Rapid purity detection and analysis device for benzoyl chloride production
By introducing a slide rail support structure, locking components, amplification components, filtering components, and friction components into the rapid purity detection and analysis device for benzoyl chloride production, the problems of high temperature and equipment damage during transportation have been solved, and the stability, heat dissipation efficiency, and detection accuracy of the equipment have been improved.
Patent Information
- Application Number
- CN202511875382.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-12
- Publication Date
- 2026-02-03
AI Technical Summary
Existing rapid purity testing and analysis devices for benzoyl chloride production are easily damaged during high temperatures or handling, affecting the equipment's operating environment and testing accuracy.
The design incorporates a slide rail support structure, locking components, amplification components, filtering components, and friction components. By supporting and fixing the chromatograph, it reduces collisions and vibrations, enhances heat dissipation, filters impurities, prevents equipment movement, and ensures the accuracy of test data and the lifespan of the equipment.
It effectively prevents equipment collisions and shaking, improves stability and heat dissipation efficiency, protects core components, extends equipment lifespan, and ensures the accuracy and safety of test data.
Smart Images

Figure CN121453989A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of purity detection technology, specifically to a rapid purity detection and analysis device for benzoyl chloride production. Background Technology
[0002] Benzoyl chloride is an intermediate used in the production of pesticides, pharmaceuticals, dyes, and organic peroxides. Currently, there are two main methods for preparing benzoyl chloride: one is synthesis using phosgene; the other is the hydrolysis of benzyl trichloride. Rapid purity detection and analysis devices are specialized instruments based on rapid analytical techniques such as spectroscopy, chromatography, and electrochemistry to achieve real-time / near-real-time quantitative detection of substance purity. They are widely used in production process control, finished product quality inspection, and raw material screening in the chemical, pharmaceutical, food, and electronic materials industries.
[0003] Currently, the rapid purity detection and analysis device for benzoyl chloride production is used to detect and analyze the purity of benzoyl chloride. When the internal temperature of the equipment is too high, it can easily affect the operating environment of the equipment. When the equipment needs to be moved, collisions can also easily affect the equipment. Therefore, a new design has been developed to optimize the operating status of the equipment. Summary of the Invention
[0004] To address the aforementioned problems, the present invention provides the following technical solution: a rapid purity detection and analysis device for benzoyl chloride production, comprising a housing, a slide rail fixedly connected to the bottom of the inner wall of the housing, and a chromatograph slidingly engaging with the slide rail, allowing the housing to support and enclose the chromatograph, thus providing a certain degree of protection, reducing collisions with external objects, and extending the service life of the equipment. The outer side of the slide rail is slidably connected to the bottom of the chromatograph, which is used to detect and analyze the purity of benzoyl chloride. A docking block is fixedly connected to one side of the chromatograph, and a locking component is snapped onto the side of the docking block away from the chromatograph. When the chromatograph is placed inside the housing, it drives the docking block to engage with the locking component, fixing the docking block in place, thereby securing the equipment, preventing movement, avoiding impact on operational efficiency, and reducing collisions between components. The outer side of the component is fixedly connected to the outer side of the housing. A support component is fixedly connected to the bottom of the housing to provide a certain degree of elevation, reduce external impurities from contaminating the equipment, optimize the operating environment of the equipment, ensure normal operation of the equipment, and provide shock absorption and buffering. During handling and operation, it reduces rigid collisions between components, improves the stability of the equipment during operation, reduces the amplitude of equipment vibration, offsets vibrations in the production site, ensures the accuracy of test data, absorbs impact loads, protects the core components of the equipment, isolates temperature conduction and structural resonance, and stabilizes the operating environment. A sliding groove is opened on one side of the outer side of the housing, and an amplifying component is inserted into the inner side of the sliding groove to accelerate the heat dissipation efficiency inside the equipment, thereby controlling the internal temperature of the equipment, optimizing the operating environment of the equipment, helping to improve the operating efficiency of the equipment, avoiding damage caused by excessive internal temperature, and thus extending the service life of the equipment. The support assembly includes a support column, the top of which is fixedly connected to the bottom of the housing. A support shell is slidably connected to the outside of the support column, and a first spring is fixedly connected to the bottom of the support column. The support column slides on the inner wall of the support shell, compressing and contracting the first spring to provide shock absorption and buffering, thereby improving the stability of the equipment during operation, reducing the amplitude of equipment vibration, offsetting vibrations in the production site, ensuring the accuracy of test data, absorbing impact loads, protecting the core components of the equipment, isolating temperature conduction and structural resonance, and stabilizing the operating environment. The side of the first spring away from the support column is fixedly connected to the bottom of the inner wall of the support shell.
