Integrated harmless treatment equipment for pharmacokinetic experiment waste liquid
By designing an integrated wastewater treatment device for pharmacokinetic experiments, and adopting sealed installation components and a multi-functional integrated sterilization structure, the problems of incomplete treatment and cross-contamination of wastewater from pharmacokinetic experiments have been solved, achieving efficient and safe harmless treatment of wastewater.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SUZHOU XIHUA NEW DRUG DEV CO LTD
- Filing Date
- 2026-03-09
- Publication Date
- 2026-04-21
AI Technical Summary
Existing technologies lack dedicated, efficient, and safe integrated equipment for treating pharmacokinetic experimental waste liquids, resulting in problems such as incomplete treatment, easy cross-contamination, high costs, and long cycles.
An integrated pharmacokinetic experiment wastewater harmless treatment device was designed, which adopts sealed installation components, multi-functional integrated sterilization structure and fully automatic closed operation, including feeding, filtration, sterilization, oxidation degradation and adsorption purification modules to achieve harmless treatment of wastewater.
It achieves the harmless treatment of waste liquid from pharmacokinetic experiments, and features thorough treatment, high safety, no cross-contamination, and suitability for small-scale and multiple-time laboratory use, thus improving treatment efficiency and safety.
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Figure CN121894876A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waste liquid harmless treatment equipment, specifically to an integrated pharmacokinetic experiment waste liquid harmless treatment equipment. Background Technology
[0002] Pharmacokinetic experiments are primarily used to study the absorption, distribution, metabolism, and excretion of drugs in organisms. These experiments generate large quantities of waste liquid containing blood, serum, urine, tissue homogenates, the parent drug, and active metabolites. This waste liquid possesses both biological hazards and pharmaceutical chemical toxicity; direct discharge of such waste liquid can easily cause environmental pollution and biosafety risks.
[0003] Current methods for treating laboratory waste liquids mostly involve classified collection, temporary storage, and then entrusting third-party organizations to transport and dispose of them. This approach suffers from problems such as high disposal costs, long cycles, inability to treat waste on-site in a timely manner, and risks of leakage and contamination during transport. Some laboratories use simple sterilization or chemical disinfection, but these methods can only inactivate biological substances and cannot effectively eliminate drug residues in the waste liquid, thus failing to meet the requirements for harmless treatment.
[0004] While some integrated wastewater treatment equipment exists on the market, most are designed for general laboratory wastewater or industrial wastewater, and are not specifically designed for the characteristics of pharmacokinetic experimental wastewater, such as complex composition, high drug toxicity, significant biohazard, small volume, and intermittent generation. These equipment suffer from drawbacks such as uneven heating, incomplete sterilization, low automation, and susceptibility to cross-contamination.
[0005] Therefore, in response to the need for on-site, closed, automated, and harmless treatment of pharmacokinetic experimental waste liquids, the existing technology lacks dedicated, efficient, and safe integrated treatment equipment, which has become a major technical problem restricting the safe disposal of laboratory waste liquids.
[0006] Therefore, it is necessary to invent an integrated pharmacokinetic experiment wastewater harmless treatment device to solve the above problems. Summary of the Invention
[0007] The purpose of this invention is to provide an integrated pharmacokinetic laboratory waste liquid harmless treatment device. Through the cooperation of various built-in components, specialized process design, multi-functional integrated sterilization structure and fully automatic closed operation, it realizes integrated harmless treatment of pharmacokinetic laboratory waste liquid. It has the characteristics of thorough treatment, high safety, no cross-contamination, and suitability for small-batch and multiple-time laboratory use, so as to solve the problem of lack of dedicated, efficient and safe integrated treatment equipment in the prior art.
