A harmless diseased animal carcass processing monitoring system and method
By analyzing the physical characteristics and alkali hydrolysis reaction parameters of the dead animals' bodies, the energy efficiency of treatment is evaluated and early warning, the problems of insufficient consideration of physical characteristics and insufficient matching of reaction substances in the prior art are solved, the treatment effect and safety are improved, and environmental pollution is prevented.
Patent Information
- Application Number
- CN202510200710.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-24
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2045-02-24
AI Technical Summary
The prior art lacks careful consideration of animal physical characteristics in the treatment of dead animals' carcasses, the alkaline hydrolysis reaction substances are insufficient, and the real-time environmental monitoring and feedback mechanisms are lacking, resulting in poor treatment effects and environmental pollution risks.
By obtaining the physical characteristics data of the dead animals' carcasses and alkali hydrolysis reaction parameter control data, the analysis model is introduced to conduct a comprehensive analysis of the reaction state and generation state, the energy efficiency of the treatment is evaluated, and the reaction incomplete warning is made.
It improves the treatment effect and safety of the carcasses of dead animals, prevents environmental pollution caused by incomplete treatment, and achieves more efficient and safe resource utilization.
Smart Images

Figure CN119680998B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of animal carcass processing monitoring technology, and in particular to a harmless diseased animal carcass processing monitoring system and method. Background Technology
[0002] In animal husbandry and breeding, the disposal of dead animal carcasses has always been an important issue that needs to be resolved. If these carcasses are not properly handled, they will not only pollute the environment, but may also become the source of disease transmission. Traditional treatment methods, such as landfill and incineration, can reduce the spread of pathogens to a certain extent, but are often accompanied by environmental pollution, waste of resources and high energy consumption.
[0003] In recent years, with the advancement of science and technology and the improvement of environmental awareness, alkaline hydrolysis technology has gradually become a research hotspot in the field of dead animal carcasses. Alkaline hydrolysis is a process that uses a strong alkaline solution to decompose organic matter under high temperature and high pressure conditions. It can convert organic matter such as protein and fat in dead animal carcasses into small molecules, such as amino acids and fatty acids, which can be further used as fertilizers or raw materials for bioenergy. In the field of harmless dead animal carcass treatment, although the existing technology has made certain progress, there are still many limitations and factors that have not been fully considered, which to a certain extent restrict the treatment effect and the efficiency of resource utilization.
[0004] First, existing technologies often lack careful consideration of the physical characteristics of animals. Physical characteristics of animals, such as body shape, hair condition, and fat content, directly affect the effect of alkaline hydrolysis. For example, large animals and small animals have significant differences in reaction time and temperature requirements, but existing technologies often use unified processing standards and do not provide personalized treatment for these differences, resulting in unsatisfactory processing results, thereby limiting processing efficiency and the possibility of resource utilization.
[0005] Secondly, the existing technology is also insufficient in matching the materials of the alkaline hydrolysis reaction. The concentration of the alkali and the pH value of the reaction medium have an important impact on the reaction rate, product quality and resource utilization efficiency. However, the existing technology often simply adopts one or several fixed alkali types and alkali concentrations without flexibly adjusting according to the specific treatment objects and needs. This lack of flexibility and matching treatment method may not only lead to poor reaction results, but also produce harmful by-products and affect the environment.
[0006] In addition, during the alkali hydrolysis reaction process, changes in reaction conditions and the formation of products will directly affect the treatment effect. However, existing technologies often lack real-time environmental monitoring and feedback mechanisms for the treatment process of dead animal carcasses, and are unable to quantitatively analyze various parameters and product formation during the reaction process. As a result, abnormal situations that may occur during the treatment process cannot be detected and addressed in a timely manner, thereby affecting the treatment effect and safety. Summary of the Invention
[0007] In order to overcome the deficiencies and drawbacks of existing technologies, the present invention provides a harmless treatment monitoring system and method for dead animal carcasses. By comprehensively analyzing the reaction state of the carcass and the formation state of alkali hydrolysis products, the treatment energy efficiency of dead animal carcasses can be evaluated; thereby improving the treatment effect and safety of animal carcass treatment, and preventing environmental pollution caused by incomplete treatment.