[0005] Preferably, an external block is fixedly connected to the side of the support column near the support housing. The external block slides inside the groove of the housing to limit the sliding range of the component, prevent excessive spring rebound, and keep the equipment moving within a certain range, thereby improving the safety of the equipment. The inner side of the support housing has a housing groove, and the outer side of the external block is slidably connected to the inner side of the housing groove. A support rubber pad is fixedly connected to the bottom of the support housing. The support rubber pad is made of rubber to increase the friction between the component and the ground, providing a certain protective effect and a certain buffering effect, thereby reducing the noise generated by equipment vibration.
[0006] Preferably, the locking assembly includes a locking housing, with a receiving end fixedly connected to the outer side of the locking housing. A hydraulic rod is fixedly connected to the outer side of the receiving end. The hydraulic rod clamps the connecting block from both sides of the locking housing, thereby achieving the effect of fixing the chromatograph, preventing the equipment from moving, avoiding affecting the detection effect of the equipment, and preventing shaking during subsequent handling or operation. A guiding assembly is fixedly connected to one side of the outer side of the locking housing, which plays a role in shock absorption and buffering, reducing collisions between components and buffering the kinetic energy of movement.
[0007] Preferably, the guiding assembly includes a guiding plate, and a guiding rod is fixedly connected to the outer side of the guiding plate away from the locking housing. When the chromatograph is pushed into the housing, the guiding plate drives the guiding rod to compress and contract the second spring, thereby playing a role in shock absorption and buffering, providing precise guidance and positioning, avoiding installation misalignment, buffering the impact of pushing in, protecting core precision components, adapting to convenient maintenance, and reducing the difficulty of operation. The outer side of the guiding rod is slidably connected to the guiding housing, and a second spring is fixedly connected to one side of the inner wall of the guiding housing. The outer side of the second spring is fixedly connected to the outer side of the guiding rod.
[0008] Preferably, the amplification component includes an amplification housing, an air inlet housing is fixedly connected to one side of the amplification housing, and a first fan is fixedly connected to the side of the air inlet housing away from the amplification housing. The first fan generates airflow, which passes through the air inlet housing and enters the chromatograph, thereby achieving ventilation and heat dissipation, accelerating heat dissipation, preventing overheating damage to components, cooling the core components of the chromatograph, maintaining a constant internal temperature environment, ensuring the accuracy of detection data, isolating corrosive gases, protecting internal components, preventing explosion risks, and improving equipment safety redundancy. A filter assembly is inserted and connected to one side of the air inlet housing to adsorb and filter moisture and impurities in the airflow, thereby reducing the entry of impurities and preventing damage to internal electronic components, thus extending the service life of the components. A grid plate is fixedly connected to the inner wall of the air inlet housing near the chromatograph.
[0009] Preferably, an air outlet shell is fixedly connected to the side of the amplification shell away from the air inlet shell, and a second fan is fixedly connected to the side of the air outlet shell. The air force drives the hot airflow of the chromatograph to be discharged, thereby accelerating the heat dissipation efficiency inside the equipment, constructing a directional airflow channel, improving the overall heat dissipation efficiency, balancing the air pressure inside the equipment, ensuring sealing and safety redundancy, and reducing safety risks. A grid cover is fixedly connected to the side of the air outlet shell near the second fan, which serves to block the entry of external impurities, prevent impurities from entering, and avoid blockage. A friction component is fixedly connected to the outer side of the grid cover.