[0008] To achieve the above objectives, the present invention provides the following technical solution: an integrated pharmacokinetic experimental wastewater harmless treatment device, comprising: A sealed mounting assembly for supporting the entire equipment includes a protective housing, the top of which is fitted with an operating box; The feeding assembly for collecting waste liquid includes a concave receiving tray and a conical receiving port, the conical receiving port being located inside the operation box; A filtration and impurity removal module, located inside the protective box and connected to the feeding assembly, is used to filter waste liquid, including a filter tank; A high-temperature sterilization module, located inside a protective box and connected to a filtration and impurity removal module, is used to sterilize waste liquid, including a sterilization tank, the sterilization tank of which is equipped with a heating component. An oxidation degradation module, located inside a protective box and connected to a high-temperature sterilization module, is used to degrade waste liquid, including a disinfection tank, the interior of which is equipped with an ultraviolet lamp. An adsorption purification module, located inside a protective box and connected to an oxidation degradation module, is used to adsorb waste liquid. It includes an adsorption tank, the bottom of which is connected to a four-way infusion pipe, which is connected to a conical receiving port.
[0009] As a preferred embodiment of the present invention, the protective box has detachable inspection ports on all four sides that are sealed and connected to the protective box, the top of the operation box is hinged with a protective cover, the top of the operation box is equipped with an operation plate, and the inside of the operation box has a locking opening.
[0010] In a preferred embodiment of the present invention, the concave storage tray is installed on the top of the snap-fit opening, and a conical storage opening is fixedly connected to the bottom of the concave storage tray. A serpentine tube is connected to the bottom of the conical storage opening, and a rinsing tube is connected to the bottom of the conical storage opening.
[0011] As a preferred embodiment of the present invention, the bottom of the filter tank is conical and connected to an infusion pipe, and a water pump is connected in the middle of the infusion pipe. The filter tank is equipped with an upper filter plate, a middle filter plate and a lower filter plate, which are fixedly installed from top to bottom inside the filter tank.
[0012] As a preferred embodiment of the present invention, the output end of the infusion tube is connected to a transmission plate, the top of the transmission plate is connected to the sterilization tank by an inlet pipe, and a heat-absorbing plate is provided on the inner side of the transmission plate, the heat-absorbing plate being in contact with the outer wall of the sterilization tank.
[0013] In a preferred embodiment of the present invention, the bottom of the sterilization tank is connected to an infusion pipe II, which is connected to the sterilization tank. A water pump II is installed inside the infusion pipe II. A driven rotating wheel is rotatably connected to the top of the sterilization tank. A rotating rod extending into the sterilization tank is fixedly connected to the bottom of the driven rotating wheel. A stirring rod is fixedly connected to the outside of the rotating rod.
[0014] In a preferred embodiment of the present invention, the bottom of the disinfection tank is connected to an infusion tube three, which is connected to an adsorption tank. A water pump three is installed inside the infusion tube three. A transparent tank is fixedly installed on the inner wall of the disinfection tank. An installation cavity is left between the disinfection tank and the transparent tank. A sealing ring is engaged with the top of the installation cavity. An installation rod is fixedly connected to the bottom of the sealing ring. Multiple ultraviolet lamps are fixedly connected to the inner side of the installation rod.
[0015] In a preferred embodiment of the present invention, a servo motor is installed on the top of the disinfection tank, and the output end of the servo motor is fixedly connected to a drive rotating wheel via a coupling. A transmission belt connects the drive rotating wheel and the driven rotating wheel. A protective shell is provided on the outside of the servo motor and the transmission belt. A rotating rod extending into the interior of the transparent tank is fixedly connected to the bottom of the drive rotating wheel, and a scraper is fixedly connected to the outside of the rotating rod.
[0016] In a preferred embodiment of the present invention, the bottom of the adsorption tank is connected to an infusion pipe four, a water pump four is installed inside the infusion pipe four, a flow divider plate is installed inside the adsorption tank, an upper screen is provided below the flow divider plate, an adsorption packing layer is provided at the bottom of the upper screen, a lower screen is provided at the bottom of the adsorption packing layer, a water collection tank is provided at the bottom of the lower screen, the water collection tank is connected to the infusion pipe four, and the infusion pipe four is connected to a flushing pipe.
