Carbon flow traceability analysis device
The carbon flow tracing analysis device addresses the inflexible installation and dust accumulation issues of electric carbon tables by providing adjustable installation components and a removable protective cover, enhancing installation ease and cleanliness.
Patent Information
- Application Number
- CN202421763997.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-24
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-07-24
AI Technical Summary
The installation of the electric carbon meter cannot be adjusted according to the structure of the electric box, and the installation and disassembly of the protective cover is difficult.
A carbon flow traceability analysis device is designed, including an electric carbon meter and a protective device. The position adjustment and fixation of the electric carbon meter is achieved through the combination of sliding bracket, threaded shaft and knob, and the protective cover is protected by the connection between bolts and glass plates.
It realizes the flexible installation of the electric carbon meter to adapt to different electric box structures, simplifies the disassembly and installation process of the protective cover, and improves the operation convenience and protective effect of the equipment.
Smart Images

Figure CN223107765U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of carbon flow traceability analysis devices, in particular to a carbon flow traceability analysis device. Background Technique
[0002] Carbon flow traceability refers to tracking and analyzing the sources of carbon emissions and their flow paths, which helps to better understand and manage carbon emissions and supports the achievement of carbon neutrality goals. The "source-network-load" physical carbon meter system is jointly composed of three types of carbon meter devices: the source-side carbon meter, the network-side carbon meter, and the load-side carbon meter, realizing real-time monitoring of carbon emissions in all links of the power system. Through these carbon meter devices, information such as carbon emission situations, power flow situations, and user energy consumption situations at various places in the power system can be recorded in real time. Based on the carbon flow analysis theory, the overall carbon information of the power system is calculated to realize real-time monitoring and traceability of overall carbon emissions.
[0003] The electric carbon meter is a new type of power metering device. It not only has the functions of traditional electric energy meters but also can display and record the carbon emissions in the power energy system in real time. Through real-time and accurate carbon emission metering, it provides important data support and decision-making basis for the low-carbon transformation and carbon emission reduction of the power system.
[0004] The following disadvantages were found in the subsequent use process:
[0005] 1. The bolt installation position of the electric carbon meter is fixed and needs to be used in conjunction with a special electric box. It cannot be adjusted according to the specific structure of the electric box. Without a matching electric box, the installation and replacement of the electric carbon meter are relatively troublesome.
[0006] 2. After long-term use, dust will accumulate on the electric carbon meter, which will affect the reading and operation of the electric carbon meter. The space where the electric carbon meter is located is relatively narrow, and it is difficult to install the protective cover connected by multiple bolts.
[0007] Therefore, in view of this, research and improvement were carried out on the existing structure, and a carbon flow traceability analysis device was proposed. Content of the Utility Model
[0008] The technical problem to be solved by the utility model is that the installation of the electric carbon meter cannot be adjusted according to the structure of the electric box, and it is not convenient to install the protective cover.
[0009] To solve the above technical problems, the technical solution adopted by the present utility model is as follows: A carbon flow traceability analysis device, including an electric carbon meter and a protection device. The protection device is arranged on one side of the electric carbon meter. An installation component is arranged on the side of the electric carbon meter away from the protection device. The installation component includes a pair of first brackets slidably arranged on one side of the electric carbon meter, a pair of second brackets slidably arranged on the first brackets, a pair of threaded shafts rotatably arranged on one side of the electric carbon meter, and a knob fixedly arranged on one side of the threaded shaft. The protection device includes a protective cover rotatably arranged on one side of the electric carbon meter, a bolt one threadedly rotated on the top of the protective cover, and a glass plate fixedly arranged on the protective cover.
[0010] Preferably, a pair of sliding strips are arranged on both sides of the electric carbon meter, and a pair of sliding grooves slidably matched with the pair of sliding strips are arranged on each of the pair of first brackets.
[0011] Preferably, a T-shaped slider is arranged on one side of each of the pair of second brackets, a T-shaped groove slidably matched with the T-shaped slider is arranged on one side of each of the pair of first brackets, first bosses are arranged on both sides of the first brackets and the second brackets, and through holes one for a bolt two to threadedly rotate through are arranged on the first bosses.
[0012] Preferably, a pair of second bosses are fixedly arranged on the side of the electric carbon meter close to the threaded shaft, a third boss is arranged between the pair of second bosses, and the third boss is fixedly arranged on the side of the electric carbon meter close to the threaded shaft.
[0013] Preferably, one end of each of the pair of threaded shafts is rotatably connected to the corresponding second boss through a bearing one, and the other end is rotatably connected to the corresponding third boss through a bearing one. The pair of threaded shafts respectively rotatably penetrate through the corresponding second bosses.
[0014] Preferably, the pair of threaded shafts respectively threadedly rotate through the corresponding first brackets, and threaded grooves one for the threaded shafts to threadedly rotate through are arranged on each of the pair of first brackets.