[0008] To achieve the above objectives, the present invention adopts the following technical solutions:
[0009] One of the objectives of the present invention is to provide a harmless treatment monitoring method for dead animal carcasses, including the following steps:
[0010] S1. Obtain the physical appearance characteristic data and alkali hydrolysis reaction parameter control data of the dead animal carcass; simultaneously obtain the alkali hydrolysis reaction product formation data;
[0011] S2. Import the physical appearance characteristic data and alkali hydrolysis reaction parameter control data into the alkali hydrolysis reaction state analysis model to analyze the reaction state of the dead animal carcass during alkali hydrolysis;
[0012] S3. Import the alkali hydrolysis reaction parameter control data and alkali hydrolysis reaction product formation data into the alkali hydrolysis formation state analysis model to analyze the formation state of the dead animal carcass during alkali hydrolysis;
[0013] S4. Evaluate the treatment energy efficiency of the dead animal carcass during alkali hydrolysis treatment based on the analysis results of the reaction state of the dead animal carcass during alkali hydrolysis and the analysis results of the formation state of the dead animal carcass during alkali hydrolysis;
[0014] S5. Conduct an early warning for incomplete alkali hydrolysis reaction according to the treatment energy efficiency evaluation results.
[0015] In one implementation manner of the present invention, step S2 includes the following specific steps:
[0016] S21. Extract the physical appearance characteristic data and alkali hydrolysis reaction parameter control data of the dead animal carcass;
[0017] S22. Import the physical appearance characteristic data of the dead animal carcass and the alkali hydrolysis reaction parameter control data into the carcass reaction state coefficient calculation formula to calculate the carcass reaction state coefficient when the dead animal carcass undergoes alkali hydrolysis; the carcass reaction state coefficient calculation formula is as follows:
[0018] ;
[0019] In the formula, SZ represents the carcass reaction state coefficient when the dead animal carcass undergoes alkali hydrolysis, S represents the carcass surface area in the physical appearance characteristic data of the dead animal carcass, Sb represents the standard value of the carcass surface area for eliminating units, pH represents the pH value of the alkali hydrolysis solution in the alkali hydrolysis reaction parameter control data, Ea represents the reaction activation energy of the alkali hydrolysis reaction in the alkali hydrolysis reaction parameter control data, R represents the gas constant, T is the average control temperature of the alkali hydrolysis reaction in the alkali hydrolysis reaction parameter control data, C represents the concentration of the alkali hydrolysis solution after standardization in the alkali hydrolysis reaction parameter control data, V represents the volume of the alkali hydrolysis solution after standardization in the alkali hydrolysis reaction parameter control data, and Rs represents the dead animal carcass influence coefficient.
[0020] In one implementation manner of the present invention, the calculation formula of the dead animal carcass influence coefficient is as follows:
[0021] ;
[0022] In the formula, Vs, Zs, and Ss respectively represent the volume, fat content, and moisture content of the dead animal carcass in the physical appearance characteristic data; Ms represents the hair coverage area of the dead animal carcass in the physical appearance characteristic data.
[0023] In one implementation manner of the present invention, step S3 includes the following specific contents:
[0024] S31. Extract the alkali hydrolysis reaction parameter control data and the alkali hydrolysis reaction product generation data;
[0025] S32. Substitute the alkali hydrolysis reaction parameter control data and the alkali hydrolysis reaction product generation data into the alkali hydrolysis generation state coefficient calculation formula to calculate the alkali hydrolysis generation state coefficient of the dead animal carcass alkali hydrolysis; the alkali hydrolysis generation state coefficient calculation formula is as follows:
[0026] ;
[0027] In the formula, CW represents the alkali hydrolysis generation state coefficient of the dead animal carcass alkali hydrolysis, Gc represents the weight of the remaining solid in the product generated after the complete reaction of the alkali hydrolysis solution in the alkali hydrolysis reaction product generation data, G represents the original solid weight in the alkali hydrolysis reaction tank in the alkali hydrolysis reaction parameter control data, and t represents the alkali hydrolysis reaction time in the alkali hydrolysis reaction product generation data.
[0028] In an implementation manner of the present invention, step S4 includes the following specific steps:
[0029] S41. Obtain the calculated corpse reaction state coefficient and the alkali hydrolysis generation state coefficient;
[0030] S42. Substitute the corpse reaction state coefficient and the alkali hydrolysis generation state coefficient into the processing energy efficiency coefficient calculation formula to calculate the processing energy efficiency coefficient during the alkali hydrolysis treatment of the dead animal corpse; the processing energy efficiency coefficient calculation formula is:
[0031] ;
[0032] In the formula, NX represents the processing energy efficiency coefficient during the alkali hydrolysis treatment of the dead animal corpse.
