Real-time carbon emission monitoring equipment for virtual power plant
By introducing a mechanical linkage system of unblocking push rods and sealing mechanisms into the carbon emission monitoring equipment of the virtual power plant, the detection problem caused by exhaust gas impurities clogging has been solved, ensuring the continuity of monitoring and data accuracy, and improving the adaptability and deployment flexibility of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-06
- Publication Date
- 2026-03-27
AI Technical Summary
Traditional emission monitoring equipment suffers from the inlet filter being clogged by impurities in the exhaust gas, affecting the detection effect and leading to monitoring interruption or data distortion.
A mechanical linkage system comprising a dredging push rod, a base plate assembly, and a top rod assembly was designed to automatically clean the filter assembly. Combined with a quick-release design for the sealing mechanism and the air intake pipe, the system ensures continuous and stable monitoring.
It enables automatic cleaning of the filter pore assembly, avoids monitoring interruptions and data distortion, enhances the versatility and flexibility of the equipment, and supports deployment in multiple scenarios.
Smart Images

Figure CN224052163U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to virtual power plant field, especially relate to a real -time carbon emission monitoring equipment for virtual power plant. BACKGROUND
[0002] At present, as a new type of power system organization form, power plant realizes the optimal configuration and collaborative operation of power resources by integrating distributed power sources (such as solar photovoltaic panels, wind turbines), energy storage systems (various battery packs) and controllable loads (intelligent home appliances, industrial equipment, etc.), however, in its operation process, carbon emission monitoring faces many challenges, the traditional emission monitoring equipment, mostly for the tail gas discharged by the equipment during work is monitored, but limited by the existence of a large number of impurities in the tail gas, the existence of impurities will block the air inlet filter screen, affect the normal detection effect, there is limitation.
[0003] Therefore, in view of the above scheme in actual production and implementation use's deficiency, and correct, improve, and at the same time, the spirit and concept of seeking good, and by the aid of professional knowledge, experience, and after many parties, try, the utility model is created, and a real-time carbon emission monitoring equipment for virtual power plant is provided, which is used to solve the problem of the existing traditional emission monitoring equipment, mostly for the tail gas discharged by the equipment during work is monitored, but limited by the existence of a large number of impurities in the tail gas, the existence of impurities will block the air inlet filter screen, affect the normal detection effect, there is limitation. UTILITY MODEL CONTENT
[0004] The utility model discloses a real-time carbon emission monitoring equipment for virtual power plant, solves the problem of the existing technology that the traditional emission monitoring equipment, mostly for the tail gas discharged by the equipment during work is monitored, but limited by the existence of a large number of impurities in the tail gas, the existence of impurities will block the air inlet filter screen, affect the normal detection effect, there is limitation.
[0005] The technical scheme of the utility model is realized in this way, a real-time carbon emission monitoring equipment for virtual power plant includes: a monitoring terminal, the monitoring terminal is used for monitoring whether the emission material is up to standard, the bottom end surface of the monitoring terminal is fixedly connected with an air inlet pipe;
[0006] The bottom end of the air inlet pipe is equipped with a sealing mechanism, the top end of the sealing mechanism is provided with a groove, the inside of the groove is fixedly connected with a longitudinally arranged dredging push rod, the top end of the dredging push rod is fixedly connected with a bottom plate assembly, the cross section of the bottom plate assembly is circular structure, and the top end surface of the bottom plate assembly is fixedly connected with a top rod assembly in annular array, and the top rod assembly is cylindrical structure:
[0007] As a preferred implementation form, the top end of the closing mechanism is fixedly connected with a screw sleeve assembly, an outer thread is formed on the outer circumferential surface of the screw sleeve assembly, and an inner thread matched with the screw sleeve assembly is formed on the inner wall of the air inlet pipe.
[0008] As a preferred implementation form, the top end of the closing mechanism is placed with a sealing assembly, the sealing assembly is located outside the screw sleeve assembly, the main body of the sealing assembly is annular structure, and the sealing assembly is used for sealing the gap between the closing mechanism and the air inlet pipe.
[0009] As a preferred implementation form, the bottom end of the closing mechanism is fixedly connected with a wire assembly, the wire assembly is used for connecting with an external power supply, and the wire assembly is used for electrifying the dredging push rod.
[0010] As a preferred implementation form, the outer circumferential surface of the left side of the air inlet pipe is fixedly connected with a manifold assembly, the manifold assembly is in communication with the air inlet pipe, and the side of the manifold assembly away from the air inlet pipe is fixedly connected with an air inlet flange, and the inside of the air inlet flange is annularly arranged with a connecting hole.
