Continuous steam generator
By slidingly installing a filter plate in the water inlet pipe of the steam generator and equipping it with a driving part and a cleaning part, the problem of filter plate clogging is solved, and efficient cleaning and low-noise operation of the steam generator are achieved.
Patent Information
- Application Number
- CN202310328723.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-03-25
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2043-03-25
AI Technical Summary
The existing steam generator lacks a cleaning component for the filter plate when water is taken in, which causes the filter holes to be clogged, affecting the water flow and steam generation, and reducing work efficiency.
A continuous steam generator is designed. A filter plate is installed by sliding in the water inlet pipe and is equipped with a driving part and a cleaning part. The sliding and vibration of the filter plate are used to remove impurities, and the noise is reduced by the noise reduction part to achieve automatic cleaning.
It effectively reduces the possibility of filter plate clogging, improves the water flow and working efficiency of the steam generator, and reduces noise pollution during the cleaning process.
Smart Images

Figure CN116422043B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of steam generators, and in particular to a continuous steam generator. Background Art
[0002] A steam generator, also known as a steam heat source machine (commonly known as a boiler), is a mechanical device that uses the thermal energy of fuel or other energy sources to heat water into hot water or steam. Steam generators are mainly classified according to fuel and can be divided into electromagnetic steam generators, electric steam generators, fuel steam generators, gas steam generators, etc. When in use, they all heat water to form steam in order to complete the work.
[0003] When an existing steam generator is in use, a filter plate is installed in the water inlet pipe to reduce the impact of impurities in the water flow on heating when water is taken in. When in use, the filter plate is used to block impurities in the water flow, thereby reducing the number of impurities entering the steam generator. However, when in use, there is a lack of components for cleaning the filter plate, so that when the steam generator is used for a long time, larger impurities will agglomerate and block the filter holes of the filter plate, causing the water flow of the steam generator to decrease, the steam generated to decrease, and the working efficiency of the steam generator to be affected. For this reason, the present application provides a continuous steam generator to improve this problem. Summary of the Invention
[0004] The purpose of the present application is to provide a continuous steam generator, which aims to solve the problem that when the existing steam generator is in use, a filter plate is installed in the water inlet pipe in order to reduce the impact of impurities in the water flow on heating. When in use, the filter plate is used to block impurities in the water flow, thereby reducing the number of impurities entering the steam generator. However, when in use, there is a lack of components for cleaning the filter plate, so that when the steam generator is used for a long time, larger impurities will agglomerate and block the filter holes of the filter plate, thereby reducing the water flow of the steam generator and reducing the steam generated, which affects the working efficiency of the steam generator.
[0005] To achieve the above objectives, this application provides the following technical solutions:
[0006] The present application provides a continuous steam generator, comprising a body, the body having a cavity for holding water, the cavity being provided with a water inlet pipe, the water inlet pipe being connected to a water source, and the steam generator further comprising:
[0007] A filter plate slidably mounted on the water inlet pipe, wherein the filter plate slides along the axial direction of the water inlet pipe;
[0008] a driving member installed in the water inlet pipe, the driving member being used to drive the filter plate to slide in the water inlet pipe;
[0009] a cleaning member installed in the water inlet pipe, the cleaning member being located on one side of the filter plate, and causing the filter plate to vibrate when the filter plate slides;
[0010] The noise reduction member is installed on the outer peripheral side of the water inlet pipe. When vibration occurs on the filter plate, the noise reduction member is used to absorb the vibration transmitted to the outside by the filter plate.
[0011] Furthermore, a sliding groove is provided on the water inlet pipe, the filter plate is slidably connected to the sliding groove, and the cleaning member includes:
[0012] a resistance spring installed in the sliding groove, wherein one end of the resistance spring is connected to the sliding groove and the other end is connected to the filter plate;
[0013] An impact block is installed in the water inlet pipe, and is located on a side of the filter plate away from the conflict spring. When the conflict spring is not subjected to external force, the impact block contacts the filter plate.
[0014] Furthermore, the driving member includes:
[0015] A rotating shaft rotatably mounted in the water inlet pipe, wherein a plurality of stirring blades are mounted on the circumference of the rotating shaft;
[0016] A rotating plate mounted on the rotating shaft, wherein a connecting rod is eccentrically hinged on the rotating plate;
[0017] A connecting cylinder is slidably mounted on the water inlet pipe, one end of the connecting cylinder contacts the filter plate, a driving rod is movably mounted in the connecting cylinder, and the driving rod is hinged to the connecting rod.
