Device for analyzing motion of active multi-branched chain molecules
By designing a device that includes a base, side plates, and pulse-excitation analysis components, and utilizing components such as an excitation matrix and a high-precision camera, the shortcomings of traditional equipment in terms of detection accuracy and real-time data performance have been overcome. This has enabled the comprehensive analysis of the motion trajectories of active multi-branched molecules, promoting in-depth research.
Patent Information
- Application Number
- CN202423212295.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2034-12-25
AI Technical Summary
Existing molecular motion analysis equipment struggles to capture the rapidly changing and complex motion details of active multi-branched molecules, resulting in low detection accuracy, poor data real-time performance, and an inability to comprehensively analyze motion trajectories, thus hindering in-depth research.
The device, which includes a base, side plates, and pulsed excitation analysis components, uses a combination of an excitation matrix, a stage, a partition, and a recording and analysis module. Powered by a power source, the device excites a pulse generator to output an ultrashort pulse focused beam. Combined with a high-precision camera and a central control console, it analyzes the motion trajectory of multi-branched molecules.
It improves detection accuracy and data real-time performance, enabling comprehensive analysis of the motion trajectories of active multi-branched molecules and promoting in-depth research on these molecules.
Smart Images

Figure CN223897328U_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of molecular motion analysis technology, and in particular to a device for analyzing the motion of active multi-branched molecules. Background Technology
[0002] In many fields such as chemistry, biochemistry, and materials science, active multi-branched molecules play a crucial role. The unique multi-branched structure of these molecules endows them with complex physicochemical properties. Their motion state is not only related to the process of chemical reactions and molecular interactions in biological organisms, but also affects the performance of new materials. However, most existing molecular motion analysis devices are designed for simple molecular structures and are difficult to capture the rapidly changing and intricate motion details of active multi-branched molecules, such as the autonomous oscillation of branches, the coordinated twisting between different branches, and the irregular dynamic response to external stimuli.
[0003] Traditional methods suffer from drawbacks such as low detection accuracy, poor real-time data, and inability to comprehensively analyze motion trajectories, which severely restricts in-depth research on these special molecules.
[0004] To address the above problems, we propose a device for analyzing the motion of active multi-branched molecules. Utility Model Content
[0005] The purpose of this invention is to provide a device for analyzing the motion of active multi-branched molecules, which solves the problems of low detection accuracy, poor real-time data, and inability to fully analyze the motion trajectory of traditional methods, which seriously restricts the in-depth study of such special molecules.
[0006] To achieve the above objectives, this invention employs a device for analyzing the motion of active multi-branched molecules, comprising a base, side plates, and a pulse-excitation analysis assembly. The pulse-excitation analysis assembly includes an excitation matrix, a stage, a partition, and a recording and analysis module. The side plates are fixedly connected to the base and located above it, perpendicular to the base. The excitation matrix is detachably connected to the base and located above it, perpendicular to the side plates. The stage is fixedly connected to the base and located... Above the base, the mounting platform is disposed on one side of the excitation matrix and is perpendicular to the side plate. The partition is fixedly connected to the base and located above the base, with the partition disposed on the side of the mounting platform away from the excitation matrix and perpendicular to the side plate. The recording and analysis module is fixedly connected to the base and located above the base, with the recording and analysis module disposed on the side of the partition away from the mounting platform and perpendicular to the side plate.
[0007] The excitation matrix includes a power source, a mounting block, and an excitation pulser. The power source is detachably connected to the base and is located above the base, and is perpendicular to the side plate. The mounting block is located above the base, detachably connected to the power source, and is located on the side of the power source near the mounting platform. The mounting block is also perpendicular to the side plate. The excitation pulser is fixedly connected to the mounting block and is located on the side of the mounting block near the mounting platform.
[0008] The mounting platform further includes a lifting platform, a rotating seat, and a mounting base. The lifting platform is fixedly connected to the base and located above the center of the base. The lifting platform is positioned between the mounting block and the partition plate. The lifting platform is also perpendicular to the side plate. The rotating seat is detachably connected to the lifting platform and located above the lifting platform. The mounting base is detachably connected to the rotating seat and located above the rotating seat. One side of the mounting base is positioned on the same horizontal line as the excitation pulser.