[0017] As a preferred embodiment of the present invention, it further includes a liquid storage component, which includes a liquid storage tank, an infusion tube 5 inserted inside the liquid storage tank, the infusion tube 5 communicating with a transparent tank, and a water pump 5 installed inside the infusion tube 5.
[0018] Compared with the prior art, the technical effects and advantages provided by the present invention in the above technical solution are as follows: The built-in control electrical components enable automatic liquid feeding, automatic reaction, automatic liquid transfer, and automatic discharge, thereby improving processing efficiency. Through specialized process design, multi-functional integrated sterilization structure and fully automatic closed operation, it achieves integrated harmless treatment of pharmacokinetic experimental waste liquid, which has the characteristics of thorough treatment, high safety, no cross-contamination, and suitability for small and multiple laboratory applications. By sealing the feed inlet, safety can be improved, the leakage of internal exhaust gas can be reduced, and the safety of experimental personnel can be further protected. It is easy to control and can select between high-temperature sterilization mode or chemical sterilization mode according to the type of waste liquid; The internal components are compactly arranged, occupying little space and making the device small in size, which is convenient for laboratory use. Attached Figure Description
[0019] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is an exploded structural diagram of the present invention; Figure 3 This is an exploded view of the protective box and inspection port of the present invention; Figure 4 This is a schematic diagram of the connection structure between the feeding assembly and the adsorption purification module of the present invention; Figure 5 This is a schematic diagram of the connection structure between the oxidative degradation module and the adsorption purification module of the present invention; Figure 6 This is a schematic diagram of the feeding assembly structure of the present invention; Figure 7 This is a schematic diagram of the connection structure between the filtration and impurity removal module and the high-temperature sterilization module of the present invention; Figure 8 This is a schematic diagram of the transmission board structure of the present invention; Figure 9 This is a schematic diagram of the connection structure between the high-temperature sterilization module and the oxidative degradation module of the present invention; Figure 10 This is a schematic diagram of the connection structure between the disinfection tank and the transparent tank of the present invention; Figure 11 This is a schematic diagram of the connection structure between the mounting rod and the ultraviolet lamp tube of the present invention; Figure 12 This is a schematic diagram of the connection structure between the disinfection tank and the adsorption tank of the present invention.
[0021] Explanation of reference numerals in the attached figures: 001. Sealing and mounting assembly; 002. Feeding assembly; 003. Filtration and impurity removal module; 004. High-temperature sterilization module; 005. Oxidative degradation module; 006. Adsorption and purification module; 007. Liquid storage assembly; 101. Protective box; 102. Inspection port; 103. Control box; 104. Protective cover; 105. Control panel; 106. Locking opening; 107. Support column; 201. Recessed storage tray; 202. Conical storage opening; 203. Snake-shaped tube; 204. Rinse tube; 301. Filter tank; 302. Infusion pipe 1; 303. Water pump 1; 304. Transfer plate; 305. Inlet pipe; 306. Heat absorption plate; 307. Upper filter plate; 308. Middle filter plate; 309. Lower filter plate; 401. Sterilization tank; 402. Infusion tubing II; 403. Water pump II; 404. Driven rotating wheel; 405. Rotating rod; 406. Stirring rod; 501. Disinfection tank; 502. Infusion tubing (3); 503. Water pump (3); 504. Transparent tank; 505. Mounting cavity; 506. Sealing ring; 507. Mounting rod; 508. Ultraviolet lamp; 509. Servo motor; 510. Active rotating wheel; 511. Transmission belt; 512. Rotating rod; 513. Scraper; 514. Protective shell; 601. Adsorption tank; 602. Infusion pipe four; 603. Water pump four; 604. Upper screen; 605. Adsorption packing layer; 606. Lower screen; 607. Water collection tank; 701. Storage tank; 702. Infusion pipe 5; 703. Water pump 5. Detailed Implementation
[0022] To enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0023] This invention provides, for example Figure 1-12 The integrated pharmacokinetic experiment wastewater harmless treatment equipment shown includes: a sealing and mounting assembly 001 for supporting the entire equipment, including a protective box 101, with an operation box 103 mounted on the top of the protective box 101; a feeding assembly 002 for collecting the wastewater, including a concave receiving tray 201 and a conical receiving port 202, the conical receiving port 202 being located inside the operation box 103 and the protective box 101; a filtration and impurity removal module 003, located inside the protective box 101 and communicating with the feeding assembly 002, for filtering the wastewater, including a filter tank 301; and a high-temperature sterilization module 004, located inside the protective box 101 and communicating with the operation box 103 and the operation box 103. The filtration and impurity removal module 003 is connected to sterilize the waste liquid and includes a sterilization tank 401, which has a heating component inside. The oxidation and degradation module 005 is located inside the protective box 101 and is connected to the high-temperature sterilization module 004. It is used to degrade the waste liquid and includes a disinfection tank 501, which has an ultraviolet lamp 508 inside. The adsorption and purification module 006 is located inside the protective box 101 and is connected to the oxidation and degradation module 005. It is used to adsorb the waste liquid and includes an adsorption tank 601. The bottom of the adsorption tank 601 is connected to a four-way infusion pipe 602, which is connected to a conical receiving port 202.