[0011] As a preferred implementation form, the inside of the air inlet pipe is fixedly connected with a filter plate assembly, the inside of the filter plate assembly is annularly arranged with a through hole, the through hole is a filter hole assembly, and the filter hole assembly is matched with a top rod assembly fixedly connected to the top end surface of the bottom plate assembly.
[0012] As a preferred implementation form, the front end of the monitoring terminal is fixedly connected with a control screen, and the top end surface of the monitoring terminal is fixedly connected with two installation plates in a straight line array, the inside of the installation plate is fixedly connected with two installation holes in a straight line array, the installation hole is used for connecting with a wall surface, and the bottom end surface of the monitoring terminal is fixedly connected with an exhaust pipe, and the bottom end of the exhaust pipe is fixedly connected with an exhaust flange.
[0013] After the above technical scheme is used, the beneficial effects of the utility model are as follows:
[0014] 1、In the utility model, through the mechanical linkage of the dredging push rod, the bottom plate assembly and the top rod assembly, the automatic cleaning of the filter hole assembly is realized, compared with the traditional manual disassembly and cleaning mode, the monitoring process is not interrupted, the monitoring interruption or data distortion caused by the filter screen blockage is avoided, the continuity and stability of the waste gas sampling are ensured, and the core problem that the traditional equipment is affected by the detection effect due to the impurity blockage is solved.
[0015] 2. The utility model discloses, through the quick detachable of closed mechanism and air inlet pipe through the screw sleeve subassembly, cooperate annular sealing structure of sealing assembly, when needing the depth maintenance can quickly detach the closed mechanism, carry out overall cleaning or replacement to filter plate subassembly, simultaneously, the air inlet flange support of manifold subassembly is connected with different specifications exhaust pipeline, enhances the versatility of equipment, reduces the adaptive cost caused by the specification difference of pipeline, promotes the flexibility of virtual power plant multi -scene deployment. BRIEF DESCRIPTION OF DRAWINGS
[0016] In order to more clearly illustrate the technical scheme in the embodiment of the utility model or prior art, below will to the drawing needed using in the embodiment or prior art description briefly introduce, obviously, below description's drawing only some embodiments of the utility model, for the ordinary skilled person in the art comes, under the premise of not paying the creative labor, can also obtain other drawings according to these drawings.
[0017] Figure 1 It is a left side view structural schematic diagram of the partial structure of the emission monitoring equipment of the utility model after cutting;
[0018] Figure 2 It is a right side view structural schematic diagram of the emission monitoring equipment of the utility model;
[0019] Figure 3 It is a left view structural schematic diagram of the emission monitoring equipment of the utility model;
[0020] Figure 4 It is a combined structure schematic diagram of the air inlet pipe and filter plate subassembly of the emission monitoring equipment of the utility model;
[0021] Figure 5 It is a combined structure schematic diagram of the closed subassembly and screw sleeve subassembly of the emission monitoring equipment of the utility model;
[0022] Figure 6 It is a top view structural schematic diagram of the emission monitoring equipment of the utility model;
[0023] In the drawing, 1, monitoring terminal;101, control screen;1011, mounting plate;1012, mounting hole;1013, exhaust pipe;1014, exhaust flange;2, air inlet pipe;201, manifold subassembly;2011, air inlet flange;2012, connecting hole;2013, filter plate subassembly;2014, filter hole subassembly;3, closed mechanism;301, screw sleeve subassembly;3011, sealing assembly;3012, wire assembly;3013, dredging push rod;3014, bottom plate subassembly;3015, top rod subassembly. DETAILED DESCRIPTION
[0024] Clearly, the described embodiments are merely a part of the embodiments of the present application, but not all the embodiments. Based on the embodiments of the present application, all the other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0025] As shown in Figures 1-6 A kind of real-time carbon emission monitoring equipment for virtual power plant includes: monitoring terminal 1, monitoring terminal 1 is used to monitor whether emission material is up to standard, the bottom end surface of monitoring terminal 1 is fixedly connected with air inlet pipe 2;
[0026] The bottom end of air inlet pipe 2 is equipped with closure mechanism 3, the top end of closure mechanism 3 is provided with recess, the inside of the recess is fixedly connected with the longitudinally arranged dredging push rod 3013, the top end of dredging push rod 3013 is fixedly connected with bottom plate assembly 3014, the cross section of bottom plate assembly 3014 is circular structure, and the top end surface of bottom plate assembly 3014 is fixedly connected with top rod assembly 3015 in annular array, and top rod assembly 3015 is cylindrical structure.
