After removing the detachable elongated strip and cover, the needle shield of the actuator assembly is pressed against the patient's skin, and the syringe carrier is centrifugally driven away from its latched position under the biasing force of a sufficiently powerful drive spring, piercing the skin and penetrating the tissue to the intended depth. When the needle support contacts the rear surface, the sharp front end of the needle penetrates the patient's tissue to the intended depth. The continuous biasing force of the drive spring advances the syringe carrier and container forward on the then-stationary piston, folding the volume within the syringe and causing a bolus of medication to be injected into the patient. When the compression of the syringe volume is complete, the injection is finished. As the injection stroke approaches its end, the arm lock is released. With the actuator assembly arm free, the actuator assembly moves relatively forward of the housing under the biasing force of the side spring so that the device can be retracted. The needle shield extends to cover and protect the front end of the needle, and an arm lock is dropped into the rear opening to lock the actuator assembly and the needle shield into a centrifugal-extended needle protection configuration. When the needle shield extends to its centrifugal-locked position, biological hazard markers on the flat surface of the shield are conspicuously exposed to serve their warning function.

[0009] However, automatic syringes with this configuration are not intended for use by medical professionals, but rather for individual use by patients themselves. Therefore, such automatic syringes are not intended for use as vaccine syringes in vaccination sites as described above. Furthermore, because they contain actuators, automatic syringes have a very complex structure. For this reason, it is desirable for injection devices to be incorporated into the above-mentioned robotic device to have a simplified syringe structure and to use an external actuator (hereinafter referred to as "external actuator") that is separate from the syringe.

[0010] Various types of external actuators can be considered, but for example, a linear motor can be used. There are various types of linear motors, but when a large driving force is not required, they are often composed of a combination of permanent magnets and coils. Also, as is well known, linear motors are broadly classified into two types: "moving magnet type linear motors" and "moving coil type linear motors".

[0011] In a moving magnet type linear motor, the movable element includes a permanent magnet, and the stator includes a coil (excitation coil) (see, for example, Patent Documents 3, 4, 5, 6, and 7).

[0012] On the other hand, a moving coil type linear motor includes a coil (armature coil) as the movable element and a permanent magnet as the stator (for example, Patent Documents 8 and 9).

[0013] Whether it is a moving magnet linear motor or a moving coil linear motor, the operating principle of a linear motor is to utilize the thrust generated by the interaction between the magnetic flux generated by the permanent magnet and the current flowing through the coil (the so-called Fleming's left-hand rule). In other words, any well-known linear motor consists of a stator and a movable element that is movably positioned along the central axis relative to the stator. [Prior art documents] [Patent Documents]

[0014] [Patent Document 1] Special Publication No. 2016-517742 [Patent Document 2] U.S. Patent No. 6979316 [Patent Document 3] Patent No. 2781912 [Patent Document 4] Japanese Patent Publication No. 2001-086725 [Patent Document 5] Japanese Patent Publication No. 2009-050128 [Patent Document 6] Patent No. 5068494 [Patent Document 7] Patent No. 4068848 [Patent Document 8] Patent No. 3852117 [Patent Document 9] Japanese Patent Publication No. 2007-209176 [Overview of the project] [Problems that the invention aims to solve]

[0015] However, when attempting to use the well-known linear motor described above as an external actuator installed outside the syringe, the following problems arise.

[0016] To elaborate, the well-known linear motor described above can only move one movable element along the central axis relative to the stator. That is, it only moves one driven element associated with (connected to or in contact with) one movable element along the central axis. In other words, the well-known linear motor can only perform a simple extension motion that moves only one driven element.

[0017] On the one hand, when attempting to perform the above-described intramuscular injection, it is necessary to use an external actuator to cause the syringe to perform the operations of at least the following three steps (the first step, the second step, and the third step). The first step is a step of protruding the injection needle from the front surface of the syringe housing and reaching the tip of the injection needle to a person's muscle (hereinafter referred to as the "injection needle protrusion step"). The second step is a step of extruding the drug solution from the tip of the injection needle into the muscle (hereinafter referred to as the "drug solution extrusion step"). The third step is a step of retracting the protruding injection needle into the syringe housing (hereinafter referred to as the "injection needle retraction step"). That is, as an external actuator for a syringe, it is necessary to move at least two different driven bodies, namely, a first driven body for moving only the injection needle and a second driven body for extruding the drug solution. In other words, as an external actuator for a syringe, a linear motor capable of performing at least a two-stage stretching operation is required.

[0018] Even if an external actuator capable of performing a two-stage stretching operation is developed, a simple syringe (cartridge injector) that can be operated by such an external actuator is required. However, such a simple syringe (cartridge injector) is not known.

[0019] An object of the present invention is to provide a cartridge injector that can be operated by an external actuator capable of performing a two-stage stretching operation.

Means for Solving the Problem

[0020] According to one aspect of the present invention, there is provided a hollow housing having a first inner wall extending along a central axis, the housing having a tip portion with an opening, the tip portion being tapered forward in a first direction; a catheter provided within the housing and extending along the central axis on the first direction side, the catheter being capable of protruding / retracting with respect to the tip portion and having a rear end portion on the second direction side which is opposite to the first direction; a first movable body within the housing for holding the rear end portion of the catheter, the first movable body being arranged within the housing so as to be movable in the first direction and the second direction while sliding along the first inner wall of the housing along the central axis, the first movable body having a second inner wall forming a columnar accommodation space communicating with the catheter; and a second movable body arranged on the second direction side within the first movable body, the second movable body being arranged within the first movable body so as to be movable in the first direction while sliding along the second inner wall of the first movable body along the central axis, the second movable body being capable of contracting the accommodation space. A cartridge injector provided with these components is provided.

[0021] In the above cartridge injector, each of the housing, the first movable body, and the second movable body may have a shape that is substantially rotationally symmetric with respect to the central axis.

[0022] Also, the second movable body has a substantially cylindrical shape arranged around the central axis and in its vicinity; the first movable body has a substantially cylindrical shape arranged near the outer periphery of the second movable body; and the housing may have a substantially cylindrical shape arranged near the outer periphery of the first movable body.

[0023] The above accommodation space may contain a chemical solution.

[0024] Furthermore, it is preferable that the above catheter has a tip portion that is cut obliquely.

[0025] The opening of the tip portion of the above housing may be blocked with silicone.

[0026] The cartridge injector described above may be configured to be operated from its rear by an external actuator having a cylindrical first operating part and a columnar second operating part. In this case, the combination of the first movable body and the second movable body is configured to move in a first direction along the central axis relative to the housing when the first movable body is pushed out in a first direction from the rear surface of the first movable body by the first operating part, thereby causing the catheter to protrude in the first direction through the opening at the tip of the housing. The second movable body is also configured to move in a first direction along the central axis relative to the first movable body when the second movable body is pushed out in a first direction from the rear surface of the second movable body by the second operating part, thereby causing the containment space to contract and the drug solution to be pushed out from the tip through the catheter. In such a configuration, it is preferable that the cartridge injector further comprises a biasing means that biases the combination of the first movable body and the second movable body in a second direction when the first and second operating parts of the external actuator retract in a second direction.