[0010] Preferably, the filter assembly includes a filter housing, with a fixing frame fixedly connected to the inner side of the filter housing. A magnetic block is placed on the fixing frame by magnetic attraction, thereby fixing and intercepting the component to prevent it from falling off, and facilitating the installation and disassembly of the component. A cylindrical shell is fitted on the outer side of the fixing frame, and a filter plate is inserted and connected to the outer side of the cylindrical shell. This serves to filter dust and impurities, prevent flow path blockage and component wear, protect the cleanliness of the heat dissipation airflow, maintain stable heat dissipation efficiency, ensure the safe operation of the fan and the overall equipment, block internal condensation, prevent secondary diffusion of moisture, maintain heat dissipation efficiency, prevent moisture from affecting the heat exchange effect, meet explosion-proof requirements, and reduce the safety risks caused by moisture. A magnetic block is magnetically connected to the outer side of the fixing frame, and a handle is fixedly connected to one side of the filter housing.
[0011] Preferably, the friction assembly includes a fixed end, a connecting shaft rotatably connected to the inner side of the fixed end, and a paddle fixedly connected to the outer side of the connecting shaft away from the fixed end. The paddle drives the connecting shaft to rotate, causing the grinding assembly to rub against the surface of the component, thereby cleaning impurities through friction, preventing dust accumulation, which could affect the heat dissipation efficiency of the equipment, and preventing the impact on the operating environment of the equipment. The impurities generated during cleaning are discharged outward with the airflow, thereby reducing impurity accumulation. The grinding assembly is fixedly connected to the outer side of the connecting shaft.
[0012] Preferably, the abrasive assembly includes an abrasive housing, an abrasive bracket fixedly connected to the outer side of the abrasive housing, an abrasive plate fixedly connected to one side of the abrasive bracket, and a connecting block fixedly connected to the outer side of the abrasive plate away from the abrasive bracket. The connecting block is threadedly connected to the abrasive plate, which facilitates disassembly and installation, improves the modularity of equipment components, cleans impurities from components through friction, reduces hole blockage, and ensures smooth airflow, thereby optimizing the operating environment of the equipment. A rubber block made of silicone is fixedly connected to one side of the connecting block, which has a certain degree of wear resistance and friction, while reducing wear between components and extending the service life of the components. A groove is formed on the outer side of the rubber block away from the connecting block. The groove increases the surface texture of the component, thereby improving the friction performance of the component, further improving the cleaning efficiency of the component, and enhancing the deformation performance of the component, further improving the buffering effect.
[0013] This invention provides a rapid purity detection and analysis device for benzoyl chloride production. It has the following beneficial effects: I. This rapid purity detection and analysis device for benzoyl chloride production uses a locking component design. Hydraulic rods clamp the docking blocks from both sides of the locking housing, thus fixing the chromatograph and preventing equipment movement. This prevents movement during subsequent handling or operation, and the guiding component acts as a shock absorber, reducing collisions between components and buffering movement energy.
[0014] II. This rapid purity detection and analysis device for benzoyl chloride production utilizes an amplification component design. A primary fan generates airflow, which passes through the air inlet housing and enters the chromatograph, achieving ventilation and heat dissipation. This accelerates heat dissipation, prevents overheating damage to components, cools the core components of the chromatograph, maintains a constant internal temperature environment, ensures accurate detection data, isolates corrosive gases, protects internal components, mitigates explosion risks, and enhances equipment safety redundancy. During airflow, the device comes into contact with a filter assembly, which adsorbs and filters moisture and impurities in the airflow, reducing the entry of impurities and preventing damage to internal electronic components, thereby extending the service life of the components.
