Modular scalable assembly platform for a nuclear magnetic resonance capsule
By combining the power components with the lifting and expansion mechanism, the problem of needing multiple platforms to adapt to different sizes of nuclear magnetic resonance imaging (MRI) hoods in existing technologies has been solved, achieving multi-size adaptability of the equipment and reducing processing costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANG SU DONG KE COMPOSITES CO LTD
- Filing Date
- 2025-08-21
- Publication Date
- 2026-07-24
AI Technical Summary
Existing modular and scalable assembly platforms require multiple mounting platforms to accommodate MRI nacelle covers of different sizes, resulting in high processing costs.
By cooperating with the power components and the lifting and expansion mechanism, the side assembly plate is aligned with the main base, thereby expanding the equipment and adapting it to the processing of products with multiple sizes.
It reduced the processing cost of the equipment and enabled a single machine to process products with multiple sizes.
Smart Images

Figure CN224544482U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of nuclear magnetic resonance imaging (NMR) chamber cover processing technology, and in particular to a modular and scalable assembly platform for NMR chamber covers. Background Technology
[0002] Magnetic resonance imaging (MRI), also known as nuclear magnetic resonance imaging, is another major advancement in medical imaging after CT. It involves placing the human body in a special magnetic field and using radio frequency pulses to excite the hydrogen nuclei in the body, causing the hydrogen nuclei to resonate and absorb energy. After the radio frequency pulses stop, the hydrogen nuclei emit radio signals at a specific frequency and release the absorbed energy, which is recorded by an external receiver and processed by a computer to obtain an image. This is called magnetic resonance imaging.
[0003] Existing modular and scalable assembly platforms typically involve adapting products for assembly on a processing platform to achieve the desired product mounting effect. However, the size of MRI machine hoods varies depending on the design and application environment, resulting in different designs and prices. This necessitates the use of multiple mounting platforms for efficient assembly, which significantly increases processing costs. Therefore, this invention proposes a modular and scalable assembly platform for MRI machine hoods to address the problems existing in the prior art. Utility Model Content
[0004] To address the aforementioned issues, this utility model proposes a modular and expandable assembly platform for a nuclear magnetic resonance imaging (NMR) chamber cover. This modular and expandable assembly platform mainly utilizes the cooperation between a power component and a lifting and expansion mechanism to allow the side assembly plate to align with the main base after operation, achieving an expansion effect. This enables a single device to adapt to the processing of products with multiple sizes, thereby effectively reducing the processing cost of the device.
[0005] To achieve the purpose of this utility model, the utility model is implemented through the following technical solution: a modular and expandable assembly platform for a nuclear magnetic resonance imaging (MRI) chamber cover, including a main stage positioning component and a power component. The inner bottom side of the main stage positioning component is provided with a bolt-assembled power component, and the outer end of the power component is provided with a bolt-assembled lifting and expansion mechanism.
[0006] The power component includes a bolt hanger, a double-opening box, a first motor, a first meshing gear set, a lead screw set, a sliding beam, a lower lifting arm, and a side sliding arm. The bolt hanger is bolted to the inner bottom side of the main platform positioning assembly. A double-opening box is provided below the bolt hanger, and a first meshing gear set connected to the output end of the first motor is provided inside the double-opening box. A lead screw set is provided at the output end of the first meshing gear set, and a threaded sliding beam is provided at the output end of the lead screw set. A bolted lower lifting arm is provided below the sliding beam, and a bolted side sliding arm is provided below the lower lifting arm.
[0007] In a preferred embodiment of this utility model, the lower boom has a cylindrical duct-like structure inside.
[0008] In a preferred embodiment of the present invention, the main platform positioning component includes a base frame, an inner connecting frame, an upper sliding frame, a lower sliding groove, a main base, a main assembly plate, and a central electric rotating plate. The inner connecting frame is provided on the inner side of the base frame, and the upper sliding frame is provided on the upper side of the inner connecting frame, and the lower sliding groove is provided on the lower side of the inner connecting frame.