[0027] The first movable body described above may consist of: a cylindrical rear end provided on the rear side in the second direction, having an outer peripheral surface that slides against the first inner wall; a front end provided on the front side in the first direction, holding the rear end portion of the cartel via a retaining member; and a cylindrical intermediate portion provided between the rear end and the front end, having an outer diameter smaller than the inner diameter of the first inner wall. In this case, the rear end and the intermediate portion both have a second inner wall that forms the above-mentioned storage space, and it is preferable that the rear end has an annular rear end that abuts against the tip of the first operating part.

[0028] The second movable body described above may consist of: a front member provided on the front side in the first direction, having a front wall surface that cooperates with the second inner wall of the first movable body to form a storage space; and a rear member provided on the rear side in the second direction, having a rear wall surface that abuts against the tip of the second operating part.

[0029] In the cartridge injector described above, the biasing means may be arranged along the central axis between the front end of the housing and the rear end of the first movable part. [Effects of the Invention]

[0030] The cartridge injector according to the present invention can be operated by an external actuator capable of performing a two-stage extension operation. [Brief explanation of the drawing]

[0031] [Figure 1] This is a perspective view of the automated vaccine administration robot device to which the present invention is applied, taken from the front right at an angle, together with the person being vaccinated. [Figure 2] Figure 1 is a schematic right-side view of the automated vaccine administration robot device, as seen from approximately the right side, along with the person being vaccinated. [Figure 3] Figure 1 shows the external appearance of the automated vaccine administration robot device, viewed from the diagonal right rear, together with the person being vaccinated. [Figure 4] This is a perspective cross-sectional view of a cartridge injector according to one embodiment of the present invention, which is operated by an external actuator used as a linear motor to which the present invention is applied, viewed from the front right at an oblique angle. [Figure 5] Figure 4 is a schematic right-hand cross-sectional view of the cartridge injector, viewed from approximately the right side. [Figure 6] Figure 4 is a cross-sectional view of the cartridge injector, taken from the rear right at an oblique angle. [Figure 7] This is a perspective cross-sectional view of a linear motor to which the present invention is applied, along with a cartridge injector located in the operating section, viewed from the front right at an angle. [Figure 8] Figure 7 shows a schematic right-hand cross-sectional view of the linear motor, along with the cartridge injector located in the operating section, viewed from approximately the right side. [Figure 9] Figure 7 is a perspective cross-sectional view of the linear motor shown, along with the cartridge injector located in the operating section, viewed from the rear right. [Figure 10] These are cross-sectional views illustrating the magnetic flux generated by multiple permanent magnets in the first movable element used in the linear motor shown in Figures 7 to 9. [Figure 11] Figures 7 to 9 illustrate an example of how to connect each coil to a control driver when using nine coils as electromagnets for the stator and second movable element in a linear motor. [Modes for carrying out the invention]

[0032] (An example of an apparatus to which the present invention is applied) To facilitate understanding of the present invention, an automated vaccination robot device 100, which is a type of medical robot device, will be described as an apparatus to which the present invention is applied. This automated vaccination robot device 100 is a robot device that automatically performs vaccination to prevent infectious diseases such as COVID-19.

[0033] Figures 1 to 3 show the external appearance of the automated vaccine administration robot device 100 together with a person 200 to be vaccinated. Figure 1 is a perspective view of the external appearance of the automated vaccine administration robot device 100, viewed from the front right. Figure 2 is a schematic right side view of the external appearance of the automated vaccine administration robot device 100, viewed from approximately the right side. Figure 3 is a perspective view of the external appearance of the automated vaccine administration robot device 100, viewed from the rear right.

[0034] Here, as shown in Figures 1 to 3, a Cartesian coordinate system (X,Y,Z) is used. In the state shown in Figures 1 to 3, in the Cartesian coordinate system (X,Y,Z), the X-axis direction is the front-back direction, the Y-axis direction is the left-right direction perpendicular to the X-axis direction, and the Z-axis direction is the up-down direction perpendicular to both the X-axis and Y-axis directions. Therefore, the X-axis direction extends in the forward direction X1 and the backward direction X2, the Y-axis direction extends in the rightward direction Y1 and the leftward direction Y2, and the Z-axis direction extends in the upward direction Z1 and the downward direction Z2. In this specification, the forward direction X1 is also called the forward direction or direction of travel, and the backward direction X2, which is the opposite direction to the forward direction X1, is also called the backward direction or direction of retreat. The Cartesian coordinate system (X,Y,Z) described above will also be used in subsequent drawings. In this specification, the forward direction X1 is also called the "first direction," and the backward direction X2 is also called the "second direction." In this specification, "before" and "after" may be replaced with "first" and "second," respectively, as appropriate.

[0035] As is clear from Figures 1 to 3, at the position X1 in front of the automated vaccination robot device 100 (vaccination position), the person to be vaccinated, 200, is seated in a chair 300 with their face turned to the right Y1. In other words, in the illustrated example, the automated vaccination robot device 100 is a device that administers the vaccine to the person 200 by intramuscular injection into the left upper arm 210.

[0036] The automated vaccine administration robot device 100 includes a base 110, first to fourth arms 121, 122, 123, and 124, and an injector module 130. The first to fourth arms 121 to 124 are arranged in this order upward Z1 from the base 110. The injector module 130 is attached to the upper end of the fourth arm 124. In the illustrated example, the base 110 is fixed to the floor surface, but it may be a movable base configured to move on the floor surface in the X-axis and Y-axis directions.

[0037] The base 110 incorporates a controller (not shown) and a power supply (not shown) for controlling the automatic vaccination robot device 100. Alternatively, instead of incorporating a power supply, the automatic vaccination robot device 100 may be configured to receive power from an external power supply via wired or wireless connection. The controller is connected to an external computer (not shown) via wired or wireless connection. The controller receives various commands from the computer to operate the automatic vaccination robot device 100. The controller controls the operation of the automatic vaccination robot device 100 according to these commands.

[0038] The base 110 and the first to fourth arms 121-124 are connected via the first to fourth joints 141, 142, 143, and 144. More specifically, the lower end of the first arm 121 is rotatably connected to the upper surface of the base 110 via the first joint 141. The upper end of the first arm 121 and the lower end of the second arm 122 are connected via the second joint 142 so as to be rotatable around the axis of rotation of the second joint 142. The upper end of the second arm 122 and the lower end of the third arm 123 are connected via the third joint 143 so as to be rotatable around the axis of rotation of the third joint 143. The upper end of the third arm 123 and the lower end of the fourth arm 124 are connected via the fourth joint 144, so as to be rotatable around the rotation axis of the fourth joint 144. The first to fourth joints 141 to 144 are each driven by first to fourth motors (not shown). The first to fourth motors rotate the first to fourth joints 141 to 144, each based on control signals sent from the controller.

[0039] The injector module 130, attached to the upper end of the fourth arm 124, is an injection device for administering vaccine to the person 200. That is, the injector module 130 operates as an injection device incorporated into the automated vaccine administration robot device 100. The injector module 130 administers vaccine to the left upper arm 210 of the person 200 in accordance with the operation commands sent from the controller, as described later.

[0040] The injector module 130 includes a first housing 131 that covers an external actuator (described later) and a second housing 132 that covers a plurality of cartridge injectors (described later) driven by the external actuator. The second housing 132 incorporates a magazine device (not shown) configured to load a plurality of cartridge injectors.

