A natural gas spiral magnetization pipeline
By spiraling the installation of magnetic materials and long strips of iron sheets on the surface of natural gas pipelines to form a superimposed magnetic field, the problem of insufficient combustion efficiency in the prior art is solved, and more efficient combustion and flow performance is achieved.
Patent Information
- Application Number
- CN202510242535.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2045-03-03
AI Technical Summary
The existing natural gas magnetization devices have shortcomings in improving the combustion efficiency of natural gas and need further improvements to improve the combustion efficiency.
The natural gas spiral magnetized pipeline is used to spiral the installation of magnetic materials and long strips of iron sheets on the surface of the pipeline to form a superimposed magnetic field, change the arrangement of natural gas molecules, reduce the friction between molecules, and improve flow performance.
It has achieved more complete natural gas combustion, improved combustion efficiency, reduced energy consumption, and has the characteristics of long life, less investment and high return.
Smart Images

Figure CN119712971B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of natural gas catalysis, and specifically relates to a natural gas spiral magnetization pipeline. Background Art
[0002] The working principle of a natural gas spiral magnetization pipeline is to use the action of a magnetic field to change the arrangement of natural gas molecules, making them more orderly, thereby reducing the friction between molecules and improving the flow performance of natural gas. Specifically, a natural gas spiral magnetization pipeline installs a set of strong magnetic field devices on the pipeline surface, causing the natural gas molecules to be magnetized under the action of the magnetic field, thus changing their flow performance. Under the action of the magnetic field, the molecules in natural gas will be affected by force, causing the magnetic moments of the molecules to be arranged in a direction. This arrangement can change the collision mode of molecules, enabling more molecules to participate in the combustion reaction. The magnetic field also affects the rotation mode of molecules, making the rotation of molecules more orderly. This orderly rotation can increase the collision chance between molecules and oxygen, increasing the reaction rate.
[0003] Chinese Patent (Authorization Publication No.: CN113025402A) discloses a natural gas magnetization device. By installing a circular magnetic ring formed by closing two arc-shaped magnetic rings on a natural gas pipeline, the natural gas is magnetized to make the natural gas burn more fully. Therefore, how to further improve on this technical solution and continue to increase the combustion efficiency of natural gas is a technical problem that those skilled in the art urgently need to solve. Summary of the Invention
[0004] Aiming at the deficiencies of the existing technology, the purpose of the embodiments of the present invention is to provide a natural gas spiral magnetization pipeline to solve the problems in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solutions:
[0006] A natural gas spiral magnetization pipeline includes:
[0007] A magnetization pipeline body, and both ends of the magnetization pipeline body are communicated with a natural gas pipeline through flanges;
[0008] A magnetization unit, which is spirally connected to the surface of the magnetization pipeline body and is used for magnetizing the natural gas inside the magnetization pipeline body.
[0009] As a preferred technical solution of the present invention, the magnetization unit includes a magnetic material and a long strip thin iron sheet. The magnetic materials are arranged orderly on the long strip thin iron sheet. The outer surface of the whole of the magnetic material and the long strip thin iron sheet is sleeved with a heat shrinkable tube, and the whole of the magnetic material and the long strip thin iron sheet sleeved with the heat shrinkable tube is spirally adsorbed on the outer surface of the magnetization pipeline body.
[0010] As a preferred technical solution of the present invention, the magnetic poles of adjacent magnetic materials on the long thin iron sheet are arranged in the same direction, and the S poles are all adsorbed on the long thin iron sheet.
[0011] As a preferred technical solution of the present invention, the magnetization unit further includes: a protective iron sheet, which wraps the outer surface of the spiral magnetic material and the long thin iron sheet as a whole; a clamp, which is clamped and connected to the outer surface of the protective iron sheet.
[0012] As a preferred technical solution of the present invention, a shielding material is wound around the outer surface of the spiral magnetic material and the long thin iron sheet as a whole.
[0013] As a preferred technical solution of the present invention, the outer surface of the magnetization pipe body and the clamp as a whole is wrapped with an outer cover.
