Green and unattended oil and gas station duty room

By using detachable photovoltaic panels, wind power components and unattended monitoring systems in the duty room of the oil and gas station, the problems of fixed structure and manual patrol are solved, and flexible energy configuration and efficient operation are achieved.

CN223293451UActive Publication Date: 2025-09-02CHINA NAT PETROLEUM CORP +1
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Patent Information

Application Number
CN202422391102.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-29
Publication Date
2025-09-02
Estimated Expiration
2034-09-29

AI Technical Summary

Technical Problem

The existing oil and gas station duty room is a fixed structure, the layout of photovoltaic panels lacks flexibility, energy output is limited, and the monitoring system relies on manual inspection, resulting in low utilization of new energy and large human resources consumption.

Method used

The use of detachable photovoltaic panels and wind power components, combined with a mobile body, allows for flexible configuration according to the on-site environment and needs, and is equipped with an unattended monitoring system, which facilitates transportation and rapid deployment through a folding design.

Benefits of technology

It improves energy output efficiency, reduces labor costs, optimizes management efficiency, and achieves efficient utilization and sustainable development of new energy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of petroleum and natural gas exploitation, in particular to a green and unattended oil and gas station duty room, and aims to solve the problems that an existing oil and gas station duty room is low in new energy utilization rate, inconvenient to transport and large in human resource consumption. The device comprises a mobile main body, a photovoltaic panel assembly and a wind power assembly, the photovoltaic panel assembly and the wind power assembly are detachably connected with the movable body. The mobile main body can be folded, stored and transported, and the mobile main body has a space for accommodating the photovoltaic panel assembly and the wind power assembly during transportation. The photovoltaic module can be flexibly configured according to different on-site environments and specific power consumption requirements, the folding design of the mobile main body not only facilitates transportation, but also provides sufficient space to accommodate the photovoltaic and wind power modules, and realizes rapid deployment. By reducing manual patrol dependence and adopting an unattended monitoring means, the scheme further reduces the labor cost, relieves the management pressure, and optimizes the overall operation efficiency.
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Description

Technical Field

[0001] The utility model relates to the technical field of oil and natural gas exploitation, in particular to a green, unmanned oil and gas station duty room. Background Art

[0002] Duty rooms at oil and gas stations are often located in remote areas, with significant distances between them. The continuous operation of on-site equipment requires a high power supply. While the recent development and application of photovoltaic and wind power technologies has increased the use of renewable energy in duty rooms at oil and gas stations, the proportion remains low, typically only around 15%, far below expectations. This necessitates irregular staff inspections, on-call duties, and equipment maintenance within the duty rooms, resulting in significant human resource consumption.

[0003] The shortcomings of existing technologies are primarily reflected in the following aspects: First, existing duty stations are typically fixed structures, and the number and layout of photovoltaic panels are also relatively fixed, lacking flexibility and unable to adjust to changing on-site conditions. Second, the energy output of photovoltaic panels is limited by factors such as sunlight and installation area, resulting in low overall energy efficiency. Existing monitoring systems rely heavily on manual inspections and lack effective unmanned monitoring methods, increasing labor costs and management difficulties.

[0004] In summary, existing oil and gas station duty stations face multiple issues: Duty stations are typically fixed structures, lacking flexibility in photovoltaic panel layout and adaptability to environmental changes; PV panel energy output is limited by sunlight and installation area, resulting in overall low efficiency; and monitoring systems rely on manual inspections and lack unmanned operation, increasing labor costs and management difficulties. These factors collectively result in low utilization of renewable energy and significant human resource depletion. Utility Model Content

[0005] The utility model provides a green, unmanned oil and gas station duty room to alleviate the problems of low new energy utilization, inconvenient transportation and high human resource consumption in existing oil and gas station duty rooms.

[0006] In order to alleviate the above technical problems, the technical solution provided by the present invention is:

[0007] The utility model provides a green, unmanned oil and gas station duty room, comprising a mobile main body, a photovoltaic panel assembly and a wind power assembly;

[0008] The photovoltaic panel components and the wind power components are respectively detachably connected to the mobile main body;

[0009] The mobile body can be folded and stored for transportation, and during transportation, the mobile body has space for accommodating photovoltaic panel components and wind power components.

[0010] Furthermore,

[0011] The movable body includes an inner frame and an outer support plate;

[0012] One side of the outer support plate is rotatably connected to the upper part of the inner frame, and the other side is fixedly connected to the lower part of the inner frame through a first diagonal brace.

[0013] Furthermore,

[0014] Photovoltaic panel assemblies include fixed photovoltaic panels and mobile photovoltaic panels;

[0015] The fixed photovoltaic panels are arranged on top of the movable main body and the outer support panels;

[0016] The mobile photovoltaic panel is arranged outside the mobile body and is electrically connected to the mobile body.