[0009] In a preferred embodiment of the present invention, the top of the base frame is provided with a bolt-assembled main base platform, and above the main base platform is a bolt-assembled main assembly plate, and above the main assembly plate is a central electric rotating disk.
[0010] In a preferred embodiment of this utility model, the lifting extension mechanism includes a four-opening box, a second motor, a coaxial mechanism, a second meshing gear set, a four-screw set, an extension slider, a hinge base, a hinge frame, an extension base plate, a side mounting plate, and a side electric rotating plate. The four-opening box is bolted to the top of one end of the side sliding arm. A second motor is provided on one side of the four-opening box, and the output end of the second motor is provided with a coaxial mechanism. The output end of the coaxial mechanism is provided with a second meshing gear set, and the output end of the second meshing gear set is provided with a four-screw set.
[0011] In a preferred embodiment of the present invention, the output end of the four lead screw assembly is provided with a threaded connection to an extended slider, and a hinge base is provided above the extended slider. A hinge frame is provided above the hinge base, and an extended base plate is provided above the hinge frame. A side mounting plate is provided above the extended base plate, and a side electric rotary disk is provided above the side mounting plate.
[0012] The beneficial effects of this utility model are as follows:
[0013] This invention mainly utilizes the cooperation between the power component and the lifting and expansion mechanism to enable the side assembly plate to align with the main base after operation, thereby achieving an expansion effect. This allows a single device to adapt to the processing of products with multiple sizes, thus effectively reducing the processing cost of the device. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0015] Figure 2 This is a bottom-view three-dimensional structural diagram of the present invention;
[0016] Figure 3 This is a three-dimensional structural diagram of the power component of this utility model;
[0017] Figure 4 This is a three-dimensional structural diagram of the lifting and extending mechanism of this utility model.
[0018] The components include: 1. Main platform positioning assembly; 101. Base frame; 102. Inner connecting frame; 103. Upper sliding frame; 104. Lower sliding groove; 105. Main base; 106. Main assembly plate; 107. Central electric rotating plate; 2. Power components; 201. Bolt hanger; 202. Double-opening box; 203. First motor; 204. First meshing gear set; 205. Lead screw assembly; 206. Sliding beam; 207. Lower lifting arm; 208. Side sliding arm; 3. Lifting extension mechanism; 301. Four-opening box; 302. Second motor; 303. Coaxial; 304. Second meshing gear set; 305. Four lead screw assembly; 306. Extension slider; 307. Hinge base; 308. Hinge frame; 309. Extension base plate; 3010. Side assembly plate; 3011. Side electric rotating plate. Detailed Implementation
[0019] To deepen the understanding of this utility model, the following detailed description will be provided in conjunction with embodiments. These embodiments are only used to explain this utility model and do not constitute a limitation on the scope of protection of this utility model.
[0020] according to Figure 1-4 As shown, this embodiment proposes a modular and expandable assembly platform for a nuclear magnetic resonance nacelle, including a main stage positioning component 1 and a power component 2. The main stage positioning component 1 is provided with a bolt-assembled power component 2 on its inner bottom side, and a bolt-assembled lifting and expansion mechanism 3 is provided above the outer end of the power component 2.
[0021] The power component 2 includes a bolt hanger 201, a double-opening box 202, a first motor 203, a first meshing gear set 204, a lead screw set 205, a sliding beam 206, a lower lifting arm 207, and a side sliding arm 208. The bolt hanger 201 is bolted to the inner bottom side of the main platform positioning component 1. The double-opening box 202 is located below the bolt hanger 201, and the first meshing gear set 204 connected to the output end of the first motor 203 is located inside the double-opening box 202. The lead screw set 205 is located at the output end of the first meshing gear set 204, and the sliding beam 206 is threadedly connected at the output end of the lead screw set 205. The lower lifting arm 207 is bolted below the sliding beam 206, and the side sliding arm 208 is bolted below the lower lifting arm 207.