[0015] III. This rapid purity detection and analysis device for benzoyl chloride production utilizes a filter assembly design. Magnetic blocks are magnetically placed on a fixed frame to secure and intercept components, preventing them from falling off. This also facilitates component installation and disassembly. The filter plate filters dust and impurities, preventing flow path blockage and component wear, protecting the cleanliness of the heat dissipation airflow, maintaining stable heat dissipation efficiency, ensuring the safe operation of the fan and the overall equipment, blocking internal condensation, preventing secondary moisture diffusion, maintaining heat dissipation efficiency, preventing moisture from affecting heat exchange, and meeting explosion-proof requirements, thus reducing safety risks caused by moisture.
[0016] IV. The rapid purity detection and analysis device for benzoyl chloride production uses a friction component design. Wind force acts on the paddle plate, which drives the connecting shaft to rotate, causing the grinding component to rub against the surface of the parts. This friction cleans impurities, prevents dust accumulation, avoids affecting the heat dissipation efficiency of the equipment, and prevents the equipment's operating environment from being affected. The impurities generated during cleaning are discharged outward with the airflow, thereby reducing impurity accumulation.
[0017] V. This rapid purity testing and analysis device for benzoyl chloride production utilizes a mold assembly design, with connecting blocks threaded to the mold plate for easy disassembly and installation. This enhances the modularity of equipment components. Friction cleaning of components reduces pore blockage, ensuring smooth airflow and optimizing the equipment's operating environment. The rubber blocks are made of silicone, providing wear resistance and friction, while reducing wear between components and extending their service life. Grooving increases surface texture, improving friction performance and cleaning efficiency, while also enhancing deformation resistance and buffering effect. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the external structure of the rapid purity detection and analysis device of the present invention; Figure 2 This is a schematic cross-sectional view of the support component of the present invention; Figure 3 This is an enlarged structural diagram of the support component of the present invention; Figure 4 This is a schematic diagram of the cross-sectional structure of the locking component of the present invention; Figure 5 This is a schematic cross-sectional view of the guiding component of the present invention; Figure 6 This is a schematic cross-sectional view of the amplification component of the present invention; Figure 7 This is a partial structural diagram of the amplification component of the present invention; Figure 8 This is a schematic cross-sectional view of the filter assembly of the present invention; Figure 9 This is a schematic diagram of the friction assembly structure of the present invention; Figure 10 This is a schematic diagram of the grinding tool assembly structure of the present invention.
[0019] In the diagram: 1. Housing; 2. Slide rail; 3. Chromatograph; 4. Docking block; 5. Support assembly; 6. Locking assembly; 7. Slide groove; 8. Amplification component; 51. Support column; 52. Support housing; 53. First spring; 54. Support pad; 55. Housing groove; 56. External block; 61. Locking housing; 63. Hydraulic rod; 64. Receiving end; 65. Guide assembly; 651. Guide plate; 652. Guide rod; 653. Guide housing; 654. Second spring; 81. Amplification housing; 82. Air inlet housing; 83. First fan; 84. Grille; 85. Filter assembly; 86. Air outlet housing; 87. Second fan; 88. Grille cover; 89. Friction assembly; 851. Filter housing; 852. Handle; 853. Fixing frame; 854. Columnar housing; 855. Filter plate; 856. Magnetic block; 891. Fixed end; 892. Connecting shaft; 893. Paddle plate; 894. Grinding mold assembly; 8941. Grinding mold housing; 8942. Grinding mold support; 8943. Grinding mold plate; 8944. Rubber block; 8945. Connecting block; 8946. Block groove. Detailed Implementation