[0014] As a preferred technical solution of the present invention, a distribution unit is slidably connected inside the magnetization pipe body. The distribution unit is used to distribute the natural gas inside the magnetization pipe body. The distribution unit includes: a bracket, which is fixed on the inner wall of the magnetization pipe body, and at least eight groups of sliding rods are slidably connected to the bracket; a disc, which is fixed on the inner wall of the magnetization pipe body, and at least eight groups of distribution holes are provided on the surface; a piston, which is connected to the end of the sliding rod and is slidably connected inside the distribution hole; an elastic member, which is connected between the piston and the bracket; a spherical ball, which is fixed at the end of the sliding rod away from the piston.
[0015] As a preferred technical solution of the present invention, a driving unit is rotatably connected inside the magnetization pipe body. The driving unit and the end of the distribution unit are slidably connected. The driving unit is used to drive the distribution unit to open and close periodically inside the magnetization pipe body. The driving unit includes: a support plate, which is fixed on the inner wall of the magnetization pipe body; a driving rod, which is rotatably connected to the support plate, and a fan blade is installed on the surface; an inclined rod, which is fixed at the end of the driving rod; an inclined disc, which is inclined and rotatably connected inside the magnetization pipe body. The center of the inclined disc is connected to the inclined rod through a connecting rod, and the surface of the inclined disc away from the connecting rod is slidably connected to the spherical ball.
[0016] As a preferred technical solution of the present invention, a purification unit is rotatably connected inside the magnetization pipe body. The purification unit is used to filter the natural gas inside the magnetization pipe body. The purification unit includes: a support ring, which is rotatably connected in a circular chute provided on the inner wall of the magnetization pipe body. A ring-shaped net is connected to the side of the support ring. The diameter of the ring-shaped net is smaller than the diameter of the support ring; a dust collection tray, which is connected to the end of the ring-shaped net away from the support ring, and dust collection holes are provided on the surface of the dust collection tray.
[0017] As a preferred technical solution of the present invention, a dust removal unit is connected to the surface of the driving unit, and the dust removal unit is intermittently connected to the purification unit. The dust removal unit is used to cooperate with the driving unit to achieve dust removal of the purification unit. The dust removal unit includes: a rotating frame connected to the surface of the driving rod, with a sliding frame slidably connected inside; a supporting plate fixed to the end of the sliding frame and intermittently connected to the inner wall of the annular net; a sliding ring slidably connected to the surface of the driving rod. The sliding ring is hinged to the sliding frame through a connecting rod, and the sliding ring and the rotating frame are connected by an elastic object.
[0018] The embodiments of the present invention have the following beneficial effects compared with the prior art: In the present invention, the arranged magnetic materials and long strip thin iron sheets are wound around the outer surface of the magnetization pipeline body in a spiral form to form a superimposed magnetic field. The working principle of the natural gas spiral magnetization pipeline is to use the action of the magnetic field to change the arrangement of natural gas molecules, making them more orderly, thereby reducing the friction between molecules and improving the flow performance of natural gas. The present invention has the characteristics of simple operation without the need for equipment installation during the shutdown state of the equipment; no other energy consumption, long service life, low investment, and high return rate.
[0019] Compared with the prior art in which two arc-shaped magnetic rings are closed to form a circular magnetic ring and installed on the natural gas pipeline, in the embodiments of the present invention, by winding the magnetic materials spirally on the magnetization pipeline, the contact area of the magnetic force is larger, enabling more complete combustion of natural gas. In the industrial field, the natural gas spiral magnetization pipeline can be used in combustion equipment such as furnaces and boilers to improve combustion efficiency and reduce energy consumption; in natural gas power generation, the natural gas spiral magnetization pipeline can be applied to equipment such as gas turbines to improve combustion efficiency, reduce energy loss, and improve power generation efficiency.
[0020] To more clearly illustrate the structural features and functions of the present invention, the following will combine the drawings and specific embodiments to detail the present invention. Description of the Drawings
[0021] Figure 1 It is a schematic structural diagram of the natural gas spiral magnetization device provided by the embodiment of the present invention in a state of being wrapped with protective iron sheets.
[0022] Figure 2 It is a schematic structural diagram of the magnetic materials spirally wound on the surface of the magnetization pipeline body provided by the embodiment of the present invention.