[0027] Wherein, the top end of closure mechanism 3 is fixedly connected with screw sleeve assembly 301, outer thread is formed on the outer circumferential surface of screw sleeve assembly 301, and the inner wall of air inlet pipe 2 is provided with inner thread matched with screw sleeve assembly 301, sealing assembly 3011 is placed on the top end of closure mechanism 3, sealing assembly 3011 is located on the outside of screw sleeve assembly 301, and the main body of sealing assembly 3011 is annular structure, and is used to seal the gap between closure mechanism 3 and air inlet pipe 2.
[0028] Wherein, the bottom end of closure mechanism 3 is fixedly connected with wire assembly 3012, wire assembly 3012 is used to be connected with external power supply, and is used to energize dredging push rod 3013, manifold assembly 201 is fixedly connected on the left side of the outer circumferential surface of air inlet pipe 2, manifold assembly 201 is through air inlet pipe 2, and air inlet flange 2011 is fixedly connected on the side of manifold assembly 201 away from air inlet pipe 2, and connection hole 2012 is formed in annular array in the inside of air inlet flange 2011.
[0029] The inside of the air inlet pipe 2 is fixedly connected with a filter plate assembly 2013, and the inside of the filter plate assembly 2013 is annularly and arrayed with through holes, which are filter hole assemblies 2014, and the filter hole assemblies 2014 are matched with a top rod assembly 3015 fixedly connected to the top end face of a bottom plate assembly 3014, the front end of the monitoring terminal 1 is fixedly connected with a control screen 101, and the top end face of the monitoring terminal 1 is fixedly connected with two installation plates 1011 in a straight line array, the inside of the installation plate 1011 is straightly and arrayed with two installation holes 1012, the installation hole 1012 is used to be connected with a wall surface, and the bottom end face of the monitoring terminal 1 is fixedly connected with an air exhaust pipe 1013, and the bottom end of the air exhaust pipe 1013 is further fixedly connected with an air exhaust flange 1014.
[0030] In use, the monitoring terminal 1 is fixed to a wall surface or a device rack through the top installation plate 1011 and the installation hole 102, to ensure the stability of the device, the air exhaust pipe 1013 is connected with the virtual power plant exhaust main pipeline through the air exhaust flange 1014 to form an exhaust gas discharge path, the manifold assembly 201 on the left side of the air inlet pipe 2 is connected with the flange of the exhaust gas branch pipe to be monitored through the air inlet flange 2011 and the connecting hole 2012, so that the exhaust gas can enter the inside of the air inlet pipe 2 through the manifold assembly 201, and the sealing assembly 3011 (annular rubber sealing ring) is pressed between the top end of the closing mechanism 3 and the bottom surface of the air inlet pipe 2 to form a tight sealing interface, to prevent external air from penetrating to affect the accuracy of the monitoring data;
[0031] When the virtual power plant is running, the exhaust gas containing carbon emission substances (such as CO2, CH4, etc.) is collected into the air inlet pipe 2 through the manifold assembly 201, and first passes through the filter plate assembly 2013, the filter hole assembly 2014 (annularly and arrayed circular through holes) on the filter plate assembly 2013 intercepts the solid impurities (such as dust, particulate matter) in the exhaust gas, and only allows gas molecules to pass through, the cleaned exhaust gas continues to flow upwards into the gas detection module (such as a non-spectroscopic infrared sensor) inside the monitoring terminal 1, the sensor detects the concentration of carbon emission substances in the exhaust gas in real time, and transmits the data to the processor of the monitoring terminal 1 for analysis and calculation, and finally displays the real-time carbon emission data (such as concentration value, emission rate, etc.) on the control screen 101;
[0032] With the monitoring continues, the filter hole assembly 2014 surface will gradually accumulate impurities, resulting in increased resistance to ventilation, when the processor detects the intake flow decreases (by built-in flow sensor) or monitoring data anomalies, trigger the dredging program: wire assembly 3012 connects the external power supply, to dredging push rod 3013 (such as electric push rod) power supply, so that it produces an upward thrust, dredging push rod 3013 push plate assembly 3014 (circular metal plate) to move up, the top plate assembly 3014 top end of the top rod assembly 3015 (a plurality of cylindrical metal rods, with filter hole assembly 2014 position one-to-one correspondence) inserted into the through hole of filter hole assembly 2014, the diameter of the top rod assembly 3015 is slightly smaller than the filter hole diameter, by mechanical pushing effect to push out the impurities blocked in the filter hole, so that it falls on the bottom plate assembly 3014, after dredging, dredging push rod 3013 power off retraction, the bottom plate assembly 3014 back to the bottom of the intake pipe 2, the impurities are closed in the recess of the closure mechanism 3, while the top rod assembly 3015 exits the filter hole, restore the filter hole unobstructed, the operator can regularly remove the closure mechanism 3, clean the impurities on the bottom plate assembly 3014, realize the tool-free maintenance;
[0033] The monitoring terminal 1 is provided with a communication module (such as an RS485 interface or a wireless transmission module), which can transmit real-time carbon emission data to a virtual power plant central management system, so that a dispatcher can monitor in real time; when the detected carbon emission concentration exceeds a preset threshold, the control screen 101 triggers an audible and light alarm, and sends a warning message to the manager through the communication module, so that the energy dispatching strategy of the virtual power plant can be adjusted in time (such as increasing renewable energy output and reducing high-carbon equipment operation).