[0009] The recording and analysis module includes a central control console and an extension frame. The central control console is fixedly connected to the base and located above the base. The central control console is positioned on the side of the partition away from the lifting platform. One end of the extension frame is detachably connected to the central control console and located above the central control console. The other end of the extension frame is positioned above the mounting base.
[0010] The recording and analysis module further includes a high-precision camera and a protective cover. The high-precision camera is detachably connected to the extension frame and is located below the end of the extension frame away from the main control panel. The high-precision camera is positioned above the mounting base. The protective cover is fixedly connected to the extension frame and is located at the end of the extension frame away from the main control panel. The protective cover is positioned on the outer surface of the high-precision camera and is also positioned above the mounting base.
[0011] This invention discloses a device for analyzing the motion of active multi-branched molecules, comprising a base, a side plate, and a pulse-excitation analysis assembly. The pulse-excitation analysis assembly includes an excitation matrix, a stage, a partition, and a recording and analysis module. The side plate is fixedly connected to the base and located above it, perpendicular to the base. The excitation matrix is detachably connected to the base and located above it, perpendicular to the side plate. The stage is fixedly connected to the base and located above it, positioned to one side of the excitation matrix, also perpendicular to the side plate. The partition is fixedly connected to the base and located above the base. The partition is positioned on the side of the mounting platform away from the excitation matrix and is also perpendicular to the side plate. The recording and analysis module is fixedly connected to the base and located above the base. The recording and analysis module is positioned on the side of the partition away from the mounting platform and is also perpendicular to the side plate. Due to the addition of the pulse excitation analysis component, the shortcomings of traditional methods, such as low detection accuracy, poor data real-time performance, and inability to fully analyze motion trajectories, are effectively solved, which seriously restricts the in-depth study of this type of special molecule. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0014] Figure 2 This is a top view of the entire utility model.
[0015] Figure 3 This is a utility model Figure 2 A cross-sectional view of the AA line structure.
[0016] 1-Base, 2-Side plate, 3-Excitation matrix, 301-Power source, 302-Supporting block, 303-Excitation pulser, 4-Supporting platform, 401-Lifting platform, 402-Rotating seat, 403-Supporting seat, 5-Partition, 6-Recording and analysis module, 601-Main control panel, 602-Extension frame, 603-High-precision camera, 604-Protective cover. Detailed Implementation
[0017] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0018] Please see Figures 1-3 , Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a top view of the entire utility model. Figure 3 This is a utility model Figure 2 A cross-sectional view of the AA line structure.
[0019] This invention provides a device for analyzing the motion of active multi-branched molecules, comprising a base 1, a side plate 2, and a pulse-excitation analysis component. The pulse-excitation analysis component includes an excitation matrix 3, a mounting platform 4, a partition 5, and a recording and analysis module 6. The excitation matrix 3 includes a power source 301, a mounting block 302, and an excitation pulser 303. The mounting platform 4 further includes a lifting platform 401, a rotating seat 402, and a mounting base 403. The recording and analysis module 6 includes a control console 601, an extension frame 602, a high-precision camera 603, and a protective cover 604. This solution addresses the shortcomings of traditional methods, such as low detection accuracy, poor real-time data processing, and the inability to comprehensively analyze motion trajectories, which severely restricts in-depth research on these special molecules. It is understood that the aforementioned solution allows for the observation and analysis of the motion trajectories of multi-branched molecules by placing the multi-branched molecules in the mounting platform 604. The molecules are placed in the mounting base 403, and the power source 301 provides energy to the excitation pulser 303 in the mounting block 302. The excitation pulser 303 then outputs an ultrashort pulse focused beam to the multi-branched molecules in the mounting base 403, precisely targeting specific chemical bonds and functional groups within the molecules to excite characteristic vibrational and rotational modes. Then, the operator controls the lifting platform 401 or the rotating seat 402 to adjust the mounting base 403 vertically or horizontally. The high-precision camera 603 then captures images of the mounting base 403, and the captured images are transmitted to the central control console 601 for analysis. This completes the analysis of the motion trajectory of the multi-branched molecules, effectively solving the problems of low detection accuracy, poor data real-time performance, and inability to comprehensively analyze motion trajectories in traditional methods, which seriously restrict the in-depth study of these special molecules.