[0023] Figure 3 It is a side view of the magnetic materials placed on the long strip thin iron sheets provided by the embodiment of the present invention.
[0024] Figure 4 It is a top view of the magnetic materials placed on the long strip thin iron sheets provided by the embodiment of the present invention.
[0025] Figure 5 Schematic diagram of the natural gas spiral magnetization device provided in the embodiment of the present invention in the state of being installed with an outer cover.
[0026] Figure 6 Line graph of the gas consumption of the DN100 pipe provided in the embodiment of the present invention under the magnetization of seven groups of magnetic materials for three hours.
[0027] Figure 7 Line graph of the gas consumption of the DN65 pipe provided in the embodiment of the present invention under the magnetization of seven groups of magnetic materials for three hours.
[0028] Figure 8 Line graph of the gas consumption of the DN40 pipe provided in the embodiment of the present invention under the magnetization of seven groups of magnetic materials for three hours.
[0029] Figure 9 Schematic diagram of the structure of the drive unit provided in the embodiment of the present invention.
[0030] Figure 10 Schematic diagram of the structure of the distribution unit provided in the embodiment of the present invention.
[0031] Figure 11 Schematic diagram of the structure of the purification unit provided in the embodiment of the present invention.
[0032] Figure 12 Schematic diagram of the structure of the dust removal unit provided in the embodiment of the present invention.
[0033] Figure 13 Schematic diagram of the structure of the support plate provided in the embodiment of the present invention.
[0034] Reference numerals: 1, magnetization pipeline body; 11, outer cover; 2, magnetization unit; 21, magnetic material; 22, long strip thin iron sheet; 23, protective iron sheet; 24, clamp; 3, distribution unit; 31, bracket; 32, slide bar; 33, disc; 34, distribution hole; 35, piston; 36, elastic member; 37, spherical ball; 4, drive unit; 41, support plate; 42, drive rod; 421, fan blade; 43, inclined rod; 44, connecting rod; 45, swash plate; 5, purification unit; 51, dust collection tray; 52, annular net; 53, dust collection hole; 54, support ring; 6, dust removal unit; 61, rotating frame; 62, sliding frame; 63, support plate; 64, sliding ring; 65, connecting rod. Detailed implementation manners
[0035] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0036] The following describes the specific implementation of the present invention in detail in conjunction with specific embodiments.
[0037] Embodiment 1: Refer to Figures 1 to 8 , a natural gas spiral magnetization pipeline, comprising:
[0038] A magnetization pipeline body 1, both ends of the magnetization pipeline body 1 are connected to a natural gas pipeline through flanges;
[0039] A magnetization unit 2, spirally connected to the surface of the magnetization pipeline body 1, for magnetizing the natural gas inside the magnetization pipeline body 1.
[0040] In an embodiment of the present invention, the arranged magnetic materials 21 and long strip thin iron sheets 22 are wound around the outer surface of the magnetization pipeline body 1 in a spiral form to form a superimposed magnetic field. The working principle of the natural gas spiral magnetization pipeline is to use the action of the magnetic field to change the arrangement of natural gas molecules, making them more orderly, thereby reducing the friction between molecules and improving the flow performance of natural gas. The present invention has the characteristics of simple operation without the need to install equipment during the shutdown state of the equipment; no other energy consumption, long service life, low investment, high return rate, etc.; the spiral installation makes the contact area of the magnetic force larger, making the combustion of natural gas more complete.
[0041] In an embodiment of the present invention, as Figure 1 , Figure 2 and Figure 5 shown, the magnetization unit 2 includes magnetic materials 21 and long strip thin iron sheets 22. The magnetic materials 21 are arranged orderly on the long strip thin iron sheets 22. The outer surface of the whole of the magnetic materials 21 and the long strip thin iron sheets 22 is sleeved with a heat shrinkable tube, and the whole of the magnetic materials 21 and the long strip thin iron sheets 22 sleeved with the heat shrinkable tube are spirally adsorbed on the outer surface of the magnetization pipeline body 1. And the magnetic poles of adjacent magnetic materials 21 on the long strip thin iron sheets 22 are arranged in the same direction, and all are the S poles adsorbed on the long strip thin iron sheets 22. The magnetization unit 2 further includes: a protective iron sheet 23, wrapped on the outer surface of the whole of the spiral magnetic materials 21 and the long strip thin iron sheets 22; a clamp 24, clamped and connected to the outer surface of the protective iron sheet 23.