[0018] Furthermore, the noise reduction component includes:
[0019] a sleeve sleeved on the outer circumference of the water inlet pipe, wherein a cavity is formed in the sleeve;
[0020] A plurality of partitions are installed in the cavity, with angles formed between the partitions, and the partitions divide the cavity into a plurality of small spaces;
[0021] Sound insulation cotton is arranged in the small space.
[0022] Furthermore, a rotating rod is installed on the rotating plate, one end of the rotating rod is coaxially connected to the rotating plate, and an annular groove for accommodating the other end of the rotating rod is opened in the water inlet pipe. A plurality of connecting springs are installed in the annular groove, one end of the connecting spring is connected to the annular groove, and a protrusion is installed on the other end, and the protrusion is used to interfere with the free end of the rotating rod.
[0023] Furthermore, a cleaning plate is installed in the water inlet pipe, and multiple cleaning tubes are installed on the cleaning plate. The number of the cleaning tubes is consistent with the number of filter holes on the filter plate. A through hole is opened on the cleaning tube to penetrate the cleaning tube, and the through hole is used for water to pass through.
[0024] Furthermore, a guide rod is installed in the sliding groove, the interference spring is sleeved on the guide rod, a sleeve plate is installed on the interference spring, the sleeve plate is slidably connected to the guide rod, and the sleeve plate is used to interfere with the filter plate.
[0025] Furthermore, a plurality of water openings are provided on the cleaning plate, and the water openings are used for water to pass through.
[0026] Furthermore, a plurality of protruding blocks are constructed on a side of the impact block close to the filter plate, and the protruding blocks are used to abut against the filter plate, and the protruding blocks are made of rubber.
[0027] Furthermore, a mounting groove is provided on the water inlet pipe, a mounting plate is inserted into the mounting groove, and the rotating shaft is rotatably mounted on the mounting plate.
[0028] The present application provides a continuous steam generator, which has the following beneficial effects:
[0029] 1. In the present application, the filter plate is slidably installed in the water inlet pipe, and the filter plate is slid in the water inlet pipe by a driving member. A cleaning member is also installed in the water inlet pipe. The sliding of the filter plate causes a collision between the filter plate and the cleaning member, thereby separating impurities attached to the filter plate from the filter plate. A noise reduction member is installed on the outside of the water inlet pipe. When cleaning the filter plate, the noise reduction member reduces the noise during cleaning of the filter plate. When in use, the filter plate is cleaned by the cleaning member, thereby reducing the possibility of the filter plate being blocked by impurities and reducing the impact on the operation of the steam generator.
[0030] 2. The present application slides the filter plate so that the filter plate approaches the resistance spring, causing the resistance spring to be compressed. When the resistance spring is reset, it pushes the filter plate to collide with the impact block, causing vibration on the filter plate, shaking off the impurities attached thereto, and reducing the possibility of the filter plate being blocked.
[0031] 3. When the rotating shaft of the present application rotates, the rotating plate is driven to rotate. Since the connecting rod is eccentrically installed with it, when the rotating plate rotates, the driving rod is driven to move together, and the distance between the driving rod and the filter plate is changed, pushing the filter plate to compress the resistance spring, so that the filter plate slides in the water inlet pipe, and the rotating shaft is driven to rotate by the flow of water. There is no need to use a motor for driving, which saves electricity and makes the device more environmentally friendly when used. BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Figure 1 This is a structural schematic diagram of a continuous steam generator according to an embodiment of the present application.
