The disclosure relates to a centrifuge device and a lock module, and particularly relates to a centrifuge device and a lock module that may be used for biological analysis.
Biochemical testing of blood or other specimens usually requires rapid quantitative distribution of liquids to execute different tests. Biochemical testing usually also requires separation of cell bodies and body fluids that may affect each other before testing. The quantitative distribution and separation steps are usually achieved by centrifugation steps. The centrifugation step uses the centrifugal force generated by the centrifuge device to separate mixtures with various components and gravitational force.
Generally speaking, the centrifuge device must lock the stator of the centrifugal bowl and drive the rotor of the centrifugal bowl to rotate, so as to perform the centrifugation step on blood or other samples in the centrifugal bowl. In the current centrifuge device, the stator of the centrifugal bowl is generally locked by the lock mechanism with complicated structure and complex operation steps, such that it is difficult for the user to quickly lock and release the stator with one hand. On the other hand, in addition to the lock mechanism, the centrifuge device also requires an additional sensor and a corresponding circuit to detect whether the centrifugal bowl is leaking and/or to sense the height of liquid in the centrifugal bowl. Therefore, it is difficult to reduce the overall volume of the centrifuge device, so the requirement of portability cannot be met.
The disclosure provides a centrifuge device and a lock module thereof. The centrifuge device has a relatively small volume and the operation of the lock module is relatively simple.
The centrifuge device of the disclosure includes a base, a rotation platform, and a lock module. The rotation platform is disposed on the base and is adapted to support a rotor of a centrifugal bowl. The rotor is rotatably connected to a stator of the centrifugal bowl. The lock module includes a main body, a lock assembly, and a positioning component. The main body is disposed on the base. The lock assembly is movably connected to the main body and is located above the rotation platform. The lock assembly is adapted to be operated to a first state relative to the main body to lock the stator. The lock assembly is adapted to be operated to a second state relative to the main body to be separated from the stator. The positioning component is movably connected to the main body. The positioning component is adapted to move to a first position relative to the main body to position the lock assembly to the first state. The positioning component is adapted to move to a second position relative to the main body to release the lock assembly.
The lock module of the disclosure is adapted to a centrifuge device. The centrifuge device includes a base and a rotation platform. The rotation platform is disposed on the base and is adapted to support a rotor of a centrifugal bowl. The rotor is rotatably connected to a stator of the centrifugal bowl. The lock module includes a main body, a lock assembly, and a positioning component. The main body is disposed on the base. The lock assembly is movably connected to the main body and is located above the rotation platform. The lock assembly is adapted to be operated to a first state relative to the main body to lock the stator. The lock assembly is adapted to be operated to a second state relative to the main body to be separated from the stator. The positioning component is movably connected to the main body. The positioning component is adapted to move to a first position relative to the main body to position the lock assembly to the first state. The positioning component is adapted to move to a second position relative to the main body to release the lock assembly.
In an embodiment of the disclosure, the lock assembly has a notch and is adapted to lock the stator by the notch. An inner edge of the notch is non-circular.
In an embodiment of the disclosure, the lock assembly has a pivot portion and a force receiving portion. The pivot portion and the force receiving portion are respectively located at two opposite ends of the lock assembly. The pivot portion is pivotally connected to the main body. The force receiving portion is adapted to receive a force, so that the lock assembly rotates between the first state and the second state relative to the main body.
In an embodiment of the disclosure, the lock assembly is pivotally connected to the main body along a first rotational axis. The rotation platform is adapted to rotate along a second rotational axis. The first rotational axis is parallel to the second rotational axis.
In an embodiment of the disclosure, the lock assembly has a positioning hole and a sliding groove connected to each other. The positioning component includes a positioning section and a non-positioning section. An outer diameter of the positioning section is greater than a width of the sliding groove. An outer diameter of the non-positioning section is less than the width of the sliding groove. When the lock assembly is in the first state and the positioning component is at the first position, the positioning component penetrates the positioning hole and at least part of the positioning section is located in the positioning hole to position the lock assembly. When the positioning component moves to the second position along an axial direction of the positioning hole for the positioning section to move apart from the positioning hole, the non-positioning section located in the positioning hole is adapted to move to the sliding groove relative to the lock assembly.
In an embodiment of the disclosure, the lock module includes an elastic component connected between the main body and the positioning component. The positioning component is adapted to resist an elastic force of the elastic component to move from the first position to the second position. The positioning component is adapted to return from the second position to the first position by the elastic force of the elastic component.
In an embodiment of the disclosure, the lock module includes at least one leakage sensor. The at least one leakage sensor is disposed in the main body and faces the centrifugal bowl on the rotation platform.
In an embodiment of the disclosure, the lock module includes at least one signal line. The at least one signal line is at least partially disposed in the main body and is connected to the at least one leakage sensor.