[0042] In this embodiment, the action of the magnetic field can increase the excitation energy level of the molecules in natural gas, making the molecules more likely to undergo energy level transitions and generating more excited state molecules. These excited state molecules are more likely to react under collision impacts, enhancing the combustion process.
[0043] The following experiment is to verify the influence on the natural gas energy saving rate before and after installing the natural gas spiral magnetization pipeline.
[0044] Experimental steps:
[0045] 1. Arrange the customized magnetic materials 21 orderly on the long thin iron sheet 22 to form a basic structure;
[0046] 2. Set the heat shrinkable tube on the surface of the whole magnetic material 21 and long thin iron sheet 22, and use a hot air gun to wrap the heat shrinkable tube on the surface of the long thin iron sheet 22;
[0047] 3. Wind the arranged magnetic materials 21 and long thin iron sheet 22 around the outer surface of the magnetization pipeline body 1 in a spiral form (the surface of the magnetization pipeline body 1 needs to be treated before winding to ensure the surface is smooth and without attachments) to form a superposed magnetic field;
[0048] 4. Use shielding material to demarcate a "leak-free area" to isolate important equipment from non-safe areas and prevent external leakage from interfering with the normal operation of the equipment. The shielding material is aluminum foil tape, and the aluminum foil tape is installed on the outer surface of the whole magnetic material 21 and long thin iron sheet 22;
[0049] 5. Set the protective iron sheet 23 on the outer surface of the aluminum foil tape, and use the clamp 24 to fix the outer surface of the protective iron sheet 23;
[0050] 6. Use the outer cover 11 to package the outer surfaces of the magnetization pipeline body 1 and the clamp 24. At the same time, the outer cover 11 also plays a shielding role.
[0051] Application effect: Taking the combustion furnace of a certain automobile factory as an example, compare the gas consumption before and after installing the equipment. After the installation of this equipment, it needs to be static for 15 - 30 days to achieve the purpose of energy saving after the pipeline assimilation. The energy saving rate calculation formula is:
[0052] ×100%
[0053]
[0054] The average single consumption per vehicle before installation is 0.5849m 3 .
[0055]
[0056] The average single consumption per vehicle after installation is 0.5150m 3 .
[0057] According to the formula, the calculated energy saving rate is:
[0058] ×100% = 12%
[0059] In the industrial field, the natural gas spiral magnetized pipeline can be used in combustion equipment such as furnaces and boilers to improve combustion efficiency and reduce energy consumption; in natural gas power generation, the natural gas spiral magnetized pipeline can be applied to equipment such as gas turbines to improve combustion efficiency, reduce energy losses, and improve power generation efficiency.
[0060] Equipment advantages: 1. There is no need to optimize equipment installation when the equipment is in a shutdown state; 2. Only two employees are required to carry out the installation operation, and the operation is simple; 3. There is no need for other energy consumption, and it has the characteristics of long life, low investment, and high return rate; 4. The spiral installation makes the contact area of the magnetic force larger, making the combustion of natural gas more complete; 5. The operation is stable after installation; 6. It has a wide range of applications. It can adjust the length of the magnetic strip according to the pipe diameter for coverage, and there is no need for multiple specifications.
[0061] The following experiment is to verify the influence of the number of detected magnetic materials on the energy-saving rate under different pipe diameters. The environment, pipeline pressure, etc. of each group of materials are the same, and the only variable is the number of magnetic materials used. Each group of materials is installed on the gas pipeline in front of the burner in a spiral installation form (close to the burner), and the gas consumption for three hours from 13:00 to 16:00 every afternoon is recorded and compared.