[0034] In the description of the utility model, it is understood that the orientation or positional relationship indicated by the terms "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the utility model and simplifying the description, and does not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the utility model. In the description of the utility model, unless otherwise specified and limited, it is necessary to explain that the terms "mounting", "connection", "connection" should be understood in a broad sense, for example, it can be a mechanical connection or an electrical connection, or the communication between two elements, or direct connection, or indirect connection through an intermediate medium, and those skilled in the art can understand the specific meaning of the above terms according to the specific circumstances.
[0035] The above merely describes the preferred embodiments of the present application, and is not intended to limit the present application, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A real-time carbon emission monitoring device for a virtual power plant, comprising a monitoring terminal (1) for monitoring whether an emission substance is up to standard, characterized in that, The bottom end surface of the monitoring terminal (1) is fixedly connected with an air inlet pipe (2); The bottom end of the air inlet pipe (2) is equipped with a sealing mechanism (3), the top end of the sealing mechanism (3) is provided with a groove, the inside of the groove is fixedly connected with a longitudinal de-clogging push rod (3013), the top end of the de-clogging push rod (3013) is fixedly connected with a bottom plate assembly (3014), the cross section of the bottom plate assembly (3014) is a circular structure, and the top end surface of the bottom plate assembly (3014) is fixedly connected with a top rod assembly (3015) in an annular array, and the top rod assembly (3015) is a cylindrical structure.
2. A real-time carbon emission monitoring device for a virtual power plant according to claim 1, characterized in that, The top end of the sealing mechanism (3) is fixedly connected with a screw sleeve assembly (301), the outer circumferential surface of the screw sleeve assembly (301) is provided with external threads, and the inner wall of the air inlet pipe (2) is provided with internal threads matched with the screw sleeve assembly (301).
3. A virtual power plant real-time carbon emission monitoring device according to claim 1, characterized in that, The top end of the sealing mechanism (3) is placed with a sealing assembly (3011), the sealing assembly (3011) is located outside the screw sleeve assembly (301), and the main body of the sealing assembly (3011) is an annular structure and is used for sealing the gap between the sealing mechanism (3) and the air inlet pipe (2).
4. The virtual power plant real-time carbon emission monitoring device according to claim 1, wherein, The bottom end of the sealing mechanism (3) is fixedly connected with a wire assembly (3012), the wire assembly (3012) is used for connecting with an external power supply and is used for energizing the de-clogging push rod (3013).
5. A virtual power plant real-time carbon emission monitoring device according to claim 1, wherein, The outer circumferential surface of the left side of the air inlet pipe (2) is fixedly connected with a manifold assembly (201), the manifold assembly (201) penetrates through the air inlet pipe (2), and the side of the manifold assembly (201) away from the air inlet pipe (2) is fixedly connected with an air inlet flange (2011), and the inside of the air inlet flange (2011) is provided with connecting holes (2012) in an annular array.
6. A virtual power plant real-time carbon emission monitoring device according to claim 1, wherein, The inside of the air inlet pipe (2) is fixedly connected with a filter plate assembly (2013), the inside of the filter plate assembly (2013) is provided with through holes in an annular array, the through holes are filter hole assemblies (2014), and the filter hole assemblies (2014) are matched with the top rod assemblies (3015) fixedly connected to the top end surface of the bottom plate assembly (3014).
7. A virtual power plant real-time carbon emission monitoring device according to claim 1, wherein, The front end of the monitoring terminal (1) is fixedly connected with a control screen (101), and the top end surface of the monitoring terminal (1) is fixedly connected with two installation plates (1011) in a straight line array, the inside of the installation plate (1011) is provided with two installation holes (1012) in a straight line array, the installation hole (1012) is used for connecting with a wall surface, and the bottom end surface of the monitoring terminal (1) is fixedly connected with an exhaust pipe (1013), and the bottom end of the exhaust pipe (1013) is further fixedly connected with an exhaust flange (1014).