[0033] In an implementation manner of the present invention, step S5 includes the following specific steps:
[0034] S51. Obtain the calculated processing energy efficiency coefficient during the alkali hydrolysis treatment of the dead animal corpse;
[0035] S52. Preset a processing energy efficiency threshold. When the processing energy efficiency coefficient during the alkali hydrolysis treatment of the dead animal corpse is less than the processing energy efficiency threshold, an incomplete alkali hydrolysis reaction warning is given.
[0036] One of the purposes of the present invention is to provide a harmless treatment monitoring system for dead animal corpses, including:
[0037] A data acquisition module, configured to acquire the physical appearance characteristic data and the alkali hydrolysis reaction parameter control data of the dead animal corpse; meanwhile, acquire the alkali hydrolysis reaction product generation data;
[0038] A corpse reaction state analysis module, configured to import the physical appearance characteristic data and the alkali hydrolysis reaction parameter control data into an alkali hydrolysis reaction state analysis model to analyze the corpse reaction state during the alkali hydrolysis of the dead animal corpse;
[0039] An alkali hydrolysis generation state analysis module, configured to import the alkali hydrolysis reaction parameter control data and the alkali hydrolysis reaction product generation data into an alkali hydrolysis generation state analysis model to analyze the generation state of the alkali hydrolysis of the dead animal corpse;
[0040] A processing energy efficiency evaluation module, configured to evaluate the processing energy efficiency during the alkali hydrolysis treatment of the dead animal corpse according to the reaction state analysis result during the alkali hydrolysis of the dead animal corpse and the generation state analysis result of the alkali hydrolysis of the dead animal corpse;
[0041] An alkali hydrolysis reaction warning module, configured to give an incomplete alkali hydrolysis reaction warning according to the processing energy efficiency evaluation result;
[0042] A control module, configured to control the operation of the data acquisition module, the corpse reaction state analysis module, the alkali hydrolysis generation state analysis module, the processing energy efficiency evaluation module, and the alkali hydrolysis reaction warning module.
[0043] One object of the present invention is to provide an electronic device, including: a processor and a memory, wherein a computer program callable by the processor is stored in the memory, and the processor executes a harmless treatment monitoring method for dead animal corpses by calling the computer program stored in the memory.
[0044] Compared with the prior art, the present invention has the following advantages and beneficial effects:
[0045] The present invention imports the physical feature data and the alkali hydrolysis reaction parameter control data into the alkali hydrolysis reaction state analysis model to analyze the corpse reaction state during the alkali hydrolysis of dead animal corpses; imports the alkali hydrolysis reaction parameter control data and the alkali hydrolysis reaction product generation data into the alkali hydrolysis generation state analysis model to analyze the generation state of the alkali hydrolysis of dead animal corpses; evaluates the processing energy efficiency during the alkali hydrolysis treatment of dead animal corpses according to the reaction state analysis result of the alkali hydrolysis of dead animal corpses and the generation state analysis result of the alkali hydrolysis of dead animal corpses; and issues a warning for incomplete alkali hydrolysis reaction according to the processing energy efficiency evaluation result. It improves the treatment effect and safety of animal corpse treatment and prevents environmental pollution caused by incomplete treatment. Description of the Drawings
[0046] By reading the detailed description of the non-restrictive embodiments with reference to the following drawings, other features, objects, and advantages of the present invention will become more obvious:
[0047] Figure 1 It is a schematic diagram of the overall process of a harmless treatment monitoring method for dead animal corpses of the present invention;
[0048] Figure 2 It is a schematic diagram of the structure of an electronic device for a harmless treatment monitoring method for dead animal corpses of the present invention;
[0049] Figure 3 It is a schematic diagram of the structure of a harmless treatment monitoring system for dead animal corpses of the present invention. Detailed Embodiments
[0050] The technical solution of the present invention will be described in detail below with reference to the drawings and specific embodiments. It should be understood that the embodiments of the present invention and the specific features in the embodiments are detailed descriptions of the technical solution of the present invention, rather than limitations on the technical solution of the present invention. Without conflict, the technical features in the embodiments of the present invention and the embodiments can be combined with each other.
[0051] Example 1
[0052] As Figure 1 shown, this embodiment provides a monitoring method for harmless treatment of dead animal carcasses, which specifically includes the following steps:
[0053] S1. Obtain the physical appearance characteristic data of the dead animal carcass and the parameter control data of the alkali hydrolysis reaction; meanwhile, obtain the data of the generation of alkali hydrolysis reaction products;
[0054] In this embodiment, obtaining the physical appearance characteristic data of the dead animal carcass includes the body surface area, volume, fat content, moisture content, and hair coverage area. These data can be obtained through direct measurement or experimental analysis. For example, the body surface area can be measured using three-dimensional scanning technology, the fat and moisture content can be determined by chemical analysis methods, and the hair coverage area can be estimated by image analysis technology. The volume, fat content, moisture content, and hair coverage area of the carcass will affect the contact area and reaction rate between the alkali hydrolysis solution and the carcass, thus directly affecting the process of the alkali hydrolysis reaction.