[0020] In this specific embodiment, the side plate 2 is fixedly connected to the base 1 and located on the upper side of the base 1, and the side plate 2 is perpendicular to the base 1. The excitation matrix 3 is detachably connected to the base 1 and located above the base 1, and the excitation matrix 3 is perpendicular to the side plate 2. The mounting platform 4 is fixedly connected to the base 1 and located above the base 1, and the mounting platform 4 is located on one side of the excitation matrix 3, and the mounting platform 4 is also perpendicular to the side plate 2. The partition plate 5 is fixedly connected to the base 1 and located above the base 1, and the partition plate 5 is located on the side of the mounting platform 4 away from the excitation matrix 3, and the partition plate 5 is also perpendicular to the side plate 2. The recording and analysis module 6 is fixedly connected to the base 1 and located above the base 1, and the recording and analysis module 6 is located on the side of the base 1. The partition 5 is located away from the mounting platform 4. The recording and analysis module 6 is also perpendicular to the side plate 2. When observing and analyzing the motion trajectory of multi-branched molecules, the multi-branched molecules are placed in the mounting seat 403. Then, the power source 301 provides energy to the excitation pulser 303 in the mounting block 302. The excitation pulser 303 then outputs an ultra-short pulse focused beam to the multi-branched molecules in the mounting seat 403, precisely acting on specific chemical bonds and functional groups within the molecules to excite characteristic vibrational and rotational modes. Then, the operator controls the lifting platform 401 or the rotating seat 402 to adjust the mounting seat 403 up and down or left and right. Then, the high-precision camera 603 takes pictures of the mounting seat 403 and transmits the captured images to the central control console 601 for analysis, thereby completing the motion trajectory analysis of the multi-branched molecules.
[0021] The power source 301 is detachably connected to the base 1 and located above the base 1, and is perpendicular to the side plate 2. The mounting block 302 is located above the base 1, detachably connected to the power source 301, and located on the side of the power source 301 near the mounting platform 4. The mounting block 302 is also perpendicular to the side plate 2. The excitation pulser 303 is fixedly connected to the mounting block 302 and located on the side of the mounting block 302 near the mounting platform 4. The power source 301 provides energy to the excitation pulser 303 in the mounting block 302. Then, the excitation pulser 303 outputs an ultrashort pulse focused beam to the multi-branched molecules in the mounting base 403, precisely acting on specific chemical bonds and functional groups within the molecules to excite characteristic vibrational and rotational modes.
[0022] Secondly, the lifting platform 401 is fixedly connected to the base 1 and located at the upper center of the base 1. The lifting platform 401 is disposed between the mounting block 302 and the partition 5. The lifting platform 401 is also perpendicular to the side plate 2. The rotating seat 402 is detachably connected to the lifting platform 401 and located above the lifting platform 401. The mounting seat 403 is detachably connected to the rotating seat 402 and located above the rotating seat 402. One side of the mounting seat 403 is disposed on the same horizontal line as the excitation pulser 303. The operator controls the lifting platform 401 or the rotating seat 402 to adjust the mounting seat 403 up and down or left and right angles.
[0023] Meanwhile, the main control panel 601 is fixedly connected to the base 1 and located above the base 1. The main control panel 601 is located on the side of the partition 5 away from the lifting platform 401. One end of the extension frame 602 is detachably connected to the main control panel 601 and located above the main control panel 601. The other end of the extension frame 602 is located above the mounting base 403. The main control panel 601 is the main functional component for analyzing the images captured by the high-precision camera 603.
[0024] In addition, the high-precision camera 603 is detachably connected to the extension frame 602 and is located below the end of the extension frame 602 away from the main control panel 601. The high-precision camera 603 is positioned above the mounting base 403. The protective cover 604 is fixedly connected to the extension frame 602 and is located at the end of the extension frame 602 away from the main control panel 601. The protective cover 604 is disposed on the outer surface of the high-precision camera 603 and is also positioned above the mounting base 403. The high-precision camera 603 captures images of the mounting base 403 and then transmits the captured images to the main control panel 601 for analysis, thereby completing the analysis of the motion trajectory of multi-branched molecules.