[0041] More specifically, the second housing 132 houses a standby chamber (not shown), a waste chamber (not shown), and an operating section (described later). In its initial state, the standby chamber holds and houses all of the multiple cartridge injectors. The waste chamber is for storing used cartridge injectors. The magazine device operates to sequentially feed the multiple cartridge injectors one by one from the standby chamber to the operating section, and then to move the used cartridge injectors from the operating section to the waste chamber. The magazine device performs the loading operation described above in accordance with the loading command sent from the controller.

[0042] Meanwhile, the cartridge injector delivered to the control unit is operated by an external actuator, as will be described later, to administer the vaccine to the left upper arm 210 of person 200. In other words, the cartridge injector delivered to the control unit functions as a simple syringe for intramuscular injection.

[0043] Next, with reference to Figures 4 to 6, the configuration of the cartridge injector 400 according to one embodiment of the present invention, which is fed to the operation unit, will be described. Figure 4 is a perspective cross-sectional view of the cartridge injector 400 seen from the front right at an angle. Figure 5 is a schematic right-side cross-sectional view of the cartridge injector 400 seen from approximately the right side. Figure 6 is a perspective cross-sectional view of the cartridge injector 400 seen from the rear right at an angle.

[0044] As mentioned above, Figures 4 to 6 also use the same Cartesian coordinate system (X,Y,Z) as shown in Figures 1 to 3. Since the Cartesian coordinate system (X,Y,Z) used has already been described in detail, its explanation will be omitted for brevity.

[0045] As is clear from Figures 4 to 6, the cartridge injector 400 has a shape that is substantially rotationally symmetric with respect to a central axis CA extending in the front-rear direction X. The cartridge injector 400 includes a hollow housing 410 that extends along the central axis CA. The housing 410 is made of metal or resin. The housing 410 is cylindrical with a first inner wall 411 having a first inner diameter Di1 and an open rear end. The housing 410 has a tapered tip 412 in its front direction X1. The housing 410 has a cylindrical opening 4121 with a diameter Da that allows the injection needle (catheter) 420, described later, to protrude and retract. The diameter Da is smaller than the first inner diameter Di1. The opening 4121 of the tip 412 is sealed with silicone (not shown). Therefore, the injection needle (catheter) 420 is shaped to penetrate the silicone.

[0046] The injection needle (catheter) 420 is provided within the housing 410, extending along the central axis CA on its forward X1 (first direction) side. The injection needle (catheter) 420 is substantially cylindrical, and its tip 421 is cut at an angle. The rear end portion 422 of the injection needle (catheter) 420 is held by the first movable body 430 via a retaining member 440.

[0047] The first movable body 430 is positioned within the housing 410 so as to be movable in the front-rear direction X while sliding against the inner wall 411 along the central axis CA. More specifically, the first movable body 430 consists of a rear end portion 432 on the rearward direction X2 (first direction) side, a front end portion 434 on the forward direction X1 (first direction) side, and an intermediate portion 436 positioned between the rear end portion 432 and the front end portion 434.

[0048] The rear end portion 432 has a cylindrical portion and four protrusions projecting radially outward from the cylindrical portion in the upward Z1, downward Z2, rightward Y1, and leftward Y2 directions. The four protrusions extend in the front-rear direction X. The outer circumferential surface that virtually connects the radially outward tip surfaces of the four protrusions of the rear end portion 432 in the circumferential direction forms an outer wall 4321 with an outer diameter substantially equal to the first inner diameter Di1. The cylindrical portion of the rear end portion 432 has an inner wall 4322 with a second inner diameter Di2 that is smaller than the first inner diameter Di1. Therefore, the outer wall 4321 of the rear end portion 432 slides against the first inner wall 411 of the housing 410.

[0049] The intermediate section 436 is cylindrical, having the same shape as the cylindrical section of the rear end 432. The intermediate section 436 has an outer wall 4361 with a first outer diameter Do1 smaller than the first inner diameter Di1, and an inner wall 4362 with an inner diameter equal to the second inner diameter Di2. Therefore, the inner wall 4322 of the rear end 432 and the inner wall 4362 of the intermediate section 436 are continuous, sharing the same second inner diameter Di2. There is also a gap between the outer wall 4361 of the intermediate section 436 and the inner wall 411 of the housing 410. The rear end of the spring 450, which will be described later, is positioned in this gap.

[0050] The cylindrical space with a second inner diameter Di2, enclosed by the inner wall 4322 of the rear end portion 432 and the inner wall 4362 of the intermediate portion 436, functions as a containment space AS for containing the chemical solution (liquid agent) described later. Therefore, the inner wall 4322 of the rear end portion 432 and the inner wall 4362 of the intermediate portion 436 both act as a second inner wall for forming the containment space AS.

[0051] The front end portion 434 has a cross-shaped outer form when viewed from the front, and has a cylindrical inner wall 4342 in the center. The distance between the outer walls 4341 that are virtually formed circumferentially at the widest distances from each other on the cross-shaped outer form of the front end portion 434 has a second outer diameter Do2 that is smaller than the first outer diameter Do1. Also, the inner wall 4342 of the front end portion 434 has a third inner diameter Di3 that is smaller than the second inner diameter Di2. The holding member 440 is positioned on this inner wall 4342 of the front end portion 434. Therefore, the rear end portion 422 of the injection needle (catheter) 420 is held by the front end portion 434 of the first movable body 430 via the holding member 440. Note that the cylindrical internal space of the injection needle (catheter) 420 is in communication with the housing space AS.

[0052] Therefore, the first movable body 430 acts as a first piston, reciprocating in the forward / backward direction X along the central axis CA within the first cylinder, with the housing 410 acting as the first cylinder. The first movable body 430 is moved forward in the direction X1 along the central axis CA by the first movable element (first operating part) of the external actuator, which will be described later. Therefore, the first movable body 430 acts as a first driven body that moves the injection needle (catheter) 420 forward in the direction X1 along the central axis CA.

[0053] Note that the cartridge injector 400 shown in Figures 4 to 6 represents the initial state. The housing 410 has a rear end portion 413 in the rear direction X2 (second direction). The rear end portion 413 has a projection 4131 that protrudes radially inward from the inner wall 411 of the housing 410. Therefore, the inner diameter of the projection 4131 is slightly smaller than the first inner diameter Di1. In the initial state, the rear ends 432b of the four protrusions of the rear end portion 432 of the first movable body 430 and the projection 4131 of the rear end portion 413 of the housing 410 are engaged. Here, "engagement" means being related.

[0054] Inside the housing 410, the spring 450 is positioned on its front-facing side X1 (first direction). The spring 450 extends in the front-rear direction X along the central axis CA. The spring 450 has a front end 451 in the front-facing direction X1 (first direction) and a rear end 452 in the rear-facing direction X2 (second direction). The front end 451a of the front end 451 of the spring 450 engages with the rear end 412b of the front end 412 of the housing 410. As described above, the rear end 452 of the spring 450 is positioned in the gap formed between the outer wall 4361 of the intermediate portion 436 of the first movable body 430 and the inner wall 411 of the housing 410. The rear end 452b of the rear end 452 of the spring 450 engages with the front ends 432a of the four protrusions of the rear end 432 of the first movable body 430.