[0055] Meanwhile, this embodiment also needs to obtain the parameter control data of the alkali hydrolysis reaction, including the pH value of the alkali hydrolysis solution, reaction activation energy, average control temperature, solution concentration, and volume. These parameters can be obtained through experimental measurement or literature reference. For example, the pH value of the solution can be measured using a pH meter, the activation energy of the alkali hydrolysis reaction can be obtained through experiments or paper literature, the reaction temperature can be monitored using a temperature sensor, and the concentration and volume of the solution can be determined by chemical analysis.
[0056] S2. Import the physical appearance characteristic data and the parameter control data of the alkali hydrolysis reaction into the alkali hydrolysis reaction state analysis model to analyze the reaction state of the carcass during the alkali hydrolysis of the dead animal carcass;
[0057] S3. Import the parameter control data of the alkali hydrolysis reaction and the data of the generation of alkali hydrolysis reaction products into the alkali hydrolysis generation state analysis model to analyze the generation state of the alkali hydrolysis of the dead animal carcass;
[0058] S4. Evaluate the treatment energy efficiency during the alkali hydrolysis treatment of the dead animal carcass according to the analysis results of the reaction state during the alkali hydrolysis of the dead animal carcass and the analysis results of the generation state of the alkali hydrolysis of the dead animal carcass;
[0059] S5. Carry out an early warning for incomplete alkali hydrolysis reaction according to the evaluation results of the treatment energy efficiency.
[0060] In this embodiment, step S2 comprehensively considers the physical characteristics of the dead animal carcass and multiple control parameters of the alkaline hydrolysis reaction, so as to accurately predict the reaction state coefficient of the carcass in the alkaline hydrolysis reaction. In this embodiment, the physical characteristic data of the dead animal carcass reflects the physical and chemical properties of the carcass. The body surface area is an important factor affecting the rate of the alkaline hydrolysis reaction. A larger body surface area means an increase in the reaction interface, which is beneficial to improving the reaction rate. The volume and fat content directly affect the diffusion of the reactants and the reaction rate. For a carcass with a higher fat content, the rate of the alkaline hydrolysis reaction is relatively slower because fat requires more energy and time to decompose. The moisture content is also very important for the reaction because moisture can promote the alkaline hydrolysis reaction, but too high a moisture content will dilute the alkaline hydrolysis solution and reduce the reaction efficiency. The hair coverage area will affect the contact area between the alkaline hydrolysis solution and the carcass, thereby affecting the reaction rate. In this embodiment, the alkaline hydrolysis reaction parameter control data directly determines the reaction conditions and kinetic characteristics of the alkaline hydrolysis reaction. The pH value is one of the basic conditions for the alkaline hydrolysis reaction. A higher pH value can accelerate the rate of the alkaline hydrolysis reaction. The reaction activation energy is a thermodynamic index of the reaction rate, reflecting the energy barrier that the reactant molecules need to overcome to reach the activated state. A lower activation energy means that the reaction is easier to proceed. The average control temperature is another important factor affecting the reaction rate. The increase in temperature can accelerate the movement of the reaction molecules and improve the reaction rate. The concentration and volume of the alkaline hydrolysis solution directly affect the contact degree between the reactants and the alkaline hydrolysis solution. A higher concentration and volume are beneficial to improving the reaction rate.