[0062] Usage scenario: Burner in the baking oven of an automobile factory;
[0063] Experimental materials: Heat shrinkable tube, long thin iron sheet, magnetic material;
[0064] The burner used in the experiment is: Weishau G10 / 1-D;
[0065] Experiments are carried out on gas pipelines with DN100, DN65, and DN40 respectively;
[0066] The magnetic materials are divided into seven groups, and the number of each group is 55, 110, 165, 220, 275, 330, and 375 respectively.
[0067]
[0068]
[0069]
[0070]
[0071]
[0072]
[0073] Such as Figure 6 ,Figure 7 and Figure 8 As shown, in order to more clearly see the optimal material dosage, we made line charts for the above three tables. Experimental conclusion: When using 275 magnetic materials, the energy-saving effect and cost performance are better.
[0074] Example 2: As Figures 1 - 10 shown, on the basis of Example 1, the following technical solutions are added. As Figure 9 and Figure 10 shown, a distribution unit 3 is slidably connected inside the magnetization pipeline body 1. The distribution unit 3 is used to distribute the natural gas inside the magnetization pipeline body 1. The distribution unit 3 includes:
[0075] A bracket 31, fixed on the inner wall of the magnetization pipeline body 1, and at least eight groups of sliding rods 32 are slidably connected to the bracket 31;
[0076] A disc 33, fixed on the inner wall of the magnetization pipeline body 1, and at least eight groups of distribution holes 34 are provided on the surface;
[0077] A piston 35, connected to the end of the sliding rod 32, and slidably connected inside the distribution hole 34;
[0078] An elastic member 36, connected between the piston 35 and the bracket 31;
[0079] A spherical ball 37, fixed to the end of the sliding rod 32 away from the piston 35.
[0080] In this embodiment, during the process of natural gas passing through the inside of the magnetization pipeline body 1, the driving unit 4 will drive multiple groups of sliding rods 32 to reciprocate inside the bracket 31 under the action of the natural gas. Thus, the sliding rod 32 will drive the piston 35 to reciprocate inside the distribution hole 34, so that multiple groups of distribution holes 34 will be intermittently opened and closed in sequence. Therefore, the natural gas will be discharged through different distribution holes 34 in sequence, increasing the flow path of the natural gas inside the magnetization pipeline body 1, improving the magnetization effect of the magnetization unit 2 on the natural gas, and thus improving the utilization efficiency of the natural gas.
[0081] In an embodiment of the present invention, as Figure 9 shown, a driving unit 4 is rotatably connected inside the magnetization pipeline body 1. The driving unit 4 is slidably connected to the end of the distribution unit 3. The driving unit 4 is used to drive the distribution unit 3 to periodically open and close inside the magnetization pipeline body 1. The driving unit 4 includes:
[0082] A support plate 41, fixed on the inner wall of the magnetization pipeline body 1;
[0083] A driving rod 42, rotatably connected to the support plate 41, and a fan blade 421 is installed on the surface;
[0084] The diagonal rod 43 is fixed to the end of the driving rod 42;
[0085] The swash plate 45 is tilt-rotatably connected inside the magnetizing pipe body 1. The center of the swash plate 45 is connected to the diagonal rod 43 through a connecting rod 44, and the surface of the swash plate 45 away from the connecting rod 44 is slidably connected to the spherical ball 37.
[0086] In this embodiment, when natural gas passes through the inside of the magnetizing pipe body 1, the fan blades 421 will drive the driving rod 42 to rotate on the support plate 41 under the action of the natural gas. When the driving rod 42 rotates, it will drive the connecting rod 44 to tilt and rotate through the diagonal rod 43. Thus, the connecting rod 44 will drive the swash plate 45 to tilt and rotate inside the magnetizing pipe body 1. During the process of the swash plate 45 tilting and rotating, as Figure 9 shown, the downward-tilting end of the swash plate 45 will squeeze the sliding rod 32, so that the spherical ball 37 and the sliding rod 32 will slide downward in the bracket 31 under the action of the swash plate 45. Thus, this group of sliding rods 32 will drive the piston 35 at their ends to slide into the corresponding distribution holes 34, so as to close this group of distribution holes 34.