[0025] When using this invention to observe and analyze the motion trajectory of multi-branched molecules, the multi-branched molecules are placed in the mounting base 403. Then, the power source 301 provides energy to the excitation pulser 303 in the mounting block 302. The excitation pulser 303 then outputs an ultrashort pulse focused beam to the multi-branched molecules in the mounting base 403, precisely acting on specific chemical bonds and functional groups within the molecules to excite characteristic vibrational and rotational modes. Then, the operator controls the lifting platform 401 or the rotating base 402 to adjust the angle of the mounting base 403 up and down or left and right. Then, the high-precision camera 603 captures images of the mounting base 403, and then transmits the captured images to the central control console 601 for analysis. This completes the motion trajectory analysis of multi-branched molecules, effectively solving the problems of low detection accuracy, poor data real-time performance, and inability to comprehensively analyze motion trajectories in traditional methods, which seriously restrict the in-depth research of such special molecules.
[0026] The above-disclosed embodiments are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of the present utility model. Those skilled in the art can understand that implementing all or part of the above-described embodiments and making equivalent changes in accordance with the claims of the present utility model are still within the scope of the utility model.
Claims
1. An apparatus for analyzing the motion of active multi-branched molecules, comprising a base and a side plate, wherein the side plate is fixedly connected to the base and located on one side above the base, and the side plate is perpendicular to the base, characterized in that, It also includes a pulse excitation analysis component, which comprises an excitation matrix, a mounting stage, a partition, and a recording and analysis module. The excitation matrix is detachably connected to the base and located above the base, and is perpendicular to the side plate. The mounting stage is fixedly connected to the base and located above the base, and is positioned to one side of the excitation matrix, and is also perpendicular to the side plate. The partition is fixedly connected to the base and located above the base, and is positioned on the side of the mounting stage away from the excitation matrix, and is also perpendicular to the side plate. The recording and analysis module is fixedly connected to the base and located above the base, and is positioned on the side of the partition away from the mounting stage, and is also perpendicular to the side plate.
2. The apparatus for analyzing the motion of active multi-branched molecules as described in claim 1, characterized in that, The excitation matrix includes a power source, a mounting block, and an excitation pulser. The power source is detachably connected to the base and is located above the base, and is perpendicular to the side plate. The mounting block is located above the base, detachably connected to the power source, and is located on the side of the power source near the mounting platform. The mounting block is also perpendicular to the side plate. The excitation pulser is fixedly connected to the mounting block and is located on the side of the mounting block near the mounting platform.
3. The apparatus for analyzing the motion of active multi-branched molecules as described in claim 2, characterized in that, The mounting platform also includes a lifting platform, a rotating seat, and a mounting base. The lifting platform is fixedly connected to the base and located above the center of the base. The lifting platform is disposed between the mounting block and the partition. The lifting platform is also perpendicular to the side plate. The rotating seat is detachably connected to the lifting platform and located above the lifting platform. The mounting base is detachably connected to the rotating seat and located above the rotating seat. One side of the mounting base is disposed on the same horizontal line as the excitation pulser.
4. The apparatus for analyzing the motion of active multi-branched molecules as described in claim 3, characterized in that, The recording and analysis module includes a central control console and an extension frame. The central control console is fixedly connected to the base and located above the base. The central control console is located on the side of the partition away from the lifting platform. One end of the extension frame is detachably connected to the central control console and located above the central control console. The other end of the extension frame is located above the mounting base.
5. The apparatus for analyzing the motion of active multi-branched molecules as described in claim 4, characterized in that, The recording and analysis module also includes a high-precision camera and a protective cover. The high-precision camera is detachably connected to the extension frame and is located below the end of the extension frame away from the main control panel. The high-precision camera is also positioned above the mounting base. The protective cover is fixedly connected to the extension frame and is located at the end of the extension frame away from the main control panel. The protective cover is disposed on the outer surface of the high-precision camera and is also positioned above the mounting base.