[0061] In this embodiment, in step S2, by introducing the influence coefficient of the dead animal carcass, the physical characteristic parameters of the dead animal carcass are combined with the alkaline hydrolysis reaction parameters, so as to more comprehensively evaluate the complexity of the alkaline hydrolysis reaction and comprehensively reflect the influence of the physical and chemical properties of the carcass on the alkaline hydrolysis reaction. The specific steps are as follows:
[0062] S21. Extract the physical characteristic data of the dead animal carcass and the alkaline hydrolysis reaction parameter control data;
[0063] S22. Import the physical characteristic data of the dead animal carcass and the alkaline hydrolysis reaction parameter control data into the calculation formula of the carcass reaction state coefficient to calculate the carcass reaction state coefficient when the dead animal carcass undergoes alkaline hydrolysis; the calculation formula of the carcass reaction state coefficient is:
[0064] ;
[0065] Wherein, SZ represents the body reaction state coefficient during the alkaline hydrolysis of dead animal carcasses, S represents the body surface area in the physical appearance characteristic data of dead animal carcasses, Sb represents the standard value of the body surface area of the carcass, which is used to eliminate the unit, pH represents the pH value of the alkaline hydrolysis solution in the alkaline hydrolysis reaction parameter control data, Ea represents the reaction activation energy of the alkaline hydrolysis reaction in the alkaline hydrolysis reaction parameter control data, R represents the gas constant, T is the average control temperature of the alkaline hydrolysis reaction in the alkaline hydrolysis reaction parameter control data, C represents the concentration of the alkaline hydrolysis solution after being standardized in the alkaline hydrolysis reaction parameter control data, V represents the volume of the alkaline hydrolysis solution after being standardized in the alkaline hydrolysis reaction parameter control data, and Rs represents the influence coefficient of dead animal carcasses.
[0066] In this embodiment, the calculation formula for the influence coefficient of dead animal carcasses is:
[0067] ;
[0068] Wherein, Vs, Zs, and Ss respectively represent the volume, fat content, and moisture content of the dead animal carcass in the physical appearance characteristic data; Ms represents the hair coverage area of the dead animal carcass in the physical appearance characteristic data.
[0069] In this embodiment, step S3 can scientifically evaluate the alkaline hydrolysis generation state coefficient by extracting the alkaline hydrolysis reaction parameter control data and the alkaline hydrolysis reaction product generation data and substituting them into the alkaline hydrolysis generation state coefficient calculation formula. In this embodiment, parameters such as the remaining solid weight and the alkaline hydrolysis reaction time in the alkaline hydrolysis products in the alkaline hydrolysis reaction product generation data reflect the generation situation of the reaction products and the progress time of the reaction. The remaining solid weight in the alkaline hydrolysis products is an important indicator to measure the generation efficiency of the reaction products. A smaller remaining solid weight in the generated products means higher reaction efficiency and more complete alkaline hydrolysis reaction. The alkaline hydrolysis reaction time reflects the progress time of the reaction. A shorter reaction time means a high reaction rate and proper optimization of the reaction conditions. By combining these two parameters, the generation efficiency of the alkaline hydrolysis reaction and the progress of the reaction can be evaluated more accurately. By substituting these parameters into the alkaline hydrolysis generation state coefficient calculation formula, the alkaline hydrolysis generation state coefficient of the dead animal carcass alkaline hydrolysis can be obtained.
[0070] In this embodiment, step S3 comprehensively reflects the generation state of the alkaline hydrolysis reaction, including the generation efficiency of the reaction products and the progress time of the reaction. A higher alkaline hydrolysis generation state coefficient means that the reaction conditions are properly optimized, with high generation efficiency and short reaction time. Otherwise, the reaction conditions may need to be further adjusted to improve the reaction efficiency. It includes the following specific contents:
[0071] S31. Extract the alkaline hydrolysis reaction parameter control data and the alkaline hydrolysis reaction product generation data;
[0072] S32. Substitute the alkali hydrolysis reaction parameter control data and the alkali hydrolysis reaction product generation data into the alkali hydrolysis generation state coefficient calculation formula to calculate the alkali hydrolysis generation state coefficient of the dead animal carcass; the alkali hydrolysis generation state coefficient calculation formula is as follows:
[0073] ;
[0074] In the formula, CW represents the alkali hydrolysis generation state coefficient of the dead animal carcass alkali hydrolysis, Gc represents the remaining solid weight in the product generated after the complete reaction of the alkali hydrolysis solution in the alkali hydrolysis reaction product generation data, G represents the original solid weight in the alkali hydrolysis reaction tank in the alkali hydrolysis reaction parameter control data, and t represents the alkali hydrolysis reaction time in the alkali hydrolysis reaction product generation data.