[0024] The protective box 101 is equipped with support feet at the bottom, allowing users to place it in an easily accessible location within the laboratory. The sealed design of the protective box 101 prevents internal waste liquid from leaking out. The waste liquid is fed into the filtration and impurity removal module 003 via the concave collection tray 201. The feeding component 002 provides a sealed collection of the waste liquid. After passing through the filtration and impurity removal module 003 to remove internal debris and prevent pipe blockage, the waste liquid undergoes high-temperature treatment by the high-temperature sterilization module 004 to kill bacteria and viruses, ensuring biosafety. The high-temperature sterilization module 004 then degrades drug molecules, eliminating their toxicity. Finally, the waste liquid is purified by the adsorption and purification module 006. The purified water can be pumped into the feeding component 002 to prevent the odor from escaping, ensuring a clean and tidy setup, preventing laboratory contamination, and ensuring no harm to laboratory personnel.
[0025] In a further optimization of the above embodiment, the four sides of the protective box 101 are detachable and have inspection ports 102 that are sealed and connected to the protective box 101. The top of the operation box 103 is hinged with a protective cover 104. An operation plate 105 is installed on the top of the operation box 103. An infrared detection device is provided on the top of the operation plate 105. A locking opening 106 is opened inside the operation box 103. The bottom of the filter tank 301, sterilization tank 401, disinfection tank 501 and adsorption tank 601 are all equipped with support columns 107 that are fixed to the bottom wall of the protective box 101.
[0026] When the user needs to pour the waste liquid into the conical collection port 202, the protective cover 104 will automatically open when it is close to the infrared detection device. This is existing technology, and the principle will not be elaborated here. It is easy to open and close automatically and can automatically seal when not in use, which can improve safety. The built-in electrical components are all connected to the PLC controller, and the PLC controller is connected to the operation board 105.
[0027] The concave storage tray 201 is installed on the top of the snap-fit opening 106, and the bottom of the concave storage tray 201 is fixedly connected to a conical storage opening 202. The bottom of the conical storage opening 202 is connected to a serpentine tube 203, and the bottom of the conical storage opening 202 is connected to a rinsing tube 204.
[0028] The concave storage tray 201 is recessed, and the conical storage opening 202 facilitates the collection of waste liquid into the bottom of the serpentine tube 203. The serpentine tube 203 is curved. After the waste liquid enters, the flushing pipe 204 will introduce some clean water to flush the waste liquid remaining in the serpentine tube 203 into the feed assembly 002. Some clean water will be retained inside the serpentine tube 203, which can block the serpentine tube 203, reduce the odor of the waste liquid inside, and further protect the safety of the experimental personnel.