[0033] Figure 2 This is another three-dimensional structural diagram of the present application;
[0034] Figure 3 This is an exploded view of some structures of this application;
[0035] Figure 4 This is another exploded view of the structure of this application;
[0036] Figure 5 This is another exploded view of the structure of this application;
[0037] Figure 6 For this application Figure 2 Middle stereoscopic half-section;
[0038] Figure 7 For this application Figure 6 Enlarged view of point A in the middle;
[0039] Figure 8 For this application Figure 6 Enlarged view of point B in the middle;
[0040] Figure numerals: 1. Water inlet pipe; 2. Filter plate; 3. Driving member; 301. Rotating shaft; 302. Stirring blade; 303. Rotating plate; 304. Connecting rod; 305. Connecting cylinder; 306. Driving rod; 4. Noise reduction member; 401. Sleeve; 402. Partition; 403. Sound insulation cotton; 5. Sliding groove; 6. Cleaning member; 601. Resistance spring; 602. Impact block; 7. Rotating rod; 8. Ring groove; 9. Connecting spring; 10. Protrusion; 11. Cleaning plate; 12. Cleaning pipe; 13. Through hole; 14. Guide rod; 15. Sleeve plate; 16. Water outlet; 17. Protruding block; 18. Mounting plate; 19. Mounting groove; 20. Sliding ring.
[0041] The implementation, functional features and advantages of this application will be further explained in conjunction with embodiments and with reference to the accompanying drawings. DETAILED DESCRIPTION
[0042] It should be understood that the specific embodiments described herein are only used to explain the present application and are not intended to limit the present application.
[0043] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0044] Reference Attachment Figure 1 -Attached Figure 6 , is a schematic diagram of the continuous steam generator proposed in this application, including a body, a cavity for holding water, a water inlet pipe 1 opened in the cavity, the water inlet pipe 1 is connected to a water source, the structure of the steam generator is installed inside the body, the water inlet pipe 1 is connected to the boiler drum, and the steam generator further includes:
[0045] The filter plate 2 is slidably mounted on the water inlet pipe 1. The filter plate 2 slides along the axial direction of the water inlet pipe 1. When in use, water flows through the filter holes on the filter plate 2, and then the filter plate 2 blocks impurities in the water.
[0046] A driving member 3 is installed in the water inlet pipe 1. The driving member 3 is used to drive the filter plate 2 to slide in the water inlet pipe 1. The driving member 3 causes the filter plate 2 to slide in the water inlet pipe 1. When the movement direction of the filter plate 2 is opposite to the flow direction of the water, the collision between the water flow and the filter plate 2 flushes the plate surface of the filter plate 2, thereby reducing the possibility of the filter plate 2 being blocked.
[0047] A cleaning member 6 is installed in the water inlet pipe 1. The cleaning member 6 is located on one side of the filter plate 2. When the filter plate 2 slides, the cleaning member 6 causes the filter plate 2 to vibrate. When the filter plate 2 slides, it collides with the cleaning member 6 and causes vibration on the filter plate 2. Impurities attached to the filter plate 2 are separated from the filter plate 2 by the vibration, thereby reducing the possibility of the filter plate 2 being blocked.
[0048] The noise reduction member 4 is installed on the outer peripheral side of the water inlet pipe 1. When vibration occurs on the filter plate 2, the noise reduction member 4 is used to absorb the vibration transmitted to the outside by the filter plate 2. Since the device separates impurities from the filter plate 2 through vibration, there will be noise during vibration. The noise reduction member 4 is wrapped around the outer peripheral side of the water inlet pipe 1. When the noise generated by the vibration is transmitted to the outside, the vibration in the sound wave is absorbed by the noise reduction member 4, thereby reducing the decibel of the transmitted noise and reducing the impact of the noise generated when cleaning the filter plate 2 on the external environment;
[0049] Compared with the prior art, when in use, the filter plate 2 is vibrated by the cleaning member 6, and impurities are separated from the filter plate 2 by vibration, thereby reducing the possibility of the filter plate 2 being blocked during use, thereby reducing the possibility of the water flow rate of the steam generator decreasing, and reducing the impact of the blockage of the filter plate 2 on its working efficiency.
[0050] like Figure 3 、 Figure 5 and Figure 7 As shown, in some embodiments, a sliding groove 5 is provided on the water inlet pipe 1, the filter plate 2 is slidably connected to the sliding groove 5, and the cleaning member 6 includes:
[0051] The interference spring 601 is installed in the sliding groove 5. One end of the interference spring 601 is connected to the sliding groove 5, and the other end is connected to the filter plate 2. When the filter plate 2 slides, the interference spring 601 is squeezed and compressed. When the interference spring 601 is reset, it pushes the filter plate 2 to slide and reset the filter plate 2. Since the interference spring 601 accelerates when resetting, the filter plate 2 is accelerated to reset, thereby increasing the movement speed of the filter plate 2 when resetting.