[0055] Therefore, the spring 450 is positioned along the central axis CA between the front end 412 of the housing 410 and the rear end 432 of the first movable body 430. As mentioned above, Figures 4 to 6 show the initial state of the cartridge injector 400. In this initial state, the spring 450 does not exert any biasing force on the first movable body 430 located inside the housing 410. However, when the first movable body 430 attempts to move forward X1 (first direction) along the central axis CA, the spring 440, with its biasing force, biases the first movable body 430 backward X2 (second direction) relative to the housing 410. In other words, the spring 450 acts as a biasing means that biases the first movable body 430 backward X2 (second direction) along the central axis CA relative to the housing 410. Therefore, in the initial state, the spring 450 locks the rear end 432b of the rear end 432 of the first movable body 430 with the protrusion 4131 of the rear end 413 of the housing 410. Here, "locking" means being intertwined and stopped.

[0056] Therefore, the first movable body 430, together with the second movable body 460 (described later), is moved from its initial state in the forward direction X1 (first direction) along the central axis CA against the biasing force of the spring 450 by the first movable element (first operating part) of the external actuator, which will be described later. Furthermore, when the first driving force (first thrust; first Lorentz force) of the first movable element of the external actuator disappears, the first movable body 430 can return to its initial state due to the biasing force of the spring 450.

[0057] As mentioned above, the cylindrical space enclosed by the second inner wall 4322 of the rear end 432 and the second inner wall 4362 of the intermediate portion 436 of the first movable body 430 is a storage space AS for containing the drug solution (liquid agent). The second movable body 460 is positioned on the rearward X2 (second direction) side of this storage space AS. The second movable body 460 has a substantially cylindrical outer shape and is movable in the forward direction X1 along the central axis CA. The outer circumferential wall of the second movable body 460 has substantially the same outer diameter as the second inner diameter Di2 of the second inner wall 4322 of the rear end 432 and the second inner wall 4362 of the intermediate portion 436 of the first movable body 430. That is, the outer circumferential wall of the second movable body 460 is slidable relative to the second inner walls (4322; 4362) of the first movable body 430.

[0058] The second movable body 460 consists of a front member 462 provided in the forward direction X1 (first direction) and a rear member 464 provided in the rear direction X2 (second direction). The front member 462 and the rear member 464 are connected and combined with each other like a lock and key. The front member 462 functions as a gasket (packing). The front member 462 has a circular front wall surface 462a in the forward direction X1 (first direction). The rear member 464 has an annular rear wall surface 464b in the rear direction X2 (second direction). Therefore, to be more precise, the above-mentioned containment space AS is a cylindrical space enclosed by the second inner wall 4322 of the rear end portion 432 of the first movable body 430, the second inner wall 4362 of the intermediate portion 436, the annular rear wall surface 434b of the front end portion 434, and the front wall surface 462a of the second movable body 460. This containment space AS contracts as the second movable body 460 moves relative to the first movable body 430 in the forward direction X1 (first direction). Due to this contraction of the containment space AS, the drug solution (liquid agent) contained in the containment space AS is released to the outside through the internal space of the injection needle (catheter) 420.

[0059] Therefore, the second movable body 460 acts as a second piston, capable of reciprocating in the forward / backward direction X along the central axis CA within the second cylinder, with the first movable body 430 acting as the second cylinder. The second movable body 460 is moved forward in the first direction X1 along the central axis CA by the second movable element (second operating part) of the external actuator, which will be described later. Therefore, the second movable body 460 acts as a second driven body for pushing the chemical solution (liquid agent) in the containment space AS forward in the first direction X1 along the central axis CA.

[0060] A cartridge injector 400 with this configuration is operated as follows. First, as mentioned above, the combination of the first movable body 430 and the second movable body 460 is moved forward X1 (first direction) along the central axis CA from its initial state against the biasing force of the spring 450 by the first movable element (first operating part) of the external actuator. As a result, the injection needle (catheter) 420 protrudes forward X1 (first direction) from the opening 4121 of the housing 410 along the central axis CA, and the tip 421 of the injection needle (catheter) 420 reaches the muscle from the left upper arm 210 of the person 200 (see Figures 1 to 3). Subsequently, the second movable element (second operating part) of the external actuator pushes the drug solution (liquid) in the containment space AS forward X1 (first direction) along the central axis CA by the second movable body 460. As a result, the drug solution (liquid) contained within the containment space AS is pushed into the muscle of the person 200 through the internal space of the injection needle (catheter) 420. Subsequently, the driving force (thrust; Lorentz force) of the first and second movable elements of the external actuator disappears. As a result, the protruding injection needle (catheter) 420 is automatically retracted into the housing 410 by the biasing force of the spring 450.

[0061] Furthermore, the first movable body 430 is also called the outer cylinder, and the second movable body 460 is also called the inner cylinder.

[0062] Next, with reference to Figures 7 to 9, the configuration of the linear motor 500 used as an external actuator for driving the cartridge injector 400 shown in Figures 4 to 6 will be described. Figure 7 is a perspective cross-sectional view of the linear motor 500 together with the cartridge injector 400 located in the operating section of the second housing 132, viewed from the front right. Figure 8 is a schematic right-side cross-sectional view of the linear motor 500 together with the cartridge injector 400 located in the operating section of the second housing 132, viewed from approximately the right side. Figure 9 is a perspective cross-sectional view of the linear motor 500 together with the cartridge injector 400 located in the operating section of the second housing 132, viewed from the rear right.

[0063] As mentioned above, Figures 7 to 9 also use the same Cartesian coordinate system (X,Y,Z) as shown in Figures 1 to 3. Since the Cartesian coordinate system (X,Y,Z) used has already been described in detail, its explanation will be omitted for brevity.

[0064] Before describing the configuration of the linear motor 500, we will first describe the configuration of the injector module 130 surrounding the linear motor 500 (i.e., the components surrounding the linear motor 500).

[0065] As described with reference to Figures 1 to 3, the injector module 130 includes a first housing 131 that covers a linear motor 500, which is an external actuator, and a second housing 132 that covers a plurality of cartridge injectors 400. The injector module 130 has a base 133 that extends in the front-rear direction X parallel to the central axis CA inside the first housing 131 and the second housing 132. The base 133 has a front end 133a inside the second housing 132 and a rear end 133b inside the first housing 131. Inside the second housing 132, a retaining block 134 that holds the cartridge injector 400 in operation is erected on the front-rear direction X1 (first direction) side of the base 133, extending upward Z1 from the base 133. Therefore, this retaining block 134 constitutes the operating section of the second housing 132.

[0066] Within the first housing 131, the first and second brackets 136 and 137, and another bracket 138 are erected upward Z1 from the base 133. The other bracket 138 is provided in close proximity to the holding block 134, separated by a predetermined distance L1. The first bracket 136 is erected from approximately the center of the base 133. The second bracket 137 is erected on the rearward X2 (second direction) side of the base 133. The first and second brackets 136 and 137 are for holding the stator of the linear motor 500, which will be described later.