[0029] As a further optimization of the present invention, the bottom of the filter tank 301 is tapered and connected to the bottom via an infusion pipe 302. A water pump 303 is connected in the middle of the infusion pipe 302. The filter tank 301 is equipped with an upper filter plate 307, a middle filter plate 308 and a lower filter plate 309 fixedly installed from top to bottom. The diameter of the filter holes inside the upper filter plate 307, the middle filter plate 308 and the lower filter plate 309 decreases sequentially.
[0030] The waste liquid is diverted by the diversion plate and filtered through the upper filter plate 307, the middle filter plate 308 and the lower filter plate 309. The upper filter plate 307, the middle filter plate 308 and the lower filter plate 309 can intercept the internal residue and prevent the internal residue from clogging the pipe.
[0031] The output end of the infusion tube 302 is connected to the transmission plate 304. The top of the transmission plate 304 is connected to the sterilization tank 401 via an inlet pipe 305. A heat-absorbing plate 306 is provided on the inner side of the transmission plate 304, and the heat-absorbing plate 306 is attached to the outer wall of the sterilization tank 401.
[0032] Then, the water pump 303 is started to input the filtered waste liquid into the transmission plate 304 through the infusion pipe 302. The inlet pipe 305 can absorb the heat in the sterilization tank 401 to preheat the waste liquid, which helps to save resources and improve efficiency.
[0033] Furthermore, the bottom of the sterilization tank 401 is connected to an infusion pipe 402, which is connected to the disinfection tank 501. A water pump 403 is installed inside the infusion pipe 402. A driven rotating wheel 404 is rotatably connected to the top of the sterilization tank 401. A rotating rod 405 extending into the sterilization tank 401 is fixedly connected to the bottom of the driven rotating wheel 404. A stirring rod 406 is fixedly connected to the outside of the rotating rod 405.
[0034] Waste liquid enters the sterilization tank 401 through the transfer plate 304 and the inlet pipe 305. The heating component can heat and sterilize the waste liquid inside the sterilization tank 401. The driven rotating wheel 404 drives the rotating rod 405 and the stirring rod 406 to rotate, which can stir the waste liquid inside, so as to facilitate uniform sterilization. The heating temperature is controllable, and the sterilization tank 401 is equipped with a temperature sensor. The PLC controller can control the heating time and heating temperature as needed, and can select the high-temperature sterilization mode or the chemical sterilization mode according to the type of waste liquid.
[0035] In the above structure, the bottom of the disinfection tank 501 is connected to an infusion tube 502, which is connected to the adsorption tank 601. A water pump 503 is installed inside the infusion tube 502. A transparent tank 504 is fixedly installed on the inner wall of the disinfection tank 501. An installation cavity 505 is left between the disinfection tank 501 and the transparent tank 504. A sealing ring 506 is engaged with the top of the installation cavity 505. An installation rod 507 is fixedly connected to the bottom of the sealing ring 506. Multiple ultraviolet lamps are fixedly connected to the inner side of the installation rod 507. The lamp tube 508 is provided. A servo motor 509 is installed on the top of the disinfection tank 501. The output end of the servo motor 509 is fixedly connected to the drive rotating wheel 510 through a coupling. A transmission belt 511 is connected between the drive rotating wheel 510 and the driven rotating wheel 404. A protective shell 514 is provided on the outside of the servo motor 509 and the transmission belt 511. A rotating rod 512 extending into the transparent tank 504 is fixedly connected to the bottom of the drive rotating wheel 510. A scraper 513 is fixedly connected to the outside of the rotating rod 512.
[0036] The above structure also includes a liquid storage component 007, which includes a liquid storage tank 701. An infusion tube 702 is inserted into the inside of the liquid storage tank 701. The infusion tube 702 is connected to a transparent tank 504. A water pump 703 is installed inside the infusion tube 702.