[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0021] First embodiment, such as Figures 1 to 5As shown, this invention provides a technical solution: a rapid purity detection and analysis device for benzoyl chloride production, comprising a housing 1, a slide rail 2 fixedly connected to the bottom of the inner wall of the housing 1, the outer side of the slide rail 2 slidably connected to the bottom of a chromatograph 3, a docking block 4 fixedly connected to one side of the chromatograph 3, a locking component 6 snapped onto the outer side of the docking block 4 away from the chromatograph 3, the outer side of the locking component 6 fixedly connected to the outer side of the housing 1, a support component 5 fixedly connected to the bottom of the housing 1, a sliding groove 7 opened on one side of the outer side of the housing 1, and an amplification component 8 inserted into the inner side of the sliding groove 7; the chromatograph 3 is used to detect and analyze the purity of benzoyl chloride. The chromatograph 3 slides and docks with the slide rail 2, allowing the housing 1 to support and enclose the chromatograph 3, thus providing a certain protective effect, reducing collisions with external objects, and extending the service life of the equipment. The support component 5 supports the housing 1, thus providing a certain elevation design, reducing external impurities from contaminating the equipment. Optimizing the operating environment of the equipment ensures its normal operation. Secondly, the support component 5 acts as a shock absorber, reducing rigid collisions between components during handling and operation, improving the stability of the equipment during operation, reducing equipment vibration amplitude, offsetting vibrations in the production site, ensuring the accuracy of test data, absorbing impact loads, protecting the core components of the equipment, isolating temperature conduction and structural resonance, and stabilizing the operating environment. When the chromatograph 3 is placed inside the housing 1, it drives the docking block 4 to dock with the locking component 6. The locking component 6 fixes the docking block 4, thereby fixing the equipment, preventing it from moving, avoiding affecting operating efficiency, and reducing collisions between components. During the operation of the chromatograph 3, the amplification component 8 accelerates the heat dissipation efficiency inside the equipment, thereby controlling the internal temperature of the equipment, thus optimizing the operating environment of the equipment, helping to improve the operating efficiency of the equipment, avoiding damage caused by excessive internal temperature, and thus extending the service life of the equipment.
[0022] The support assembly 5 includes a support column 51, the top of which is fixedly connected to the bottom of the housing 1. A support shell 52 is slidably connected to the outside of the support column 51. A first spring 53 is fixedly connected to the bottom of the support column 51. The outer side of the first spring 53, away from the support column 51, is fixedly connected to the bottom of the inner wall of the support shell 52. During equipment handling or operation, the support column 51 slides against the inner wall of the support shell 52, compressing and contracting the first spring 53. This provides shock absorption and cushioning, improving equipment stability during operation, reducing equipment vibration, offsetting vibrations in the production environment, ensuring the accuracy of test data, absorbing impact loads, protecting core components, isolating temperature conduction and structural resonance, and stabilizing the operating environment.
[0023] An external block 56 is fixedly connected to the side of the support column 51 near the support housing 52. A housing groove 55 is formed on the inner side of the support housing 52. The outer side of the external block 56 is slidably connected to the inner side of the housing groove 55. A support pad 54 is fixedly connected to the bottom of the support housing 52. During the sliding of the support column 51, the external block 56 slides within the housing groove 55, thereby limiting the sliding range of the component, preventing excessive spring rebound, and thus keeping the equipment within a certain range of movement, improving equipment safety. Furthermore, the support pad 54 is made of rubber, which increases the friction between the component and the ground, providing a certain degree of protection and cushioning, reducing noise generated by equipment vibration.
[0024] The locking assembly 6 includes a locking housing 61, with a receiving end 64 fixedly connected to the outer side of the locking housing 61. A hydraulic rod 63 is fixedly connected to the outer side of the receiving end 64, and a guide assembly 65 is fixedly connected to one side of the outer side of the locking housing 61. The hydraulic rod 63 clamps and presses the docking block 4 from both sides of the locking housing 61, thereby fixing the chromatograph 3 and preventing the equipment from moving, thus avoiding affecting the detection effect of the equipment and preventing shaking during subsequent handling or operation. The guide assembly 65 acts as a shock absorber, reducing collisions between components and buffering the kinetic energy of movement.