[0087] During the process of the piston 35 sliding downward, it can stretch the elastic member 36. When the swash plate 45 tilts upward, the piston 35 will drive the sliding rod 32 to slide upward in the bracket 31 under the elastic force of the elastic member 36 until the piston 35 slides upward to disengage from the distribution hole 34, facilitating the natural gas to flow into the inside of the magnetizing pipe body 1 through this group of distribution holes 34.
[0088] Through the cooperation of the distribution unit 3 and the driving unit 4, multiple groups of distribution holes 34 are intermittently opened and closed in sequence. Thus, the natural gas will be discharged through different distribution holes 34 in sequence, increasing the flow path of the natural gas inside the magnetizing pipe body 1. During the process of the swash plate 45 tilting and rotating, the opening direction between the swash plate 45 and the disc 33 is constantly changing. Thus, the natural gas will enter the surface of the disc 33 through different directions and be discharged into the inside of the magnetizing pipe body 1 through different distribution holes 34 in sequence. Through the tilting and rotating swash plate 45, the flow path of the natural gas inside the magnetizing pipe body 1 is further increased, thereby improving the magnetization effect of the magnetization unit 2 on the natural gas.
[0089] Furthermore, exhaust holes are provided on the swash plate 45, increasing the smoothness of the natural gas passing through the magnetizing pipe body 1.
[0090] Embodiment 3: As Figures 1 - 13 shown, on the basis of Embodiment 2, the following technical solutions are added. As Figure 11As shown, a purification unit 5 is rotatably connected inside the magnetized pipeline body 1. The purification unit 5 is used to filter the natural gas inside the magnetized pipeline body 1. The purification unit 5 includes:
[0091] A support ring 54 is rotatably connected in a circular chute formed on the inner wall of the magnetized pipeline body 1. A ring-shaped net 52 is connected to the side surface of the support ring 54. The diameter of the ring-shaped net 52 is smaller than that of the support ring 54.
[0092] A dust collection tray 51 is connected to the end of the ring-shaped net 52 away from the support ring 54. Dust collection holes 53 are formed on the surface of the dust collection tray 51.
[0093] In this embodiment, since the diameter of the ring-shaped net 52 is smaller than that of the support ring 54, when natural gas passes through the ring-shaped net 52, after passing through the ring-shaped net 52, the natural gas will enter the inside of the magnetized pipeline body 1 through the gap between the ring-shaped net 52 and the magnetized pipeline body 1. The ring-shaped net 52 will filter the natural gas, thereby removing impurities in the natural gas, such as sediment, corrosives, particulate matters, etc., to prevent blockage or damage when the impurities enter the user equipment.
[0094] In an embodiment of the present invention, as Figure 11 、 Figure 12 and Figure 13 shown, a dust removal unit 6 is connected to the surface of the drive unit 4, and the dust removal unit 6 is intermittently connected to the purification unit 5. The dust removal unit 6 is used to cooperate with the drive unit 4 to achieve dust removal of the purification unit 5. The dust removal unit 6 includes:
[0095] A rotating frame 61 is connected to the surface of the drive rod 42, and a sliding frame 62 is slidably connected inside.
[0096] A support plate 63 is fixed to the end of the sliding frame 62 and is intermittently connected to the inner wall of the ring-shaped net 52.
[0097] A sliding ring 64 is slidably connected to the surface of the drive rod 42. The sliding ring 64 is hinged to the sliding frame 62 through a connecting rod 65, and the sliding ring 64 and the rotating frame 61 are connected by an elastic member.
[0098] In this embodiment, during the rotation of the drive rod 42, the rotating frame 61 and the sliding frame 62 on its surface can be driven to rotate. Thus, the sliding frame 62 will drive the support plate 63 to rotate on the inner wall of the ring-shaped net 52, thereby removing the dust adsorbed on the inner wall of the ring-shaped net 52, so that the dust on the surface of the ring-shaped net 52 falls into the dust collection holes 53 on the dust collection tray 51.