[0017] Furthermore,

[0018] The wind power component is arranged at one end of the movable body in the length direction.

[0019] Furthermore,

[0020] The outer supporting plates are arranged on both sides of the length direction of the movable main body and on one end away from the wind power component.

[0021] Furthermore,

[0022] The mobile photovoltaic panel includes a first column, a second column and a top plate;

[0023] One side of the top plate is detachably connected to the first column, and the other side is detachably connected to the second column;

[0024] The height of the first column is smaller than the height of the second column.

[0025] Furthermore,

[0026] A plurality of first columns and second columns are arranged along the length direction of the top plate;

[0027] A plurality of groups of longitudinal struts are provided between the first columns and between the second columns;

[0028] A plurality of groups of transverse support rods are arranged between the first column and the second column.

[0029] Furthermore,

[0030] A second diagonal brace is provided between the second columns.

[0031] Furthermore,

[0032] A combiner box is provided in the mobile main body.

[0033] Furthermore,

[0034] A first inverter and a second inverter are provided in the mobile body;

[0035] The first inverter is electrically connected to the fixed photovoltaic panel;

[0036] The second inverter is electrically connected to the mobile photovoltaic panel.

[0037] The beneficial effects of the green, unmanned oil and gas station duty room in this utility model are analyzed as follows:

[0038] The device includes a mobile body, a photovoltaic panel assembly and a wind power assembly; the photovoltaic panel assembly and the wind power assembly are respectively detachably connected to the mobile body; the mobile body can be folded for storage and transportation, and during transportation, the mobile body has space to accommodate the photovoltaic panel assembly and the wind power assembly.

[0039] This device utilizes detachable photovoltaic panels and wind turbine components, allowing for flexible configuration based on site conditions and specific power consumption requirements, significantly increasing energy output. The foldable design of the mobile body not only facilitates transportation but also provides ample space for the photovoltaic and wind turbine components, enabling rapid deployment. By reducing reliance on manual inspections and adopting unattended monitoring, this solution further reduces labor costs and eases management pressure, thereby optimizing overall operational efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0040] In order to more clearly illustrate the specific implementation methods of the present invention or the technical solutions in related technologies, the following briefly introduces the drawings required for use in the specific implementation methods or related technical descriptions. Obviously, the drawings described below are some implementation methods of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0041] Figure 1 This is a schematic diagram of the main structure of the green, unmanned oil and gas station duty room provided by the embodiment of the utility model;

[0042] Figure 2 A schematic diagram of the right side structure of a green, unmanned oil and gas station duty room provided by an embodiment of the utility model;

[0043] Figure 3 A schematic diagram of the overhead structure of a green, unmanned oil and gas station duty room provided by an embodiment of the utility model;

[0044] Figure 4 A schematic top-down cross-sectional view of a green, unmanned oil and gas station duty room provided by an embodiment of the present utility model;

[0045] Figure 5This is a schematic diagram of the main structure of the mobile photovoltaic panel provided by the embodiment of the utility model;

[0046] Figure 6 A schematic diagram of the rear structure of a mobile photovoltaic panel provided in an embodiment of the present utility model;

[0047] Figure 7 A schematic diagram of the right side structure of a mobile photovoltaic panel provided in an embodiment of the present utility model;

[0048] Figure 8 A schematic diagram of the top view of the mobile photovoltaic panel provided in an embodiment of the present utility model;

[0049] icon:

[0050] 100 - movable body; 110 - inner frame; 120 - outer support plate; 121 - first diagonal support;

[0051] 200 - Photovoltaic panel assembly; 210 - Fixed photovoltaic panel; 220 - Mobile photovoltaic panel; 221 - First column; 222 - Second column; 223 - Top plate; 224 - Longitudinal support rod; 225 - Transverse support rod; 226 - Second diagonal support;

[0052] 300-wind power components;

[0053] 400-combiner box;

[0054] 500-first inverter;

[0055] 600-Second inverter. DETAILED DESCRIPTION

[0056] Existing duty stations at oil and gas stations are typically fixed structures, with a fixed number and layout of photovoltaic panels, lacking flexibility and unable to adapt to changing field conditions. The energy output of photovoltaic panels is limited by factors such as sunlight and installation area, resulting in low overall energy efficiency. Existing monitoring systems rely heavily on manual inspections and lack effective unmanned monitoring methods, increasing labor costs and management difficulties. These factors collectively result in low utilization of new energy and significant human resource consumption.

[0057] In view of this, if Figures 1 to 8 As shown, this solution provides a green, unmanned oil and gas station duty room to alleviate the above problems.

[0058] The device includes a mobile body 100, a photovoltaic panel assembly 200 and a wind power assembly 300;

[0059] The photovoltaic panel assembly 200 and the wind power assembly 300 are respectively detachably connected to the mobile body 100;

[0060] The mobile body 100 can be folded, stored and transported, and during transportation, the mobile body 100 has space for accommodating the photovoltaic panel assembly 200 and the wind power assembly 300 .