[0025] The guiding assembly 65 includes a guide plate 651. A guide rod 652 is fixedly connected to the outer side of the guide plate 651 away from the locking housing 61. A guide housing 653 is slidably connected to the outer side of the guide rod 652. A second spring 654 is fixedly connected to one side of the inner wall of the guide housing 653. The outer side of the second spring 654 is fixedly connected to the outer side of the guide rod 652. As the chromatograph 3 is pushed into the housing 1, the guide plate 651 drives the guide rod 652 to compress and contract the second spring 654, thereby playing a role in shock absorption and cushioning, providing precise guidance and positioning, avoiding installation misalignment, buffering the impact of pushing in, protecting core precision components, adapting to convenient maintenance, and reducing the difficulty of operation.
[0026] The second embodiment is based on the first embodiment; please refer to [link / reference]. Figures 6 to 7As shown, the amplification component 8 includes an amplification housing 81. An air inlet housing 82 is fixedly connected to one side of the amplification housing 81. A first fan 83 is fixedly connected to the side of the air inlet housing 82 away from the amplification housing 81. A filter assembly 85 is inserted and connected to the side of the air inlet housing 82. A grid plate 84 is fixedly connected to the inner wall of the air inlet housing 82 near the chromatograph 3. The first fan 83 generates airflow, which passes through the air inlet housing 82 and enters the chromatograph 3, thereby achieving ventilation and heat dissipation, accelerating heat dissipation, preventing overheating damage to components, cooling the core components of the chromatograph 3, maintaining a constant internal temperature environment, ensuring the accuracy of detection data, isolating corrosive gases, protecting internal components, preventing explosion risks, and improving equipment safety redundancy. During the airflow, the air comes into contact with the filter assembly 85, which adsorbs and filters moisture and impurities in the airflow, thereby reducing the entry of impurities and preventing damage to internal electronic components, thus extending the service life of the components.
[0027] An air outlet housing 86 is fixedly connected to the side of the amplification housing 81 away from the air inlet housing 82. A second fan 87 is fixedly connected to the side of the air outlet housing 86. A grille cover 88 is fixedly connected to the side of the air outlet housing 86 near the second fan 87. A friction assembly 89 is fixedly connected to the outer side of the grille cover 88. The second fan 87 generates airflow, which drives the hot airflow of the chromatograph 3 to be discharged, thereby accelerating the internal heat dissipation efficiency of the equipment, constructing a directional airflow channel, improving the overall heat dissipation efficiency, balancing the internal air pressure of the equipment, ensuring sealing and safety redundancy, and reducing safety risks. The grille cover 88 serves to block the entry of external impurities, preventing them from entering and causing blockages.
[0028] The third embodiment is based on embodiments one and two; please refer to [link / reference]. Figures 8 to 10 As shown, the filter assembly 85 includes a filter housing 851. A fixing frame 853 is fixedly connected to the inner side of the filter housing 851. A cylindrical housing 854 is sleeved on the outer side of the fixing frame 853. A filter plate 855 is inserted and connected to the outer side of the cylindrical housing 854. A magnetic block 856 is magnetically connected to the outer side of the fixing frame 853. A handle 852 is fixedly connected to one side of the filter housing 851. The magnetic block 856 is placed on the fixing frame 853 by magnetic attraction, thereby fixing and intercepting the components to prevent them from falling off. It also facilitates the installation and disassembly of the components. The filter plate 855 filters dust and impurities, avoids flow path blockage and component wear, protects the cleanliness of the heat dissipation airflow, maintains stable heat dissipation efficiency, ensures the overall safe operation of the fan and equipment, blocks internal condensation, prevents secondary diffusion of moisture, maintains heat dissipation efficiency, prevents moisture from affecting the heat exchange effect, meets explosion-proof requirements, and reduces the safety risks caused by moisture.