[0099] When the natural gas usage increases, the driving rod 42 will rotate at an accelerated speed under the action of the fan blade 421 and the natural gas. As a result, the driving rod 42 will drive the rotating frame 61 and the sliding frame 62 to rotate at an accelerated speed. Furthermore, the support plate 63 will pull the sliding frame 62 to slide outward on the rotating frame 61 under the action of centrifugal force until the support plate 63 is in close contact with the inner wall of the annular net 52. Thus, the annular net 52 will rotate inside the magnetized pipeline body 1 under the action of the support plate 63, and then the dust adsorbed by the annular net 52 can be removed, so that the dust and impurities on the surface of the annular net 52 will all fall into the inside of the dust collecting hole 53 for collection, preventing the annular net 52 from being blocked and improving the purification effect of the annular net 52 on natural gas.
[0100] During the rotation of the annular net 52 inside the magnetized pipeline body 1, the annular net 52 will drive the support ring 54 to rotate in the circular sliding groove, so that the circular sliding groove and the support ring 54 can guide and limit the annular net 52, improving the stability of the annular net 52 rotating inside the magnetized pipeline body 1. When the sliding frame 62 slides outward on the rotating frame 61, the sliding frame 62 will pull the sliding ring 64 to slide downward on the surface of the driving rod 42 through the connecting rod 65, so that the sliding ring 64 can compress the elastic object. The elastic member 36 and the elastic object can adopt springs or elastic rubbers, which are not uniquely limited here.
[0101] When the natural gas usage decreases, the rotation speed of the driving rod 42 will decrease at this time. The sliding ring 64 will slide upward on the surface of the driving rod 42 under the elastic force of the elastic object. The sliding ring 64 will pull the sliding frame 62 to slide inward on the rotating frame 61 through the connecting rod 65, so that the sliding frame 62 will drive the support plate 63 to slide until it disengages from the inner wall of the annular net 52, and the support plate 63 is reset, and thus the annular net 52 stops rotating continuously.
[0102] The working principle of the present invention is: arranging the magnetic materials 21 and the long strip thin iron sheets 22 in a spiral form around the outer surface of the magnetized pipeline body 1 to form a superimposed magnetic field. By winding the magnetic materials 21 in a spiral manner on the magnetized pipeline body 1, the contact area of the magnetic force is larger, realizing more complete combustion of natural gas.
[0103] This application can have three installation methods according to the on-site situation in actual application: When the magnetized pipeline body 1 is a straight pipe, it is the installation method as shown in Figure 1 That is, arranging the magnetic materials 21 and the long strip thin iron sheets 22 in a spiral form around the outer surface of the magnetized pipeline body 1; sleeving the protective iron sheet 23 on the outer surface of the whole of the magnetic materials 21 and the long strip thin iron sheets 22 wrapped with heat shrink tubes, and using the clamp 24 to fix the outer surface of the protective iron sheet 23;
[0104] When the magnetized pipeline body 1 is a straight pipe, it can also be as shown inFigure 5 The installation method shown, that is, the arranged magnetic materials 21 and long strip thin iron sheets 22 are wound around the outer surface of the magnetization pipe body 1 in a spiral form; the outer surface of the magnetization pipe body 1 wound with the magnetic materials 21 and long strip thin iron sheets 22 is packaged with an outer cover 11, where the outer cover 11 can be square or cylindrical;
[0105] When the magnetization pipe body 1 is a bent pipe (not shown in the figure), that is, the arranged magnetic materials 21 and long strip thin iron sheets 22 are wound around the outer surface of the magnetization pipe body 1 in a spiral form; the aluminum foil tape is wound around the outer surface of the magnetization pipe body 1 installed with the magnetic materials 21 and long strip thin iron sheets 22.