[0061] In this solution, the photovoltaic panel assembly 200 and the wind power assembly 300 are both detachable structures. The mobile main body 100 is divided into areas for placing the photovoltaic panel assembly 200 and the wind power assembly 300. After disassembly, they can be transported to a designated location together with the mobile main body 100. The photovoltaic panel assembly 200 can also build a photovoltaic platform outside the mobile main body 100 to increase the power generation of new energy according to the area and power consumption requirements of the designated location.

[0062] Regarding the shape and structure of the mobile body 100, as shown in FIG. Figure 1 and Figure 2 As shown:

[0063] The mobile body 100 includes an inner frame 110 and an outer support plate 120;

[0064] One side of the outer support plate 120 is rotatably connected to the upper portion of the inner frame 110 , and the other side is fixedly connected to the lower portion of the inner frame 110 via a first diagonal support 121 .

[0065] Specifically, a rotating arm is provided on the upper part of the inner frame 110, and the two sides of the rotating arm are rotatably connected to the inner frame 110 and the outer support plate 120 through pins, so that the outer support plate 120 can be rotated and opened outward relative to the inner frame 110; after the outer support plate 120 is opened outward, the two ends of the first diagonal support 121 are fixedly connected to the inner frame 110 and the outer support plate 120 by bolts, so that the top of the inner frame 110 and the top of the opened outer support plate 120 constitute an installation platform for the photovoltaic panel.

[0066] Regarding the shape and structure of the photovoltaic panel assembly 200, as shown in FIG. Figure 1 、 Figure 2 、 Figure 3 and Figure 8 As shown:

[0067] The photovoltaic panel assembly 200 includes a fixed photovoltaic panel 210 and a mobile photovoltaic panel 220;

[0068] The fixed photovoltaic panel 210 is arranged on top of the mobile body 100 and the outer support plate 120;

[0069] The mobile photovoltaic panel 220 is disposed outside the mobile body 100 and is electrically connected to the mobile body 100 .

[0070] Specifically, when the mobile body 100 is folded for storage and transportation, the first diagonal support 121 will be removed, so that the outer support plate 120 is rotated toward the side close to the inner frame 110, and the outer support plate 120 and the lower part of the inner frame 110 are fixedly connected by bolts to complete the folding and storage. The fixed photovoltaic panel 210 is always installed on the top of the inner frame 110 and the top of the opened outer support plate 120, and can be transported without disassembly, so as to reduce the workload of the staff and improve the installation efficiency in the field.

[0071] In this solution, in order to maximize the area of ​​the fixed photovoltaic panel 210 and reduce the impact of the wind power component 300 on the area of ​​the fixed photovoltaic panel 210, the wind power component 300 is disposed at one end of the length direction of the mobile body 100;

[0072] The outer support plates 120 are disposed on both sides of the mobile body 100 in the length direction and at one end away from the wind power assembly 300 .

[0073] Regarding the shape and structure of the mobile photovoltaic panel 220, as shown in FIG. Figures 4 to 8 As shown:

[0074] The mobile photovoltaic panel 220 includes a first column 221, a second column 222 and a top plate 223;

[0075] One side of the top plate 223 is detachably connected to the first column 221 , and the other side is detachably connected to the second column 222 ;

[0076] The height of the first pillar 221 is smaller than the height of the second pillar 222 .

[0077] Specifically, after the mobile main body 100 is fixedly installed, the mobile photovoltaic panel 220 is installed according to the size of the site area and the direction of sunlight, wherein the photovoltaic panel is arranged on the upper part of the top plate 223. During installation, the first column 221 is arranged on the side close to the sun relative to the second column 222, so that the top plate 223 is tilted toward the sun, thereby maximizing the operating efficiency of the mobile photovoltaic panel 220; more preferably, the tops of the first column 221 and the second column 222 can be set to be inclined surfaces at the same angle, so that the lower part of the top plate 223 cooperates with the inclined surface for firm installation to avoid the impact of the outdoor environment (such as strong wind) on the mobile photovoltaic panel 220.

[0078] In this solution, in order to prevent the mobile photovoltaic panel 220 from being affected by abnormal weather conditions such as strong winds, a plurality of first columns 221 and second columns 222 are provided along the length direction of the top plate 223;

[0079] Multiple groups of longitudinal struts 224 are provided between the first columns 221 and between the second columns 222;

[0080] Multiple groups of transverse support rods 225 are provided between the first column 221 and the second column 222;

[0081] Since the second columns are relatively high in size, in order to improve their structural strength, second diagonal braces 226 are provided between the second columns 222 . The second diagonal braces 226 and the second columns 222 form a hinge reinforcement structure to improve stability.