[0015] Preferably, a through hole two is arranged on the protective cover, the glass plate is fixedly arranged in the through hole two, a pair of rotating shafts are arranged on both sides of the bottom of the electric carbon meter, and the protective cover is rotatably connected to the pair of rotating shafts through a pair of bearings two respectively.
[0016] The present utility model provides a carbon flow traceability analysis device, which can adjust the installation holes of the electric carbon meter during installation to adapt to different electric box structures, facilitating the installation of the electric carbon meter. The electric carbon meter can be protected by the protective cover, and the disassembly of the protective cover is simpler. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The following further illustrates the present utility model in conjunction with the drawings and embodiments:
[0018] Figure 1 This is the overall structural schematic diagram of the present utility model.
[0019] Figure 2 This is the partial structural schematic diagram of the present utility model.
[0020] Figure 3 This is the structural schematic diagram of the first bracket of the present utility model.
[0021] Figure 4 This is the structural schematic diagram of the second bracket of the present utility model.
[0022] In the attached drawings:
[0023] Electro-carbon meter; 2. Protection device; 2.1. Protective cover; 2.2. Bolt 1; 3. Installation component; 3.1. First bracket; 3.2. Second bracket; 3.3. Threaded shaft; 3.4. Knob; 3.5. First boss; 3.6. Third boss. Specific implementation manner
[0024] As Figures 1-4 shown, a carbon flow traceability analysis device includes an electro-carbon meter 1 and a protection device 2. The protection device 2 is arranged on one side of the electro-carbon meter 1. An installation component 3 is arranged on the side of the electro-carbon meter 1 away from the protection device 2. The installation component 3 includes a pair of first brackets 3.1 slidably arranged on one side of the electro-carbon meter 1, a pair of second brackets 3.2 slidably arranged on the first brackets 3.1, a pair of threaded shafts 3.3 rotatably arranged on one side of the electro-carbon meter 1, a knob 3.4 fixedly arranged on one side of the threaded shaft 3.3. The protection device 2 includes a protective cover 2.1 rotatably arranged on one side of the electro-carbon meter 1, a bolt 1 2.2 threadedly rotated on the top of the protective cover 2.1, and a glass plate fixedly arranged on the protective cover 2.1.
[0025] Preferably, a pair of sliding strips are arranged on both sides of the electro-carbon meter 1. A pair of sliding grooves slidably matched with the pair of sliding strips are arranged on each of the pair of first brackets 3.1. Through the sliding cooperation of the sliding strips and the sliding grooves, the first brackets 3.1 can stably slide on the electro-carbon meter 1.
[0026] Preferably, a T-shaped slider is arranged on one side of each of the pair of second brackets 3.2. A T-shaped groove slidably matched with the T-shaped slider is arranged on one side of each of the pair of first brackets 3.1. Through the sliding cooperation of the T-shaped groove and the T-shaped slider, the second brackets 3.2 can stably slide on the first brackets 3.1. First bosses 3.5 are arranged on both sides of the first brackets 3.1 and the second brackets 3.2. Through holes 1 for the threaded rotation of bolt 2 to penetrate through are arranged on the first bosses 3.5. The through holes 1 on the second brackets 3.2 need to be aligned with the installation holes in the electric box.
[0027] Preferably, a pair of second bosses are fixedly arranged on one side of the electro-carbon meter 1 close to the threaded shaft 3.3, and a third boss 3.6 is arranged between the pair of second bosses. The third boss 3.6 is fixedly arranged on one side of the electro-carbon meter 1 close to the threaded shaft 3.3.
[0028] Preferably, one end of each of the pair of threaded shafts 3.3 is rotatably connected to the corresponding second boss through a first bearing, and the other end is rotatably connected to the corresponding third boss 3.6 through a first bearing. The pair of threaded shafts 3.3 respectively rotatably penetrate through the corresponding second bosses. The pair of threaded shafts 3.3 can stably rotate on the second bosses and the first boss 3.5 through the corresponding pair of bearings.
[0029] Preferably, the pair of threaded shafts 3.3 respectively threadedly rotate through the corresponding first brackets 3.1. Threaded grooves one for the threaded shafts 3.3 to threadedly rotate through are arranged on the pair of first brackets 3.1. The rotation of the threaded shafts 3.3 will drive the corresponding first brackets 3.1 to move along the threaded shafts 3.3.
[0030] Preferably, a second through hole is arranged on the protective cover 2.1. The glass plate is fixedly arranged in the second through hole. A pair of rotating shafts are arranged at both sides of the bottom of the electro-carbon meter 1. The protective cover 2.1 is rotatably connected to the pair of rotating shafts through a pair of second bearings respectively. The protective cover 2.1 can rotate around the rotating shafts. A pair of limiting strips are arranged at both sides of the electro-carbon meter 1. The pair of limiting strips limit the rotation position of the protective cover 2.1 so that the protective cover 2.1 does not interfere with the normal operation of the electro-carbon meter 1.