[0067] A guide rail 150 is laid on the base 133 along the central axis CA. The guide rail 150 has a front end 150a in the forward direction X1 (first direction) and a rear end 150b in the rear direction X2 (second direction). The front end 150a of the guide rail 150 is located between another bracket 138 and the first bracket 136. The rear end 150b of the guide rail 150 is located between the second bracket 137 and the rear end 133b of the base 133, and is close to the rear end 133b of the base 133. First and second sliding members 151 and 152 are erected on the guide rail 150, and are slidable in the front-rear direction X parallel to the central axis CA. The first sliding member 151 is configured to slide between another bracket 138 and the first bracket 136 on the guide rail 150 in the front-rear direction X parallel to the central axis CA. The second sliding member 152 is configured to slide in the front-rear direction X parallel to the central axis CA on the guide rail 150 between the second bracket 137 and the rear end 133b of the base 133 (the rear end 150b of the guide rail 150).

[0068] The first and second sliding members 151 and 152 are for holding the first movable element of the linear motor 500, which will be described later. Therefore, the first movable element of the linear motor 500 is movable in the front-rear direction X along the central axis CA above the guide rail 150 together with the first and second sliding members 151 and 152.

[0069] Next, with reference to Figures 7 to 9, the configuration of the linear motor 500 for driving the cartridge injector 400 held by the holding block 134 will be described. First, the main components of the linear motor 500 will be described, and then the accessory components of the linear motor 500 will be described.

[0070] As is clear from Figures 7 to 9, the main body of the linear motor 500, like the cartridge injector 400, has a shape that is substantially rotationally symmetric with respect to the central axis CA extending in the front-rear direction X. Therefore, the cartridge injector 400 and the main body of the linear motor 500, which are held by the holding block 134, share the same central axis CA.

[0071] The linear motor 500 includes a stator 510 and a movable element as its main components. The movable element is positioned to move freely in the forward / backward direction X along the central axis CA relative to the stator 510. The movable element consists of a first movable element 520 and a second movable element 530. The first movable element 520 is positioned to move freely in the forward / backward direction X along the central axis CA relative to the stator 510. The second movable element 530 is positioned to move freely in the forward / backward direction X along the central axis CA relative to the first movable element 520. Thus, since the linear motor 500 has two movable elements 520 and 530, it is possible to perform a two-stage extension operation to move two different driven parts 430 and 460 of the cartridge injector 400. Hereinafter, the movable element consisting of the combination of the first movable element 520 and the second movable element 530 will be referred to as the movable element (520; 530).

[0072] In the illustrated example, the second movable element 530 is substantially cylindrical in shape and positioned on and near the central axis CA. The first movable element 520 is substantially cylindrical in shape and positioned near the outer circumference of the second movable element 530. The stator 510 is substantially cylindrical in shape and positioned near the outer circumference of the first movable element 520.

[0073] More specifically, the first movable element 520 has an annular cross-sectional shape and includes a plurality of cylindrical permanent magnets 522 arranged along a central axis CA. In the illustrated example, the first movable element 520 includes four permanent magnets 522. The plurality of permanent magnets 522 generate an outer magnetic flux OM and an inner magnetic flux IM at their outer and inner circumferences, respectively, as shown in Figure 10.

[0074] The stator 510 includes a plurality of outer electromagnet coils 512 arranged continuously along the central axis CA so as to surround the first movable element 520, with an outer gap between them. In the illustrated example, the stator 510 includes 15 outer electromagnet coils 512. The interaction between the outer current flowing through the plurality of outer electromagnet coils 512 and the outer magnetic flux OM allows the stator 510 to move the first movable element 520 along the central axis CA. At this time, the second movable element 530 is also moved along the central axis CA together with the first movable element 520. Thus, the interaction between the outer current and the outer magnetic flux OM allows the stator 510 to move the movable elements (520; 530) along the central axis CA.

[0075] The second movable element 530 includes a plurality of internal electromagnet coils 532 arranged continuously along the central axis CA so as to be surrounded by the first movable element 520, with an internal gap between them. In the illustrated example, the second movable element 530 includes 12 internal electromagnet coils 532. The interaction between the internal current flowing through the plurality of internal electromagnet coils 532 and the internal magnetic flux IM allows the second movable element 530 to travel along the central axis CA relative to the first movable element 520.

[0076] The stator 510 includes star-connected outer U-phase coils, outer V-phase coils, and outer W-phase coils as a plurality of outer electromagnet coils 512. Similarly, the second movable element 530 includes star-connected inner U-phase coils, inner V-phase coils, and inner W-phase coils as a plurality of inner electromagnet coils 532. Thus, the linear motor 500 consists of a three-phase linear motor.

[0077] Referring to Figure 11, the U-phase coil, V-phase coil, and W-phase coil used as multiple outer electromagnet coils 512 or multiple inner electromagnet coils 532 will be described.

[0078] Figure 11 shows connection examples when the basic configuration consists of three sets of three U-phase coils, one W-phase coil, and one V-phase coil, i.e., a total of nine coils, and when using the control driver 600. When the control driver 600 is connected to a single-phase 100V AC power supply 700, it has a built-in single-phase to three-phase converter, and the U-phase, V-phase, and W-phase are connected to the U-phase, V-phase, and W-phase coils, respectively. However, the U-phase, V-phase, and W-phase of the power supply are not necessarily connected in a one-to-one relationship to the U-phase, V-phase, and W-phase coils. There are various ways to connect the power supply to the U-phase, V-phase, and W-phase coils.

[0079] The control driver 600 is also connected to the aforementioned computer, such as a personal computer, as a control data input means and a data processing means. Based on operation commands provided by the computer, the control driver 600 controls the operation of the first movable element 520 or the second movable element 530.

[0080] Here, for the U-phase coils, the starting end S of the first coil U1 is connected to the U terminal of the control driver 600, and the ending end E of the first coil U1 is connected to the ending end E of the second coil U2. Then, the starting end S of the second coil U2 is connected to the starting end S of the third coil U3, and the ending end E of the third coil U3 is connected to the common terminal. Similarly, for the W-phase coils, the ending end E of the first coil W1 is connected to the W terminal of the control driver 600, and the starting end S of the first coil W1 is connected to the starting end S of the second coil W2. Then, the ending end E of the second coil W2 is connected to the ending end E of the third coil W3, and the starting end S of the third coil W3 is connected to the common terminal. On the other hand, for the V-phase coils, the starting end S of the first coil V1 is connected to the V terminal of the control driver 600, and the ending end E of the first coil V1 is connected to the ending end E of the second coil V2. Then, the starting end S of the second coil V2 is connected to the starting end S of the third coil V3, and the ending end E of the third coil V3 is connected to the common terminal.

[0081] Simply put, in the case of having nine coils as shown in Figure 11, for two phases, the middle coil of the three coils is connected to the coils on either side of it with the starting end S and ending end E reversed, and for the remaining phase, the coils on either side of the three coils are connected to the coil in between them with the starting end S and ending end E reversed.

[0082] In the case where there are 12 or more coils, i.e., 4 or more sets of coils, the multiple U-phase coils, multiple W-phase coils, and multiple V-phase coils in the multiple sets are each connected in series for each phase and connected to the control driver 600 in a star connection. Moreover, the multiple coils in two phases are connected such that the magnetic poles of the even-numbered sets are opposite to the magnetic poles of the odd-numbered sets, and the multiple coils in the remaining one phase are connected such that the magnetic poles of the odd-numbered sets are opposite to the magnetic poles of the odd-numbered sets of coils in the two phases, and the magnetic poles of the even-numbered sets are opposite to the magnetic poles of the even-numbered sets of coils in the two phases.