[0022] The lower boom 207 has a cylindrical duct-like structure inside.
[0023] In this embodiment, when expansion is required, the first motor 203 below the double-opening box 202 is used to output power to drive the output end to run, so that after the first motor 203 outputs power, it drives the first meshing gear set 204 on the double-opening box 202 to mesh and drive. After the first meshing gear set 204 meshes and drives, the lead screw set 205 outputs power and drives the sliding beam 206 to run.
[0024] The main platform positioning assembly 1 includes a base frame 101, an inner connecting frame 102, an upper sliding frame 103, a lower sliding groove 104, a main base 105, a main assembly plate 106, and a central electric rotating plate 107. The inner connecting frame 102 is provided on the inner side of the base frame 101, and the upper sliding frame 103 is provided on the upper side of the inner connecting frame 102. The lower sliding groove 104 is provided on the lower side of the inner connecting frame 102.
[0025] In this embodiment, the operation of the sliding beam 206 enables the lower boom 207 and the side sliding arm 208 to be effectively positioned and moved under the sliding action of the upper sliding frame 103 and the lower sliding groove 104.
[0026] The base frame 101 has a bolt-assembled main base 105 at its top, and a bolt-assembled main assembly plate 106 is provided above the main base 105. A central electric rotating plate 107 is provided above the main assembly plate 106.
[0027] In this embodiment, during use, the main assembly plate 106 above the main base 105 is used to output and rotate to a suitable position so that the central electric rotating plate 107 can carry the equipment to be assembled.
[0028] The lifting extension mechanism 3 includes a four-opening box 301, a second motor 302, a coaxial 303, a second meshing gear set 304, a four-screw set 305, an extension slider 306, a hinge base 307, a hinge frame 308, an extension base plate 309, a side mounting plate 3010, and a side electric rotating plate 3011. The four-opening box 301 is bolted to one end of the side sliding arm 208. The second motor 302 is provided on one side of the four-opening box 301, and the output end of the second motor 302 is provided with a coaxial 303. The output end of the coaxial 303 is provided with a second meshing gear set 304, and the output end of the second meshing gear set 304 is provided with a four-screw set 305.
[0029] In this embodiment, the second motor 302 on one side of the four-opening box 301 is then used to output power to drive the output end to run, so that after the second motor 302 outputs power, the coaxial 303 and the second meshing gear set 304 output power to drive the four lead screw set 305 to output power.
[0030] The output end of the four lead screw assembly 305 is provided with a threaded connection to an extension slider 306, and a hinge base 307 is provided above the extension slider 306. A hinge frame 308 is provided above the hinge base 307, and an extension base plate 309 is provided above the hinge frame 308. A side mounting plate 3010 is provided above the extension base plate 309, and a side electric rotary plate 3011 is provided above the side mounting plate 3010.
[0031] In this embodiment, the output operation of the four lead screw assembly 305 causes the extension slider 306 to operate. After the extension slider 306, the hinge base 307, and the hinge frame 308 operate, the extension substrate 309 is effectively aligned with the main base 105, and the side electric rotary disk 3011 above the side mounting disk 3010 is subjected to a size enlargement processing function.
[0032] The modular and expandable assembly platform for the MRI machine cabin hood works as follows: During use, the main assembly plate 106 above the main base 105 rotates to a suitable position, allowing the central electric rotary table 107 to mount the equipment to be assembled. When expansion is needed, the first motor 203 below the double-opening box 202 outputs power to drive the output end. This power drives the first meshing gear set 204 on the double-opening box 202, which in turn meshes and transmits power. This meshing of the first gear set 204 causes the lead screw set 205 to output power, which in turn drives the sliding beam 206. The movement of the sliding beam 206 causes the lower boom 207 to move. The side sliding arm 208 is effectively positioned and moved under the sliding action of the upper sliding frame 103 and the lower sliding groove 104. Then, the second motor 302 on one side of the four-open box 301 outputs power to drive the output end to run. After the second motor 302 outputs power, the coaxial 303 and the second meshing gear set 304 output power to drive the four lead screw set 305 to output power. The output power of the four lead screw set 305 causes the extension slider 306 to run. After the extension slider 306, the hinge base 307, and the hinge frame 308 output power, the extension base plate 309 is effectively aligned with the upper main base 105, and the side electric rotating disk 3011 above the side assembly plate 3010 is thus enlarged in size.