[0037] After sterilization, the waste liquid is pumped by water pump 403 and enters the transparent tank 504 through infusion pipe 402. Water pump 703 is then pumped to add hydrogen peroxide from storage tank 701 into the transparent tank 504 through infusion pipe 702. The internal ultraviolet lamps 508 are also activated. Since multiple ultraviolet lamps 508 are installed and the transparent tank 504 is set to a transparent state, the waste liquid can be evenly irradiated. Servo motor 509 is activated, and it drives scraper 513 to rotate via rotating rod 512. This scrapes and cleans the inner wall of the transparent tank 504, preventing impurities from adhering and obstructing ultraviolet irradiation, and ensuring thorough oxidation. The active rotating wheel 510 drives the driven rotating wheel 404 via transmission belt 511, facilitating energy conservation.
[0038] As a further optimization of the present invention, the bottom of the adsorption tank 601 is connected to an infusion pipe 602, a water pump 603 is installed inside the infusion pipe 602, a flow divider is installed inside the adsorption tank 601, an upper screen 604 is provided below the flow divider, an adsorption packing layer 605 is provided at the bottom of the upper screen 604, a lower screen 606 is provided at the bottom of the adsorption packing layer 605, a water collection tank 607 is provided at the bottom of the lower screen 606, the water collection tank 607 is connected to the infusion pipe 602, and the infusion pipe 602 is connected to the flushing pipe 204.
[0039] Start water pump 3503 so that the oxidized waste liquid enters the adsorption tank 601 through the infusion pipe 3502. The waste liquid is adsorbed by the upper screen 604, the adsorption packing layer 605 and the lower screen 606, and the trace amount of drugs, pigments, odors and organic matter inside are adsorbed. The purified water flows into the water collection tank 607 for collection. The water collection tank 607 can be connected to the external pipeline, and the pipeline is equipped with a solenoid valve. After the experimenter pours in the waste liquid, the water pump 4603 is started so that clean water enters the flushing pipe 204 through the infusion pipe 4602. The flushing pipe 204 will input a portion of clean water to flush the waste liquid remaining in the serpentine tube 203 into the feeding assembly 002. Some clean water will be retained inside the serpentine tube 203, which can block the serpentine tube 203 to facilitate water recycling. Through specialized process design, multi-functional integrated sterilization structure and fully automatic closed operation, integrated harmless treatment of pharmacokinetic experimental waste liquid is achieved. It has the advantages of thorough treatment, high safety, no cross-contamination, and suitability for laboratory scenarios.
[0040] The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. An integrated pharmacokinetic experiment wastewater harmless treatment device, characterized in that: include: A sealed mounting assembly (001) is used to support the entire equipment, including a protective box (101) on the top of which an operating box (103) is mounted. The feeding assembly (002) is used to collect waste liquid and includes a concave receiving tray (201) and a conical receiving port (202), the conical receiving port (202) being disposed inside the operation box (103); The filtration and impurity removal module (003) is located inside the protective box (101) and communicates with the feeding assembly (002) for filtering waste liquid, including a filter tank (301). A high-temperature sterilization module (004) is installed inside a protective box (101) and connected to a filtration and impurity removal module (003) for sterilizing waste liquid, including a sterilization tank (401) with a heating component installed inside the sterilization tank (401); The oxidation degradation module (005) is located inside the protective box (101) and is connected to the high temperature sterilization module (004) for degrading waste liquid. It includes a disinfection tank (501) with an ultraviolet lamp (508) installed inside the disinfection tank (501). The adsorption purification module (006) is set inside the protective box (101) and connected to the oxidation degradation module (005) for adsorbing waste liquid. It includes an adsorption tank (601), the bottom of which is connected to a four-way infusion pipe (602), which is connected to a conical receiving port (202).
2. The integrated pharmacokinetic experimental wastewater harmless treatment equipment according to claim 1, characterized in that: The protective box (101) has four detachable inspection ports (102) that are sealed and connected to the protective box (101). The top of the operation box (103) is hinged with a protective cover (104). The top of the operation box (103) is equipped with an operation plate (105). The inside of the operation box (103) is provided with a locking opening (106).