[0029] The friction assembly 89 includes a fixed end 891, a connecting shaft 892 rotatably connected to the inner side of the fixed end 891, a paddle 893 fixedly connected to the outer side of the connecting shaft 892 away from the fixed end 891, and an abrasive assembly 894 fixedly connected to the outer side of the connecting shaft 892. Wind force acts on the paddle 893, causing the paddle 893 to drive the connecting shaft 892 to rotate, thus causing the abrasive assembly 894 to rub against the surface of the component. This friction cleans impurities, preventing dust accumulation that could affect the equipment's heat dissipation efficiency and the operating environment. The impurities generated during cleaning are discharged outwards with the airflow, thereby reducing impurity accumulation.
[0030] The grinding tool assembly 894 includes a grinding tool housing 8941, a grinding tool support 8942 fixedly connected to the outside of the grinding tool housing 8941, a grinding tool plate 8943 fixedly connected to one side outside the grinding tool support 8942, a connecting block 8945 fixedly connected to the side of the grinding tool plate 8943 away from the grinding tool support 8942, a rubber block 8944 fixedly connected to one side outside the connecting block 8945, and a block surface groove 8946 is formed on the side of the rubber block 8944 away from the connecting block 8945.
[0031] Connecting block 8945 connects to rubber block 8944, and connecting block 8945 is threadedly connected to mold plate 8943, which facilitates disassembly and installation, improves the modularity of equipment components, cleans impurities from components through friction, reduces hole blockage, and ensures smooth airflow, thereby optimizing the operating environment of the equipment. Rubber block 8944 is made of silicone, which has a certain degree of wear resistance and friction, while reducing wear between components, thereby extending the service life of the components. By opening grooves 8946 on the block surface, the surface texture of the components is increased, thereby improving the friction performance of the components, further improving the cleaning efficiency of the components, and enhancing the deformation performance of the components, further improving the buffering effect.
[0032] In use, the chromatograph 3 is used to detect and analyze the purity of benzoyl chloride. The chromatograph 3 slides and connects with the slide rail 2, allowing the housing 1 to support and enclose it, thus providing a certain degree of protection, reducing collisions with external objects, and extending the equipment's service life. The support assembly 5 supports the housing 1, providing a slight elevation design to reduce external impurities from contaminating the equipment, thereby optimizing the operating environment and ensuring normal operation. Furthermore, the support assembly 5 acts as a shock absorber, reducing rigid collisions between components during handling and operation, improving equipment stability, reducing equipment vibration, and offsetting vibrations in the production environment. To ensure the accuracy of test data, absorb impact loads, protect core components of the equipment, isolate temperature conduction and structural resonance, and stabilize the operating environment, when the chromatograph 3 is placed inside the housing 1, it drives the docking block 4 to dock with the locking component 6. The locking component 6 fixes the docking block 4, thereby fixing the equipment, preventing it from moving, avoiding affecting work efficiency, and reducing collisions between components. During the operation of the chromatograph 3, the amplification component 8 accelerates the heat dissipation efficiency inside the equipment, thereby controlling the internal temperature of the equipment, optimizing the operating environment of the equipment, helping to improve the operating efficiency of the equipment, avoiding damage caused by excessive internal temperature, and thus extending the service life of the equipment.
[0033] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.
Claims
1. A rapid purity detection and analysis device for benzoyl chloride production, characterized in that, Includes a housing (1), with a slide rail (2) fixedly connected to the bottom of the inner wall of the housing (1), the outer side of the slide rail (2) being slidably connected to the bottom of the chromatograph (3), a docking block (4) fixedly connected to one side of the outside of the chromatograph (3), a locking component (6) being snapped onto the side of the docking block (4) away from the chromatograph (3), the outer side of the locking component (6) being fixedly connected to the outer side of the housing (1), a support component (5) fixedly connected to the bottom of the housing (1), and a slide groove (7) being opened on one side of the outside of the housing (1), with an amplification component (8) inserted into the inner side of the slide groove (7). The support assembly (5) includes a support column (51), the top of which is fixedly connected to the bottom of the housing (1), a support shell (52) is slidably connected to the outside of the support column (51), and a first spring (53) is fixedly connected to the bottom of the support column (51). The side of the first spring (53) away from the support column (51) is fixedly connected to the bottom of the inner wall of the support shell (52).