[0031] Rotate the knob 3.4 located at the top of the electro-carbon meter 1. The knob 3.4 is fixedly arranged at one end of the corresponding threaded shaft 3.3, and the threaded shaft 3.3 is rotatably arranged at one side of the electro-carbon meter 1. Rotating the knob 3.4 will drive the corresponding threaded shaft 3.3 to rotate. Since the first bracket 3.1 is threadedly arranged on the threaded shaft 3.3, the first bracket 3.1 will be driven to move along the threaded shaft 3.3. Move it to a suitable position. Then rotate the knob 3.4 located at the bottom of the electro-carbon meter 1 to move its corresponding first bracket 3.1 to an appropriate position. Then move the second bracket 3.2 located at one side of the first bracket 3.1 so that the through hole on the first boss 3.5 on one side of the second bracket 3.2 is aligned with the mounting hole. Then fix the position of the second bracket 3.2 through the second bolt. Repeat the above steps to fix the positions of all four second brackets 3.2. Then threadedly rotate the pair of second bolts to the first bosses 3.5 on both sides of the first bracket 3.1, and at the same time make one end of each of the pair of second bolts abut against the second bracket 3.2, thereby fixing the position of the corresponding first bracket 3.1. Repeat the above steps to fix the position of the other first bracket 3.1, thereby fixing the position of the electro-carbon meter 1.
[0032] By utilizing the rotational connection between the protective cover 2.1 and the rotating shaft, it is convenient to rotate the protective cover 2.1. When the protective cover 2.1 contacts the stop bars on both sides of the electro-carbon meter 1, the second threaded groove at the top of the protective cover 2.1 and the third threaded groove at the top of the electro-carbon meter 1 are exactly aligned. At this time, the first bolt 2.2 is threadedly rotated and connected to both the protective cover 2.1 and the electro-carbon meter 1 simultaneously to fix the position of the protective cover 2.1.
[0033] The above embodiments are only the preferred technical solutions of the present invention and should not be regarded as limitations on the present invention. The protection scope of the present invention should be the technical solutions recorded in the claims, including the equivalent replacement solutions of the technical features in the technical solutions recorded in the claims. That is, the equivalent replacement improvements within this scope are also within the protection scope of the present invention.
Claims
1. A carbon flow traceability analysis device, comprising an electric carbon meter (1) and a protection device (2), the protection device (2) being arranged on one side of the electric carbon meter (1), characterized in that: An installation component (3) is arranged on the side of the electric carbon meter (1) away from the protection device (2), the installation component (3) including a pair of first brackets (3.1) slidably arranged on one side of the electric carbon meter (1), a pair of second brackets (3.2) slidably arranged on the first brackets (3.1), a pair of threaded shafts (3.3) rotatably arranged on one side of the electric carbon meter (1), and a knob (3.4) fixedly arranged on one side of the threaded shaft (3.3); The protection device (2) includes a protective cover (2.1) rotatably arranged on one side of the electric carbon meter (1), a first bolt (2.2) threadedly rotated on the top of the protective cover (2.1), and a glass plate fixedly arranged on the protective cover (2.1).
2. The carbon flow traceability analysis device according to claim 1, wherein: A pair of sliding strips are arranged on both sides of the electric carbon meter (1), and a pair of sliding grooves slidably cooperating with the pair of sliding strips are arranged on each of the pair of first brackets (3.1).
3. The carbon flow traceability analysis device according to claim 1, characterized in that: T-shaped sliders are arranged on one side of each of the pair of second brackets (3.2), T-shaped grooves slidably cooperating with the T-shaped sliders are arranged on one side of each of the pair of first brackets (3.1), first bosses (3.5) are arranged on both sides of the first brackets (3.1) and the second brackets (3.2), and through holes one for the second bolts to threadedly rotate through are arranged on the first bosses (3.5).
4. The carbon flow traceability analysis device according to claim 1, characterized in that: A pair of second bosses are fixedly arranged on the side of the electric carbon meter (1) close to the threaded shaft (3.3), a third boss (3.6) is arranged between the pair of second bosses, and the third boss (3.6) is fixedly arranged on the side of the electric carbon meter (1) close to the threaded shaft (3.3).
5. The carbon flow traceability analysis device according to claim 1, characterized in that: One end of each of the pair of threaded shafts (3.3) is rotatably connected to the corresponding second boss through a first bearing, and the other end is rotatably connected to the corresponding third boss (3.6) through a first bearing, and the pair of threaded shafts (3.3) respectively rotatably penetrate through the corresponding second bosses.
6. The carbon flow traceability analysis device according to claim 5, wherein: The pair of threaded shafts (3.3) respectively threadedly rotate through the corresponding first brackets (3.1), and threaded grooves one for the threaded shafts (3.3) to threadedly rotate through are arranged on each of the pair of first brackets (3.1).
7. The carbon flow traceability analysis device according to claim 6, characterized in that: A through hole two is arranged on the protective cover (2.1), the glass plate is fixedly arranged in the through hole two, a pair of rotating shafts are arranged on both sides at the bottom of the electric carbon meter (1), and the protective cover (2.1) is rotatably connected to the pair of rotating shafts through a pair of second bearings respectively.