[0083] Each of the multiple permanent magnets 522 has a length dimension three times that of the coils of each phase. The multiple permanent magnets 522 are arranged in series along the central axis CA such that adjacent magnetic poles are like and in close contact with each other, as shown in Figure 10. However, a ring-shaped spacer made of a magnetic material, such as an iron plate, may be interposed between adjacent permanent magnets 522 with the same magnetic poles.

[0084] In the stator 510, a plurality of outer electromagnet coils 512 are housed in a cylindrical body 514 having grooves. The cylindrical body 514 is fixed between a first bracket 136 and a second bracket 137.

[0085] Each of the first bracket 136 and the second bracket 138 has a circular opening through which the first movable element 520 can pass. Thus, the first movable element 520 extends in the longitudinal direction X along the central axis CA through the openings of the first bracket 136 and the second bracket 137. In the first movable element 520, a plurality of permanent magnets 522 are housed in a cylindrical case 524. This case 524 extends in the longitudinal direction X along the central axis CA through the openings of the first bracket 136 and the second bracket 137. The case 524 has a front end 5241 in the forward direction X1 (first direction) and a rear end 5242 in the rear direction X2 (second direction). The front end 5241 of the case 524 is held by a first sliding member 151. The rear end 5242 of the case 524 is held by a second sliding member 152. With this configuration, the first movable element 520 is movable in the forward / backward direction X along the central axis CA above the guide rail 150, together with the first and second sliding members 151 and 152.

[0086] The second movable element 530 includes a center core 534 that is movable in the longitudinal direction X along the central axis CA relative to the first movable element 520. The center core 534 is substantially cylindrical in shape. Multiple internal electromagnet coils 532 are mounted around this center core 534. More specifically, the center core 534 consists of a front core portion 5341 on the forward direction X1 (first direction) side, a rear core portion 5342 on the rear direction X2 (second direction) side, and a central core portion 5343 located in the middle between them. A first O-ring 536 is fitted to the center core 534 between the front core portion 5341 and the central core portion 5343. A second O-ring 537 is fitted to the center core 534 between the central core portion 5343 and the rear core portion 5342. Between the first O-ring 536 and the second O-ring 537, multiple internal electromagnet coils 532 are mounted around the center core 534.

[0087] Next, the accessories of the linear motor 500 will be described. The linear motor 500 includes a cylindrical first operating part 560, a columnar second operating part 570, and a stopper 580 as accessories.

[0088] The first operating section 560 is provided on the front surface 151a of the first sliding member 151, extending forward in the first direction X1 (first direction) along the central axis CA. The first operating section 560 includes a cylindrical tubular portion 562 and a cylindrical body 564.

[0089] In the first operating section 560, the cylindrical section 562 has a cylindrical portion 5622, an annular bottom portion 5624, and a gripping portion 5626. The cylindrical portion 5622 extends forward in the first direction X1 along the central axis CA. The annular bottom portion 5624 extends radially outward from the rear end of the cylindrical portion 5622. This annular bottom portion 5624 is fixed to the front surface 151a of the first sliding member 151. The gripping portion 5626 is integrally attached to the front end of the cylindrical portion 5622 and grips the rear end of the cylindrical body 564.

[0090] The cylindrical body 564, gripped by the gripping portion 5626 of the cylindrical portion 562, has a cylindrical shape that extends forward in the first direction X1 along the central axis CA from the cylindrical portion 562. This cylindrical body 564 has an outer diameter smaller than the diameter of the opening 1381 made in another bracket 138. Therefore, the cylindrical body 564 is movable forward in the first direction X1 along the central axis CA through the opening 1381 of the other bracket 138.

[0091] When the cylindrical body 564 moves forward in the first direction X1, its front end (tip) 564a comes into contact with the rear end 432b (see Figure 5) of the rear end 432 of the first movable body 430 of the cartridge injector 400, which is held by the holding block 134. Here, "communication" means contact in a butting state. Then, while in contact, the combination of the first movable body 430 and the second movable body 460 moves forward in the first direction X1 (first direction) along the central axis CA. The cylindrical body 564 has an inner diameter that is slightly larger than the first inner diameter Di2 of the first movable body 430. Therefore, the front end (tip) 564a of the cylindrical body 564 does not come into contact with the rear wall surface 464b (see Figure 6) of the second movable body 460 of the cartridge injector 400.

[0092] A first spring 566 is positioned on the outer circumference of the first operating portion 560. The first spring 566 is positioned between the annular bottom portion 5624 of the cylindrical portion 562 and the cylindrical recess 1382 of another bracket 138. That is, the first spring 566 is positioned between the first sliding member 151 and the other bracket 138. The front end 566a of the first spring 566 contacts the cylindrical recess 1382 of the other bracket 138, and the rear end 566b of the first spring 566 contacts the annular bottom portion 5624 of the cylindrical portion 562.

[0093] Figures 7 to 9 illustrate the linear motor 500 in its initial state. In this initial state, the first spring 566 is not exerting its first biasing force in a substantially nonexistent manner. In this initial state, an external current is applied to the multiple external electromagnet coils 512 of the stator 510. In this case, due to the interaction between the external current and the outer magnetic flux OM of the first movable element 520, the movable elements (520; 530), together with the first and second sliding members 151 and 152, attempt to move forward X1 (first direction) along the central axis CA. Therefore, the first operating part 560 (cylindrical part 562 and cylindrical body 564), which is fixed to the first sliding member 151, moves forward X1 (first direction) along the central axis CA against the first biasing force of the first spring 566.

[0094] When the supply of external current to the coils 512 for the multiple external electromagnets of the stator 510 is stopped, the first thrust (first driving force; first Lorentz force) on the movable elements (520; 530) disappears. Therefore, the first biasing force of the first spring 566 causes the movable elements (520; 530), the first and second sliding members 151 and 152, and the first operating part 560 (cylindrical part 562 and cylindrical body 564) to automatically return to the initial state shown in Figures 7 to 9. Thus, the first spring 566 acts as a first biasing means that biases the movable elements (520; 530) in the rearward direction X2 (second direction).

[0095] The second operating portion 570 consists of a substantially cylindrical rod that extends from the front surface 534a of the center core 534 of the second movable element 530 so as to project forward in the first direction X1 along the central axis CA. The rear end of the second operating portion 570 is fitted into a recess formed in the front core portion 5341 of the center core 534. The second operating portion 570 passes through the cylindrical portion 562 and cylindrical body 564 of the first operating portion 560 without contact (with a gap). The second operating portion 570 has a projection 570a at its front end in the first direction X1.

[0096] As mentioned above, Figures 7 to 9 illustrate the linear motor 500 in its initial state. In this initial state, the projection 570a of the second operating part 570 is substantially at the same position in the front-rear direction X as the front end (tip) 564a of the cylindrical body 564 of the first operating part 560. In this initial state, when the second operating part 570 moves in the forward direction X1 (first direction), the projection 570a of the second operating part 570 comes into contact with the rear wall surface 464b (see Figure 6) of the second movable body 460 of the cartridge injector 400 held by the holding block 134. Then, the second operating part 570 moves the second movable body 460 along the central axis CA in the forward direction X1 (first direction) while in contact with the second movable body 460. The second operating part 570 has a diameter slightly smaller than the second inner diameter Di2 of the first movable body 430. Therefore, the protruding portion 570a of the second operating portion 570 does not come into contact with the rear end 432b (see Figure 5) of the rear end portion 432 of the first movable body 430 of the cartridge injector 400.