[0075] In this embodiment, the carcass reaction state coefficient obtained in step S4 comprehensively reflects the reaction state of the dead animal carcass in the alkali hydrolysis reaction, including the reaction rate, reaction conditions, etc. A higher carcass reaction state coefficient means that the reaction conditions are properly optimized, the reaction rate is high, and the reaction proceeds more completely. The alkali hydrolysis generation state coefficient comprehensively reflects the generation state of the alkali hydrolysis reaction product, including the generation rate and the generation amount. A higher alkali hydrolysis generation state coefficient means that more reaction products are generated in the same time, and the reaction efficiency is high. In this embodiment, step S4 can provide a scientific basis for optimizing the alkali hydrolysis reaction conditions and monitoring the generation of reaction products by evaluating these two coefficients. In this embodiment, by substituting the carcass reaction state coefficient and the alkali hydrolysis generation state coefficient into the treatment energy efficiency coefficient calculation formula, the treatment energy efficiency coefficient of the dead animal carcass alkali hydrolysis treatment is obtained, which comprehensively reflects the efficiency and effect of the dead animal carcass treatment process, including various factors such as the reaction rate, the generation amount, and the reaction conditions. A higher treatment energy efficiency coefficient means that the treatment conditions are properly optimized, the treatment efficiency is high, and the treatment effect is good. On the contrary, it means that the treatment efficiency is low and the treatment conditions need to be further optimized; step S4 includes the following specific steps:
[0076] S41. Obtain the calculated carcass reaction state coefficient and alkali hydrolysis generation state coefficient;
[0077] S42. Substitute the carcass reaction state coefficient and the alkali hydrolysis generation state coefficient into the treatment energy efficiency coefficient calculation formula to calculate the treatment energy efficiency coefficient during the alkali hydrolysis treatment of the dead animal carcass; the treatment energy efficiency coefficient calculation formula is as follows:
[0078] ;
[0079] In the formula, NX represents the treatment energy efficiency coefficient during the alkali hydrolysis treatment of the dead animal carcass.
[0080] In this embodiment, step S5 includes the following specific steps:
[0081] S51. Obtain the processing energy efficiency coefficient during the alkaline hydrolysis treatment of the dead animal carcasses obtained by calculation;
[0082] S52. Preset a processing energy efficiency threshold. When the processing energy efficiency coefficient during the alkaline hydrolysis treatment of the dead animal carcasses is less than the processing energy efficiency threshold, give a warning of incomplete alkaline hydrolysis reaction. Among them, the value-taking method of the processing energy efficiency threshold is as follows: Obtain 3000 groups of physical appearance characteristic data of the dead animal carcasses and the corresponding alkaline hydrolysis reaction parameter control data; Substitute the physical appearance characteristic data of the dead animal carcasses and the alkaline hydrolysis reaction parameter control data into the processing energy efficiency coefficient calculation formula to calculate the processing energy efficiency coefficient during the alkaline hydrolysis treatment of the dead animal carcasses; Obtain 3000 groups of processing energy efficiency judgment results during the alkaline hydrolysis treatment of the dead animal carcasses, import the processing energy efficiency coefficient during the alkaline hydrolysis treatment of the dead animal carcasses and the corresponding processing energy efficiency judgment results into the fitting software, and output the value of the corresponding processing energy efficiency threshold that meets the highest processing energy efficiency judgment accuracy rate.
[0083] Embodiment 2
[0084] As Figure 3 shown, this embodiment provides a harmless treatment monitoring system for dead animal carcasses, including:
[0085] A data acquisition module, configured to acquire the physical appearance characteristic data of the dead animal carcasses and the alkaline hydrolysis reaction parameter control data; and simultaneously acquire the alkaline hydrolysis reaction product generation data;
[0086] A carcass reaction state analysis module, configured to import the physical appearance characteristic data and the alkaline hydrolysis reaction parameter control data into the alkaline hydrolysis reaction state analysis model to analyze the carcass reaction state during the alkaline hydrolysis of the dead animal carcasses;
[0087] An alkaline hydrolysis generation state analysis module, configured to import the alkaline hydrolysis reaction parameter control data and the alkaline hydrolysis reaction product generation data into the alkaline hydrolysis generation state analysis model to analyze the generation state of the alkaline hydrolysis of the dead animal carcasses;
[0088] A processing energy efficiency evaluation module, configured to evaluate the processing energy efficiency during the alkaline hydrolysis treatment of the dead animal carcasses according to the reaction state analysis result during the alkaline hydrolysis of the dead animal carcasses and the generation state analysis result of the alkaline hydrolysis of the dead animal carcasses;
[0089] An alkaline hydrolysis reaction warning module, configured to give a warning of incomplete alkaline hydrolysis reaction according to the processing energy efficiency evaluation result;
[0090] A control module, configured to control the operation of the data acquisition module, the carcass reaction state analysis module, the alkaline hydrolysis generation state analysis module, the processing energy efficiency evaluation module, and the alkaline hydrolysis reaction warning module.