[0106] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "installation", "connection", and "coupling" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection, an electrical connection, or a connection that can communicate with each other; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the internal communication of two components or the interaction relationship between two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0107] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A natural gas spiral magnetized pipeline, characterized in that: The natural gas spiral magnetized pipeline comprises: A magnetized pipeline body (1), wherein both ends of the magnetized pipeline body (1) are connected to a natural gas pipeline via flanges; A magnetizing unit (2) is spirally connected to the surface of the magnetizing pipeline body (1) and is used to magnetize the natural gas inside the magnetizing pipeline body (1). The magnetizing unit (2) comprises: a magnetic material (21) and a long thin iron sheet (22). The magnetic material (21) is orderly arranged on the long thin iron sheet (22). The magnetic poles of adjacent magnetic materials (21) on the long thin iron sheet (22) are arranged in the same direction. The outer surface of the magnetic material (21) and the long thin iron sheet (22) is covered with a heat shrink tube. The magnetic material (21) and the long thin iron sheet (22) covered with the heat shrink tube are spirally adsorbed on the outer surface of the magnetizing pipeline body (1); a protective iron sheet (23) is wrapped around the outer surface of the spiral magnetic material (21) and the long thin iron sheet (22); and a clamp (24) is clamped and connected to the outer surface of the protective iron sheet (23). A distribution unit (3) is slidably connected to the inside of the magnetized pipe body (1), and is used to distribute the natural gas inside the magnetized pipe body (1). The distribution unit (3) comprises: a bracket (31) fixed to the inner wall of the magnetized pipe body (1), and at least eight groups of sliding rods (32) are slidably connected to the bracket (31); a disc (33) fixed to the inner wall of the magnetized pipe body (1), and having at least eight groups of distribution holes (34) on its surface; a piston (35) connected to the end of the sliding rod (32) and slidably connected to the inside of the distribution hole (34); an elastic member (36) connected between the piston (35) and the bracket (31); and a ball (37) fixed to the end of the sliding rod (32) away from the piston (35); The magnetized pipe body (1) is rotatably connected to a driving unit (4), and the driving unit (4) is slidably connected to the end of the distribution unit (3). The driving unit (4) is used to drive the distribution unit (3) to periodically open and close inside the magnetized pipe body (1). The driving unit (4) comprises: a support plate (41) fixed to the inner wall of the magnetized pipe body (1); a driving rod (42) rotatably connected to the support plate (41), and having a fan blade (421) mounted on the surface; an inclined rod (43) fixed to the end of the driving rod (42); and a slanted plate (45) rotatably connected to the inside of the magnetized pipe body (1), the center of the slanted plate (45) being connected to the slanted rod (43) through a connecting rod (44), and the surface of the slanted plate (45) away from the connecting rod (44) is slidably connected to the ball (37).
2. The natural gas spiral magnetized pipeline according to claim 1, characterized in that: The magnetic materials (21) are all adsorbed on the long thin iron sheet (22) with their S poles.
3. The natural gas spiral magnetized pipeline according to claim 1, characterized in that: The outer surfaces of the spiral magnetic material (21) and the long thin iron sheet (22) are wrapped with shielding material.
4. The natural gas spiral magnetized pipeline according to claim 1, characterized in that: The entire outer surface of the magnetized pipe body (1) and the clamp (24) is wrapped with an outer cover (11).
5. The natural gas spiral magnetized pipeline according to claim 1, characterized in that: The interior of the magnetized pipeline body (1) is rotatably connected to a purification unit (5), the purification unit (5) being used to filter the natural gas inside the magnetized pipeline body (1), the purification unit (5) comprising: A support ring (54) is rotatably connected in a circular groove provided on the inner wall of the magnetized pipe body (1); a side surface of the support ring (54) is connected to a ring-shaped net (52); and a diameter of the ring-shaped net (52) is smaller than a diameter of the support ring (54); The dust collecting plate (51) is connected to the end of the ring-shaped net (52) away from the supporting ring (54), and dust collecting holes (53) are provided on the surface of the dust collecting plate (51).
6. The natural gas spiral magnetized pipeline according to claim 5, characterized in that: The surface of the driving unit (4) is connected to a dust removal unit (6), and the dust removal unit (6) and the purification unit (5) are intermittently connected. The dust removal unit (6) is used to cooperate with the driving unit (4) to achieve dust removal of the purification unit (5), and the dust removal unit (6) comprises: A rotating frame (61) is connected to the surface of the driving rod (42) and is slidably connected to a sliding frame (62) inside; A support plate (63) is fixed to the end of the sliding frame (62) and is intermittently connected to the inner wall of the ring-shaped net (52); The sliding ring (64) is slidably connected to the surface of the driving rod (42). The sliding ring (64) is hinged to the sliding frame (62) through a connecting rod (65), and the sliding ring (64) and the rotating frame (61) are connected through an elastic object.
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