[0097] The stopper 580 is fixed to the second sliding member 152 by being fitted into the circular opening of the second sliding member 152. The stopper 580 is cylindrical in shape and extends forward in the first direction X1 along the central axis CA from the second sliding member 152. The rear core portion 5342 of the center core 534 of the second movable element 530 passes through the inside of the stopper 580 with a gap. The second O-ring 537, which is attached to the center core 534, engages with the annular front surface 580a of the stopper 580 in the forward direction X1 (first direction).

[0098] A cylindrical retaining portion 153 is erected in the circular opening of the first sliding member 151, inserted into the inner circumferential wall of the front end portion 5241 of the case 524, and positioned rearward in the second direction X2 along the central axis CA. The inner diameter of the retaining portion 153 is larger than the outer diameter of the center core 534. Therefore, the front core portion 5341 of the center core 534 passes through the retaining portion 153 with a gap between them. A first cap portion 156, having the same inner diameter as the retaining portion 153, is fixed to the rear surface 153b of the retaining portion 153, protruding in the rearward direction X2 (second direction). Therefore, the front core portion 5341 of the center core 534 also passes through this first cap portion 156 with a gap between them. On the other hand, a hollow second cap portion 157 is attached to the first O-ring 536 mounted on the center core 534, protruding in the forward direction X1 (first direction). The inner diameter of the second cap portion 157 may be substantially the same as or slightly larger than the outer diameter of the center core 534. This is because, since the second cap portion 157 is attached to the first O-ring 536, when the center core 534 moves in the forward-backward direction X along the axial direction CA, the second cap portion 157 moves together with the center core 534.

[0099] A second spring 572 is positioned on the outer circumference of the front core portion 5341 of the center core 534. The second spring 572 is positioned between the first cap portion 156 and the second cap portion 157. That is, the second spring 572 is positioned in a space formed on the inner circumference side of the first movable element 520, in a direction X2 (second direction) behind the first sliding member 151. The front end 572a of the second spring 572 contacts the bottom of the first cap portion 156, and the rear end 572b of the second spring 572 contacts the bottom of the second cap portion 157.

[0100] Figures 7 to 9 illustrate the linear motor 500 in its initial state. In this initial state, the second spring 572 is in a state where it does not exert its biasing force substantially. In this initial state, an internal current is passed through the multiple internal electromagnet coils 532 of the second movable element 530. In this case, due to the interaction between the internal current and the inner magnetic flux IM of the first movable element 520, the second movable element 530 attempts to move forward X1 (first direction) along the central axis CA relative to the first movable element 520. Therefore, the second operating part 570, which is fixed to the second movable element 530, moves forward X1 (first direction) along the central axis CA against the biasing force of the second spring 572.

[0101] When the supply of internal current to the multiple internal electromagnet coils 532 of the second movable element 530 is stopped, the second thrust (second driving force; second Lorentz force) on the second movable element 530 disappears. Therefore, the second biasing force of the second spring 572 automatically returns the second movable element 530 and the second operating part 570 to the initial state shown in Figures 7 to 9. Thus, the second spring 572 acts as a second biasing means that biases the second movable element 530 in the rearward direction X2 (second direction).

[0102] Next, the overall operation of the injector module 130 (cartridge injector 400 and linear motor 500) will be described with reference to Figures 4 to 9.

[0103] In the initial state shown in Figures 7 to 9, an external current is passed through the multiple external electromagnet coils 512 of the stator 510 of the linear motor 500 under the control of the controller. As a result, the interaction between this external current and the external magnetic flux OM (see Figure 10) generated by the multiple permanent magnets 522 of the first movable element 520 causes a first thrust (first Lorentz force) to act on the first movable element 520 relative to the stator 510, causing it to move forward X1 (first direction) along the central axis CA. Therefore, this first thrust (first Lorentz force) causes the movable elements (520; 530) to move (travel) forward X1 (first direction) on the guide rail 150 together with the first and second sliding members 151 and 152, against the first biasing force of the first spring 566.

[0104] As the movable elements (520; 530) move forward in the first direction X1, the first operating part 560, which is fixed to the first sliding member 151, also moves forward in the first direction X1 along the central axis CA. As the first operating part 560 moves forward in the first direction X1 along the central axis CA, its front end (tip) 564a engages with the rear end 432b of the first movable body 430 of the cartridge injector 400, causing the first movable body 430 to move forward in the first direction X1 along the central axis CA against the biasing force of the spring 450.

[0105] As a result, the injection needle (catheter) 420 protrudes from the tip 412 of the housing 410 of the cartridge injector 400 through its opening 4121, and the tip 421 of the protruding injection needle (catheter) 420 reaches the muscle of person 200 from the left upper arm 310. This completes the injection needle protrusion step.

[0106] Subsequently, under the control of the controller, an internal current is passed through the multiple internal electromagnet coils 532 of the second movable element 530 of the linear motor 500. As a result, the interaction between this internal current and the internal magnetic flux IM (see Figure 10) generated by the multiple permanent magnets 522 of the first movable element 520 causes a second thrust (second Lorentz force) to act on the second movable element 530 relative to the first movable element 520, causing it to move forward X1 (first direction) along the central axis CA. Thus, this second thrust (second Lorentz force) causes the second movable element 530 to move (travel) forward X1 (first direction) against the second biasing force of the second spring 572.

[0107] As the second movable element 530 moves forward X1 (first direction), the second operating part 570, which is fixed to the tip of the second movable element 530, also moves forward X1 (first direction) along the central axis CA. When the second operating part 570 moves forward X1 (first direction) along the central axis CA, the second operating part 570 moves the second movable body 460 forward X1 (first direction) along the central axis CA, with its protruding part 570a engaging with the rear wall surface 464b of the second movable body 460 of the cartridge injector 400.

[0108] As a result, the housing space AS of the first movable body 430 of the cartridge injector 400 contracts, and the drug solution (liquid) contained in the housing space AS is pushed out through the internal space of the injection needle (catheter) 420 and into the muscle of the person 200 from its tip 421. This completes the drug solution extrusion step.

[0109] After the intramuscular injection is completed in this manner, the flow of the external and internal currents is stopped under the control of the controller. As a result, both the first and second thrusts (first and second Lorentz forces) described above disappear. Consequently, the first biasing force of the first spring 566 of the linear motor 500 biases the movable elements (520; 530) in the rearward direction X2 (second direction) along the central axis CA, and the second movable element 530 is also biased in the rearward direction X2 (second direction) along the central axis CA by the second biasing force of the second spring 572. As a result, the first movable element 520, the first and second sliding members 151 and 152, the first operating part 560, the second movable element 530, and the second operating part 570 all automatically retract in the rearward direction X2 (second direction). This retraction returns the linear motor 500 to its initial state as shown in Figures 7 to 9.