[0091] For the parameters and the steps for each unit module in the above-described harmless treatment monitoring system for dead animal carcasses of the present invention to implement corresponding functions, reference may be made to the parameters and steps in the embodiments of the harmless treatment monitoring method for dead animal carcasses in the foregoing text, which will not be elaborated herein.
[0092] Embodiment 3
[0093] As Figure 2 shown, an electronic device according to an embodiment of the present invention includes: a processor and a memory. Among them, a computer program that can be called by the processor is stored in the memory, and the processor executes a harmless treatment monitoring method for dead animal carcasses by calling the computer program stored in the memory. It should be noted that: all computer programs of the harmless treatment monitoring method for dead animal carcasses are implemented using the C language. Among them, the data acquisition module, the carcass reaction state analysis module, the alkaline hydrolysis generation state analysis module, the treatment energy efficiency evaluation module, the alkaline hydrolysis reaction warning module, and the control module are all controlled by a remote server.
[0094] In the embodiments provided in the present application, it should be understood that the disclosed device and method can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of the units is only a logical function division. In actual implementation, there may be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed mutual coupling or direct coupling or communication connection can be through some interfaces. The indirect coupling or communication connection of the device or unit can be in an electrical, mechanical or other form. The units described as separate components may or may not be physically separated. The components displayed as units may or may not be physical units, that is, they can be located in one place or distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0095] In addition, in each embodiment of the present invention, the functional units can be integrated in a processing unit, or each unit can exist physically alone, or two or more units can be integrated in one unit.
[0096] When the above-mentioned functions are implemented in the form of software functional units and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art or a part of this technical solution can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in various embodiments of the present invention. The foregoing storage medium includes: various media that can store program codes, such as USB flash drives, mobile hard disks, ROM, RAM, magnetic disks, or optical discs.
[0097] As described above, the above are only specific implementation manners of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention can easily think of changes or substitutions, which should all be covered by the protection scope of the present invention. Therefore, the protection scope of the present invention shall be subject to the protection scope of the claims.
Claims
1. A method for monitoring and handling harmless dead animal carcasses, characterized in that: The steps include: S1. Obtaining the physical characteristics data of the dead animal carcasses and the control data of the alkaline hydrolysis reaction parameters; and simultaneously obtaining the generation data of the alkaline hydrolysis reaction products; S2, importing the physical characteristics data and the alkaline hydrolysis reaction parameter control data into the alkaline hydrolysis reaction state analysis model, and analyzing the reaction state of the dead animal carcass during alkaline hydrolysis; S3, importing the alkaline hydrolysis reaction parameter control data and the alkaline hydrolysis reaction product generation data into the alkaline hydrolysis generation state analysis model to analyze the generation state of alkaline hydrolysis of the dead animal carcasses; S4. Evaluate the treatment energy efficiency of alkaline hydrolysis of dead animal carcasses based on the analysis results of the reaction state of alkaline hydrolysis of dead animal carcasses and the analysis results of the generation state of alkaline hydrolysis of dead animal carcasses; S5. Based on the treatment energy efficiency evaluation results, an early warning of incomplete alkaline hydrolysis reaction is issued; The step S2 comprises the following specific steps: S21, extracting physical characteristics data of dead animal carcasses and alkaline hydrolysis reaction parameter control data; S22, importing the physical characteristics data of the dead animal carcass and the alkaline hydrolysis reaction parameter control data into the carcass reaction state coefficient calculation formula to calculate the carcass reaction state coefficient when the dead animal carcass is subjected to alkaline hydrolysis; the carcass reaction state coefficient calculation formula is: ; Wherein, SZ represents the corpse reaction state coefficient when the dead animal corpse is subjected to alkaline hydrolysis, S represents the body surface area of the dead animal corpse in the physical characteristics data of the dead animal corpse, Sb represents the standard value of the body surface area of the dead animal corpse, which is used to eliminate the unit, pH represents the pH value of the alkaline hydrolysis solution in the alkaline hydrolysis reaction parameter control data, Ea represents the reaction activation energy of the alkaline hydrolysis reaction in the alkaline hydrolysis reaction parameter control data, R represents the gas constant, T is the average control temperature of the alkaline hydrolysis reaction in the alkaline hydrolysis reaction parameter control data, C represents the concentration of the alkaline hydrolysis solution after standardized treatment in the alkaline hydrolysis reaction parameter control data, V represents the volume of the alkaline hydrolysis solution after standardized treatment in the alkaline hydrolysis reaction parameter control data, and Rs represents the influence coefficient of the dead animal corpse; The calculation formula of the impact coefficient of dead animal carcasses is: ; Wherein, Vs, Zs, and Ss represent the volume, fat content, and water content of the dead animal in the physical characteristics data, respectively; Ms represents the hair coverage area of the dead animal in the physical characteristics data.