In an embodiment of the disclosure, the lock module includes an optical sensing assembly. The optical sensing assembly is disposed in the main body and is adapted to sense a liquid level of liquid in the centrifugal bowl on the rotation platform.
In an embodiment of the disclosure, the optical sensing assembly includes a lens and an optical fiber line. The lens is disposed in the main body and faces the centrifugal bowl on the rotation platform. The optical fiber line is at least partially disposed in the main body and is connected to lens.
Based on the above, the lock module of the disclosure locks the stator of the centrifugal bowl by the operation of the single lock assembly, and positions and releases the lock assembly by the operation of the single positioning component, and the lock assembly and the positioning component are disposed in the same main body, so the user may easily operate the lock assembly and the positioning component with one hand. In addition, since the lock module of the disclosure is a single module composed of the simple parts as described above, the required configuration space is relatively small, so that the overall volume of the centrifuge device may be effectively reduced.
As described above, the lock module 130 of this embodiment locks the stator 54 of the centrifugal bowl 50 by the operation of the single lock assembly 134, and positions and releases the lock assembly 134 by the operation of the single positioning component 136. Also, the lock assembly 134 and the positioning component 136 are disposed in the same main body 132 of the lock module 130, so the user may conveniently perform the operations of the lock assembly 134 and the positioning component 136 with one hand. In addition, since the lock module 130 of this embodiment is a single module composed of simple parts as described above, the required configuration space is relatively small, so that the overall volume of the centrifuge device 100 can be effectively reduced.
In addition, the lock assembly 134 of this embodiment has a pivot portion 1341 and a force receiving portion 1342. The pivot portion 1341 and the force receiving portion 1342 are respectively located at two opposite ends of the lock assembly. The pivot portion 1341 is pivotally connected to the main body 132 along a first rotational axis A1, the rotation platform 120 is adapted to rotate along a second rotational axis A2, and the first rotational axis A1 is parallel to the second rotational axis A2. The force receiving portion 1342 is adapted to receive a force, so that the lock assembly 134 rotates between the first state shown in
For example, the user may press the thumb of the left hand against a force exertion position 54b of the stator 54 in
Conversely, the user may press the thumb of the left hand against another force exertion position 1342b of the force receiving portion 1342 in
The above force exertion manner is only an example, and the user may apply force to the lock assembly 134 and the stator 54 with other manners to rotate the lock assembly 134, which is not limited in the disclosure.
The configuration and operation of the positioning component 136 of this embodiment will be described in detail below.
In addition, when the lock assembly 134 is in the first state and the positioning component 136 is located at the first position as shown in
In other embodiments, the positioning component 136 may operate and position/release the lock assembly 134 by other suitable manners, which is not limited in the disclosure.
Please refer to
In addition, the lock module 130 includes an optical sensing assembly 135. The optical sensing assembly 135 is disposed in the main body 132 and is adapted to sense a liquid level of liquid in the centrifugal bowl 50 on the rotation platform 120. The liquid level is, for example, an interface between plasma and red blood cells in blood, an interface between the blood and air thereon, etc. Specifically, the optical sensing assembly 135 may include a lens 1351 and an optical fiber line 1352. The lens 1351 is disposed in the main body 132 and faces the centrifugal bowl 50 on the rotation platform 120, and the optical fiber line 1352 is partially disposed in the main body 132 and is connected to the lens 1351 to transmit a light signal from the lens 1351 to the signal receiving/processing element in the base 110 (shown in
Integrating the leakage sensor 131, the signal line 133, the lens 1351, and the optical fiber line 1352 into the main body 132 of the lock module 130 as described above may further simplify the structure of the centrifuge device 100 and facilitate the reduction of the overall volume of the centrifuge device 100. In addition, the leakage sensor 131, the signal line 133, the lens 1351, and the optical fiber line 1352 are integrated in an integration housing 137 shown in
In summary, the lock module of the disclosure locks the stator of the centrifugal bowl by the operation of the single lock assembly, and positions and releases the lock assembly by the operation of the single positioning component, and the lock assembly and the positioning component are disposed in the same main body, so the user may easily operate the lock assembly and the positioning component with one hand. In addition, since the lock module of the disclosure is a single module composed of the simple parts as described above, the required configuration space is relatively small, so that the overall volume of the centrifuge device may be effectively reduced. Moreover, the leakage sensor and the optical sensing assembly may be integrated into the lock module to further simplify the structure and the assembly process of the centrifuge device.
Number | Date | Country | Kind |
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110114180 | Apr 2021 | TW | national |
This application claims the priority benefit of U.S. Provisional Application No. 63/121,242, filed on Dec. 4, 2020 and Taiwan application serial no. 110114180, filed on Apr. 20, 2021. The entirety of each of the above-mentioned patent applications is hereby incorporated by reference herein and made a part of this specification.
Number | Date | Country | |
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63121242 | Dec 2020 | US |