[0110] Simultaneously with the above retraction, the biasing force of the spring 450 of the cartridge injector 400 also biases the first movable body 430 inside the housing 410 in the rearward direction X2 (second direction) along the central axis CA. As a result, the injection needle (catheter) 420 that was protruding to the outside is retracted into the housing 410. This completes the injection needle retraction step.

[0111] As is clear from the above description, according to embodiments of the present invention, the cartridge injector 400 can be operated by an external actuator such as a linear motor 500 capable of performing a two-stage extension operation.

[0112] Although the present invention has been described above with reference to embodiments, the present invention is not limited to the embodiments described above. Various modifications to the configuration and details of the present invention can be made that will be understood by those skilled in the art within the scope of the present invention.

[0113] For example, in the cartridge injector 400 according to the above embodiment, a spring 450 is used as the biasing means, but of course, another type of biasing means, such as one made of an elastic material exhibiting elasticity like rubber, may also be used. Furthermore, in the above embodiment, a linear motor 500 as shown in Figures 7 to 9 is used as the external actuator, but of course, it is not limited to this. That is, the external actuator can have any configuration as long as it is equipped with a cylindrical first operating part and a columnar second operating part. [Industrial applicability]

[0114] The cartridge injector according to the present invention is not limited to a simple syringe for an injector module, but is also effective as a cartridge injector having two driven bodies that can be operated by an external actuator that performs a two-stage extension operation. [Explanation of Symbols]

[0115] 100 Automatic Vaccine Inoculation Robot Device 110 base 121 First Arm 122 Second Arm 123 Third Arm 124. Fourth Arm 130 Injector Module (Injection Device) 131 First cabinet 132 Second cabinet 133 Base 133a front end 133b rear end 134 Holding Block 136 First bracket 137 Second bracket 138 Another bracket 1381 Aperture 1382 Cylindrical recess 141 First joint 142 Second joint 143 Third joint 144 The fourth joint 150 Guide Rail 150a front end 150b rear end 151 First sliding member 151a Front 152 Second sliding member 153 Holding part 153b Rear 156 First cap portion 157 Second cap section 200 people 210 Left upper arm 300 chairs 400 Cartridge Injector (Simple Syringe) 410 cabinets 411 First Inner Wall 412 Tip 412b rear end 4121 Aperture 413 Rear end 4131 Protrusion 420 Injection needles (catheters) 421 Tip 422 Rear end part 430 First movable body (first driven body) 432 Rear end 432a front end 432b rear end 4321 Exterior wall 4322 Second inner wall 434 Front end 434b Rear wall 4341 Exterior wall 4342 Interior wall 436 Middle section 4361 Exterior wall 4362 Second inner wall 440 Retaining member 450 Spring 451 Front end 451a front end 452 Rear end 452b rear end 460 Second movable body (second driven body) 462 Front component (gasket; packing) 462a Front wall 464 Rear member 464b Rear wall 500 Linear motor (external actuator) 510 Stator 512 Coil for outer electromagnet 514 Cylindrical body 520 First movable element 522 Permanent Magnets 524 cases 5241 Front end 5242 Rear end 530 Second movable element 532 Coil for internal electromagnet 534 Center Core 534a front 5341 Front core section 5342 Rear core section 5343 Central core section 536 First O-ring 537 Second O-ring 560 First operating section 562 Cylindrical part 5622 Cylindrical section 5624 Annular base 5626 Gripping part 564 Cylindrical body 564a Front end (tip) 566 The First Spring 566a front end 566b rear end 570 Second operating section 570a Protrusion 572 The Second Spring 572a front end 572b rear end 580 Stopper 580a Ring Front 600 Control Driver 700 AC power supply Da diameter Di1 First inner diameter Di2 Second inner diameter Di3 Third inner diameter Do1 First outer diameter Do2 Second outer diameter CA center axis AS containment space OM peripheral magnetic flux IM inner magnetic flux

Claims

1. A hollow housing having a first inner wall extending along a central axis, the housing having a tapered shape on the front side in the first direction and a tip with an opening, A catheter provided within the housing, extending along the central axis on the first direction side, which is capable of protruding from / retracting relative to the tip, and having a rear end portion on the second direction side opposite to the first direction, Within the housing, there is a first movable body that holds the rear end portion of the catheter, which is arranged within the housing so as to be movable in a first direction and a second direction while sliding against the first inner wall of the housing along the central axis, and has a second inner wall that communicates with the catheter and forms a columnar storage space containing the drug solution, A second movable body, located within the first movable body on the second direction side, is positioned within the first movable body so as to be movable in the first direction while sliding against the second inner wall of the first movable body along the central axis, and capable of contracting the housing space, A biasing means for biasing the first movable body relative to the housing in the second direction along the central axis, A simple cartridge injector equipped with, The cartridge injector is configured to be operated from its rear by an external actuator, which is separate from the cartridge injector and consists of a linear motor capable of performing a two-stage extension operation, comprising a cylindrical first operating section and a columnar second operating section. The combination of the first movable body and the second movable body is configured such that, when pushed out from the rear surface of the first movable body toward the first direction by the first operating part in the initial state of the external actuator, it moves toward the first direction along the central axis relative to the housing against the biasing force of the biasing means, thereby causing the catheter to protrude toward the first direction through the opening at the tip of the housing. The second movable body is configured to move in the first direction along the central axis relative to the first movable body when pushed out from the rear surface of the second movable body toward the first direction by the second operating part, thereby causing the containment space to contract and the drug solution to be pushed out from the tip through the catheter. The biasing means of the cartridge injector is A cartridge injector wherein, when the first and second operating parts of the external actuator retract in the second direction and the external actuator returns to the initial state, the combination of the first movable body and the second movable body is biased in the second direction.

2. The cartridge injector according to claim 1, wherein each of the housing, the first movable body, and the second movable body has a shape that is substantially rotationally symmetric with respect to the central axis.

3. The second movable body has a substantially cylindrical shape and is positioned on and near the central axis. The first movable body is substantially cylindrical in shape and is positioned near the outer circumference of the second movable body. The housing is substantially cylindrical in shape and is located near the outer circumference of the first movable body. The cartridge injector according to claim 2.

4. The cartridge injector according to claim 1, wherein the catheter has a diagonally cut tip.

5. The cartridge injector according to claim 4, wherein the opening at the tip of the housing is sealed with silicone.

6. The first movable body is A cylindrical rear end portion provided on the rear side in the second direction, having an outer peripheral surface that slides against the first inner wall, and the rear end portion, A front end provided on the front side in the first direction, which holds the rear end portion of the catheter via a retaining member, A cylindrical intermediate portion provided between the rear end and the front end, having an outer diameter smaller than the inner diameter of the first inner wall, It consists of, The rear end and the intermediate portion both have the second inner wall that forms the accommodation space, The aforementioned rear end has an annular rear end that abuts against the tip of the first operating part. A cartridge injector according to any one of claims 1 to 5.

7. The second movable body is A front member provided on the front side in the first direction, having a front wall surface that cooperates with the second inner wall of the first movable body to form the accommodation space, A rear member provided on the rear side in the second direction, having a rear wall surface that abuts the tip of the second operating part, A cartridge injector according to claim 6, comprising the above.

8. The biasing means is arranged along the central axis between the front end of the housing and the rear end of the first movable body. The cartridge injector according to claim 6 or 7.