2. A method for monitoring and treating the harmless dead animal carcasses according to claim 1, characterized in that: The step S3 includes the following specific contents: S31, extracting alkaline hydrolysis reaction parameter control data and alkaline hydrolysis reaction product generation data; S32, substituting the alkaline hydrolysis reaction parameter control data and the alkaline hydrolysis reaction product generation data into the alkaline hydrolysis generation state coefficient calculation formula to calculate the alkaline hydrolysis generation state coefficient of the dead animal carcass; the alkaline hydrolysis generation state coefficient calculation formula is: ; Wherein, CW represents the alkaline hydrolysis generation state coefficient of alkaline hydrolysis of dead animal carcasses, Gc represents the remaining solid weight in the product generated after the alkaline hydrolysis solution is completely reacted in the alkaline hydrolysis reaction product generation data, G represents the original solid weight in the alkaline hydrolysis reaction tank in the alkaline hydrolysis reaction parameter control data, and t represents the alkaline hydrolysis reaction time in the alkaline hydrolysis reaction product generation data.
3. A method for monitoring and treating the harmless dead animal carcasses according to claim 2, characterized in that: The step S4 comprises the following specific steps: S41, obtaining the calculated corpse reaction state coefficient and alkaline hydrolysis generation state coefficient; S42. Substituting the corpse reaction state coefficient and the alkaline hydrolysis generation state coefficient into the treatment energy efficiency coefficient calculation formula to calculate the treatment energy efficiency coefficient during the alkaline hydrolysis treatment of dead animal corpses; the treatment energy efficiency coefficient calculation formula is: ; Wherein, NX represents the energy efficiency coefficient of alkaline hydrolysis treatment of dead animal carcasses.
4. A method for monitoring and handling harmless dead animal carcasses according to claim 3, characterized in that: The step S5 comprises the following specific steps: S51. Obtaining the calculated treatment energy efficiency coefficient for alkaline hydrolysis treatment of dead animal carcasses; S52. A treatment energy efficiency threshold is preset. When the treatment energy efficiency coefficient during alkaline hydrolysis treatment of dead animal carcasses is less than the treatment energy efficiency threshold, an incomplete alkaline hydrolysis reaction warning is issued.
5. A harmless diseased animal carcass disposal monitoring system, used to implement a harmless diseased animal carcass disposal monitoring method according to any one of claims 1 to 4, characterized in that: The system comprises: The data acquisition module is used to acquire the physical characteristics data of the dead animal carcasses and the control data of the alkaline hydrolysis reaction parameters; and also to acquire the generation data of the alkaline hydrolysis reaction products; A corpse reaction state analysis module is used to import the physical characteristics data and the alkaline hydrolysis reaction parameter control data into the alkaline hydrolysis reaction state analysis model to analyze the corpse reaction state of the dead animal corpse during alkaline hydrolysis; An alkaline hydrolysis generation state analysis module is used to import alkaline hydrolysis reaction parameter control data and alkaline hydrolysis reaction product generation data into an alkaline hydrolysis generation state analysis model to analyze the generation state of alkaline hydrolysis of dead animal carcasses; A treatment energy efficiency evaluation module is used to evaluate the treatment energy efficiency of alkaline hydrolysis treatment of dead animal carcasses based on the reaction state analysis results of alkaline hydrolysis of dead animal carcasses and the generation state analysis results of alkaline hydrolysis of dead animal carcasses; Alkaline hydrolysis reaction early warning module, used to issue an early warning of incomplete alkaline hydrolysis reaction based on the treatment energy efficiency evaluation results; A control module is used to control the operation of the data acquisition module, the corpse reaction status analysis module, the alkaline hydrolysis generation status analysis module, the processing energy efficiency evaluation module and the alkaline hydrolysis reaction early warning module.
6. An electronic device comprising: A processor and a memory, wherein the memory stores a computer program that can be called by the processor; characterized in that the processor executes a method for monitoring the harmless disposal of dead animal carcasses as described in any one of claims 1 to 4 by calling the computer program stored in the memory.
Citation Information
Patent Citations
Harmless disposal system and process for animals dying of illness by alkaline hydrolysis
CN108213033A
Control parameter optimization method and system in anaerobic acid-making kitchen garbage treatment
CN118879793A