3. The integrated pharmacokinetic experimental wastewater harmless treatment equipment according to claim 1, characterized in that: The concave storage tray (201) is installed on the top of the snap-fit opening (106). The bottom of the concave storage tray (201) is fixedly connected to a conical storage opening (202). The bottom of the conical storage opening (202) is connected to a serpentine tube (203). The bottom of the conical storage opening (202) is connected to a rinsing tube (204).
4. The integrated pharmacokinetic experimental wastewater harmless treatment equipment according to claim 1, characterized in that: The bottom of the filter tank (301) is conical and connected to an infusion pipe (302). A water pump (303) is connected in the middle of the infusion pipe (302). The filter tank (301) is fixedly installed with an upper filter plate (307), a middle filter plate (308) and a lower filter plate (309) from top to bottom.
5. The integrated pharmacokinetic experimental wastewater harmless treatment equipment according to claim 4, characterized in that: The output end of the infusion tube (302) is connected to a transmission plate (304). The top of the transmission plate (304) is connected to the sterilization tank (401) via an inlet pipe (305). A heat-absorbing plate (306) is provided on the inner side of the transmission plate (304), and the heat-absorbing plate (306) is attached to the outer wall of the sterilization tank (401).
6. The integrated pharmacokinetic experimental wastewater harmless treatment equipment according to claim 1, characterized in that: The bottom of the sterilization tank (401) is connected to an infusion pipe (402), which is connected to the disinfection tank (501). A water pump (403) is installed inside the infusion pipe (402). A driven rotating wheel (404) is rotatably connected to the top of the sterilization tank (401). A rotating rod (405) extending into the sterilization tank (401) is fixedly connected to the bottom of the driven rotating wheel (404). A stirring rod (406) is fixedly connected to the outside of the rotating rod (405).
7. The integrated pharmacokinetic experimental wastewater harmless treatment equipment according to claim 1, characterized in that: The bottom of the disinfection tank (501) is connected to an infusion tube three (502), which is connected to an adsorption tank (601). A water pump three (503) is installed inside the infusion tube three (502). A transparent tank (504) is fixedly installed on the inner wall of the disinfection tank (501). An installation cavity (505) is left between the disinfection tank (501) and the transparent tank (504). A sealing ring (506) is snapped into the top of the installation cavity (505). An installation rod (507) is fixedly connected to the bottom of the sealing ring (506). Multiple ultraviolet lamps (508) are fixedly connected to the inner side of the installation rod (507).
8. The integrated pharmacokinetic experimental wastewater harmless treatment equipment according to claim 7, characterized in that: A servo motor (509) is installed on the top of the disinfection tank (501). The output end of the servo motor (509) is fixedly connected to a drive rotating wheel (510) via a coupling. A transmission belt (511) is connected between the drive rotating wheel (510) and the driven rotating wheel (404). A protective shell (514) is provided on the outside of the servo motor (509) and the transmission belt (511). A rotating rod (512) extending into the transparent tank (504) is fixedly connected to the bottom of the drive rotating wheel (510). A scraper (513) is fixedly connected to the outside of the rotating rod (512).
9. The integrated pharmacokinetic experiment wastewater harmless treatment equipment according to claim 1, characterized in that: The bottom of the adsorption tank (601) is connected to an infusion pipe four (602), and a water pump four (603) is installed inside the infusion pipe four (602). A flow divider is installed inside the adsorption tank (601), and an upper screen (604) is provided below the flow divider. An adsorption packing layer (605) is provided at the bottom of the upper screen (604), and a lower screen (606) is provided at the bottom of the adsorption packing layer (605). A water collection tank (607) is provided at the bottom of the lower screen (606). The water collection tank (607) is connected to the infusion pipe four (602), and the infusion pipe four (602) is connected to the flushing pipe (204).
10. The integrated pharmacokinetic experimental wastewater harmless treatment equipment according to claim 1, characterized in that: It also includes a liquid storage assembly (007), which includes a liquid storage tank (701), a liquid infusion tube (702) is inserted into the liquid storage tank (701), the liquid infusion tube (702) is connected to a transparent tank (504), and a water pump (703) is installed inside the liquid infusion tube (702).