[0082] In addition, Figure 8 As shown, multiple groups of longitudinal struts 224 and transverse struts 225 are alternately connected, and a large number of photovoltaic panels can also be connected into a mesh-like overall structure; more preferably, a reinforcing plate can also be provided, which passes through the first column 221 or the second column 222 through a ground anchor and is fixedly connected to the reinforcing plate and then inserted into the ground.

[0083] In this solution, a combiner box 400 is provided in the mobile body 100, which can collect data (such as power consumption, monitoring data, etc.) in the mobile body 100 and upload the relevant data to the remote control center through network communication to achieve unattended operation.

[0084] In this solution, a first inverter 500 and a second inverter 600 are provided in the mobile body 100;

[0085] The first inverter 500 is electrically connected to the fixed photovoltaic panel 210;

[0086] The second inverter 600 is electrically connected to the mobile photovoltaic panel 220 .

[0087] Specifically, the first inverter 500 and the second inverter 600 respectively integrate the electric energy converted by the fixed photovoltaic panel and the mobile photovoltaic panel 220 into AC power and output it to the electrical appliances in the mobile body 100 for use, such as Figure 4 As shown, the interior of the mobile body 100 has been planned with areas for placing various components.

[0088] This solution has at least the following beneficial effects:

[0089] Compared with existing technologies, this solution effectively solves the shortcomings of traditional oil and gas station duty rooms in terms of flexibility and energy utilization efficiency through the innovative design of green, unmanned oil and gas station duty rooms. This device uses detachable photovoltaic panels and wind power components, allowing for flexible configuration according to different site environments and specific power consumption requirements, significantly improving energy output. The folding design of the mobile body is not only easy to transport, but also provides ample space to accommodate photovoltaic and wind power components, enabling rapid deployment. By reducing reliance on manual inspections and adopting unmanned monitoring methods, this solution further reduces labor costs and alleviates management pressure, thereby optimizing overall operational efficiency, promoting the sustainable development and application of new energy, and providing an efficient and green solution for the modern oil and gas industry.

[0090] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the above embodiments, or replace some or all of the technical features therein with equivalents. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the scope of the technical solutions of the various embodiments of the present invention.

Claims

1. A green, unmanned oil and gas station duty room, characterized by: It comprises a movable main body (100), a photovoltaic panel assembly (200) and a wind power assembly (300); The photovoltaic panel assembly (200) and the wind power assembly (300) are respectively detachably connected to the movable body (100); The mobile body (100) can be folded, stored, and transported, and during transportation, the mobile body (100) has space for accommodating the photovoltaic panel assembly (200) and the wind power assembly (300); The movable body (100) includes an inner frame (110) and an outer support plate (120); One side of the outer support plate (120) is rotatably connected to the upper portion of the inner frame (110), and the other side is fixedly connected to the lower portion of the inner frame (110) via a first diagonal support (121); The photovoltaic panel assembly (200) includes a fixed photovoltaic panel (210) and a movable photovoltaic panel (220); The fixed photovoltaic panel (210) is arranged on top of the movable main body (100) and the outer support plate (120); The mobile photovoltaic panel (220) is arranged outside the mobile body (100) and is electrically connected to the mobile body (100).

2. The green, unmanned oil and gas station duty room according to claim 1 is characterized by: The wind power component (300) is arranged at one end of the movable body (100) in the length direction.

3. The green, unmanned oil and gas station duty room according to claim 2 is characterized by: The outer support plates (120) are arranged on both sides of the movable body (100) in the length direction and at one end away from the wind power component (300).

4. The green, unmanned oil and gas station duty room according to claim 3 is characterized by: The mobile photovoltaic panel (220) includes a first column (221), a second column (222) and a top plate (223); One side of the top plate (223) is detachably connected to the first column (221), and the other side is detachably connected to the second column (222); The height of the first column (221) is smaller than the height of the second column (222).

5. The green, unmanned oil and gas station duty room according to claim 4 is characterized by: A plurality of the first columns (221) and the second columns (222) are arranged along the length direction of the top plate (223); A plurality of groups of longitudinal struts (224) are provided between the first columns (221) and between the second columns (222); A plurality of groups of transverse support rods (225) are provided between the first column (221) and the second column (222).

6. The green, unmanned oil and gas station duty room according to claim 5 is characterized by: A second diagonal brace (226) is provided between the second upright columns (222).

7. The green, unmanned oil and gas station duty room according to claim 6 is characterized by: A combiner box (400) is provided in the movable main body (100).

8. The green, unmanned oil and gas station duty room according to claim 7 is characterized by: A first inverter (500) and a second inverter (600) are provided in the mobile body (100); The first inverter (500) is electrically connected to the fixed photovoltaic panel (210); The second inverter (600) is electrically connected to the mobile photovoltaic panel (220).