[0033] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A modular and scalable assembly platform for a nuclear magnetic resonance imaging (NMR) chamber hood, comprising a main stage positioning assembly (1) and a power unit (2), characterized in that: The main platform positioning component (1) has a bolt-assembled power component (2) on its inner bottom side, and a bolt-assembled lifting extension mechanism (3) is provided above the outer end of the power component (2). The power component (2) includes a bolt hanger (201), a double-opening box (202), a first motor (203), a first meshing gear set (204), a lead screw set (205), a sliding beam (206), a lower lifting arm (207), and a side sliding arm (208). The bolt hanger (201) is bolted to the inner bottom side of the main platform positioning assembly (1). A double-opening box (202) is provided below the bolt hanger (201), and the double-opening box (202) The internal part of the device is provided with a first meshing gear set (204) connected to the output end of the first motor (203). The output end of the first meshing gear set (204) is provided with a lead screw set (205), and the output end of the lead screw set (205) is provided with a threaded sliding beam (206). The lower part of the sliding beam (206) is provided with a bolted lower boom (207), and the lower part of the lower boom (207) is provided with a bolted side sliding arm (208).
2. The modular and scalable assembly platform for a nuclear magnetic resonance imaging (MRI) chamber shroud according to claim 1, characterized in that: The lower boom (207) has a cylindrical duct-like structure inside.
3. The modular and scalable assembly platform for a nuclear magnetic resonance imaging (MRI) chamber hood according to claim 1, characterized in that: The main platform positioning assembly (1) includes a base frame (101), an inner connecting frame (102), an upper sliding frame (103), a lower sliding groove (104), a main base (105), a main assembly plate (106), and a central electric rotating plate (107). The inner connecting frame (102) is provided on the inner side of the base frame (101), and the upper sliding frame (103) is provided on the upper side of the inner connecting frame (102). The lower sliding groove (104) is provided on the lower side of the inner connecting frame (102).
4. A modular and scalable assembly platform for a nuclear magnetic resonance imaging (MRI) chamber hood according to claim 3, characterized in that: The base frame (101) is provided with a bolt-assembled main base (105) at its top end, and a bolt-assembled main assembly plate (106) is provided above the main base (105), and a central electric rotating plate (107) is provided above the main assembly plate (106).
5. A modular and scalable assembly platform for a nuclear magnetic resonance imaging (MRI) chamber shroud according to claim 1, characterized in that: The lifting and extending mechanism (3) includes a four-opening box (301), a second motor (302), a coaxial shaft (303), a second meshing gear set (304), a four-screw set (305), an extending slider (306), a hinge base (307), a hinge frame (308), an extending base plate (309), a side mounting plate (3010), and a side electric rotating plate (3011). The four-opening box (301) is bolted to one end of the side sliding arm (208). A second motor (302) is provided on one side of the four-opening box (301), and a coaxial shaft (303) is provided at the output end of the second motor (302). A second meshing gear set (304) is provided at the output end of the coaxial shaft (303), and a four-screw set (305) is provided at the output end of the second meshing gear set (304).
6. A modular and scalable assembly platform for a nuclear magnetic resonance imaging (MRI) chamber shroud according to claim 5, characterized in that: The output end of the four lead screw assembly (305) is provided with an extended slider (306) threadedly connected, and a hinge base (307) is provided above the extended slider (306). A hinge frame (308) is provided above the hinge base (307), and an extended base plate (309) is provided above the hinge frame (308). A side mounting plate (3010) is provided above the extended base plate (309), and a side electric rotary plate (3011) is provided above the side mounting plate (3010).