2. The rapid purity detection and analysis device for benzoyl chloride production according to claim 1, characterized in that: An external block (56) is fixedly connected to the side of the support column (51) near the support housing (52). A housing groove (55) is provided on the inner side of the support housing (52). The outer side of the external block (56) is slidably connected to the inner side of the housing groove (55). A support pad (54) is fixedly connected to the bottom of the support housing (52).
3. The rapid purity detection and analysis device for benzoyl chloride production according to claim 1, characterized in that: The locking assembly (6) includes a locking housing (61), a receiving end (64) is fixedly connected to the outside of the locking housing (61), a hydraulic rod (63) is fixedly connected to the outside of the receiving end (64), and a guide assembly (65) is fixedly connected to one side of the outside of the locking housing (61).
4. The rapid purity detection and analysis device for benzoyl chloride production according to claim 3, characterized in that: The guide assembly (65) includes a guide plate (651), a guide rod (652) is fixedly connected to the side of the guide plate (651) away from the locking housing (61), a guide housing (653) is slidably connected to the outside of the guide rod (652), a second spring (654) is fixedly connected to one side of the inner wall of the guide housing (653), and the outside of the second spring (654) is fixedly connected to the outside of the guide rod (652).
5. The rapid purity detection and analysis device for benzoyl chloride production according to claim 1, characterized in that: The amplification component (8) includes an amplification housing (81), an air inlet housing (82) is fixedly connected to one side of the amplification housing (81), a first fan (83) is fixedly connected to the side of the air inlet housing (82) away from the amplification housing (81), a filter assembly (85) is inserted and connected to the side of the air inlet housing (82), and a grid plate (84) is fixedly connected to the side of the inner wall of the air inlet housing (82) near the chromatograph (3).
6. The rapid purity detection and analysis device for benzoyl chloride production according to claim 5, characterized in that: An air outlet housing (86) is fixedly connected to the side of the amplification housing (81) away from the air inlet housing (82). A second fan (87) is fixedly connected to the side of the air outlet housing (86). A grille cover (88) is fixedly connected to the side of the air outlet housing (86) close to the second fan (87). A friction assembly (89) is fixedly connected to the outside of the grille cover (88).
7. The rapid purity detection and analysis device for benzoyl chloride production according to claim 5, characterized in that: The filter assembly (85) includes a filter housing (851), a fixing frame (853) is fixedly connected to the inner side of the filter housing (851), a cylindrical housing (854) is sleeved on the outer side of the fixing frame (853), a filter plate (855) is inserted and connected to the outer side of the cylindrical housing (854), a magnetic block (856) is magnetically connected to the outer side of the fixing frame (853), and a handle (852) is fixedly connected to one side of the filter housing (851).
8. The rapid purity detection and analysis device for benzoyl chloride production according to claim 6, characterized in that: The friction assembly (89) includes a fixed end (891), a connecting shaft (892) is rotatably connected to the inner side of the fixed end (891), a paddle (893) is fixedly connected to the outer side of the connecting shaft (892) away from the fixed end (891), and a grinding wheel assembly (894) is fixedly connected to the outer side of the connecting shaft (892).
9. The rapid purity detection and analysis device for benzoyl chloride production according to claim 8, characterized in that: The grinding tool assembly (894) includes a grinding tool housing (8941), a grinding tool bracket (8942) is fixedly connected to the outside of the grinding tool housing (8941), a grinding tool plate (8943) is fixedly connected to one side of the outside of the grinding tool bracket (8942), a connecting block (8945) is fixedly connected to the outside of the grinding tool plate (8943) away from the grinding tool bracket (8942), a rubber block (8944) is fixedly connected to one side of the outside of the connecting block (8945), and a block surface groove (8946) is formed on the outside of the rubber block (8944) away from the connecting block (8945).