[0052] The impact block 602 is installed in the water inlet pipe 1, and the impact block 602 is located on the side of the filter plate 2 away from the resistance spring 601. When the resistance spring 601 is not subjected to external force, the impact block 602 contacts the filter plate 2. The impact block 602 and the resistance spring 601 are respectively located on both sides of the filter plate 2. When the resistance spring 601 is reset, it pushes the filter plate 2 to reset, causing the old filter plate 2 to accelerate toward the direction of the impact block 602, causing a collision between the filter plate 2 and the impact block 602. The collision causes vibration on the filter plate 2, so that impurities are separated from the filter plate 2, reducing the possibility of the filter plate 2 being blocked.
[0053] like Figure 4 、 Figure 5 and Figure 6 As shown, in some embodiments, the driving member 3 includes:
[0054] A rotating shaft 301 is rotatably mounted in the water inlet pipe 1. A plurality of stirring blades 302 are mounted on the circumference of the rotating shaft 301. The stirring blades 302 are mounted on the water inlet side of the filter plate 2. The stirring blades 302 are arranged in a circular array along the axis of the rotating shaft 301. When water flows through the stirring blades 302, the stirring blades 302 and the rotating shaft 301 form a propeller structure, driving the stirring blades 302 to rotate, so that impurities in the water are stirred evenly, reducing the possibility of accumulation at the bottom of the water inlet pipe 1.
[0055] A rotating plate 303 is mounted on the rotating shaft 301, and a connecting rod 304 is eccentrically hinged on the rotating plate 303;
[0056] The connecting tube 305 is slidably installed in the water inlet pipe 1, one end of the connecting tube 305 is in contact with the filter plate 2, and a driving rod 306 is movably installed in the connecting tube 305. The driving rod 306 is hinged to the connecting rod 304, one end of the connecting rod 304 is hinged to the rotating plate 303, and the other end is hinged to the driving rod 306. The driving rod 306 can rotate and slide in the connecting tube 305, and a sliding ring 20 is installed in the water inlet pipe 1. The connecting tube 305 is slidably connected to the sliding ring 20. The sliding direction of the connecting tube 305 is limited by the sliding ring 20 so that it can only approach or move away from the filter plate 2 in a straight line. When in use, the rotating plate 303 is driven to rotate by the rotating shaft 301, so that the rotating plate 30 3 drives the distance between the connecting rod 304 and the driving rod 306 and the connecting cylinder 305 to change, driving the connecting cylinder 305 to move closer to or away from the filter plate 2. When the connecting cylinder 305 approaches the filter plate 2, it pushes the filter plate 2 to compress the interference spring 601. When it moves away from the filter plate 2, the force applied to the filter plate 2 is released, so that the interference spring 601 pushes the filter plate 2 to reset, causing the filter plate 2 to collide with the impact block 602, thereby cleaning the impurities on the filter plate 2. When in use, when the filter plate 2 is driven to slide by the driving member 3, the impurities are distributed more evenly in the water flow through the stirring blade 302, thereby reducing the possibility of impurities being deposited at the bottom of the water inlet pipe 1.
[0057] like Figure 2 and Figure 3 As shown, in some embodiments, the noise reduction member 4 includes:
[0058] A sleeve 401 is sleeved on the outer circumference of the water inlet pipe 1, and a cavity is defined in the sleeve 401;
[0059] Multiple baffles 402 are installed in the cavity. There are angles between the baffles 402. The baffles 402 divide the cavity into multiple small spaces. The sleeve 401 wraps the outer circumference of the water inlet pipe 1. The baffles 402 divide the cavity inside the sleeve 401. When noise is transmitted into the cavity, the energy in the noise is reduced by reflection through the baffles 402, thereby reducing the decibel level caused.
[0060] Sound insulation cotton 403 is arranged in the small space. The sound insulation cotton 403 is the existing technology and is constructed with multiple dense small holes. When the noise is transmitted into the small holes, it will be reflected, weakening the energy in the noise, thereby reducing the decibel of the noise and reducing the impact of the cleaning part 6 on external personnel when cleaning the filter plate 2.
[0061] like Figure 4 、 Figure 5 、 Figure 6 and Figure 8As shown, in some embodiments, a rotating rod 7 is installed on the rotating plate 303, one end of the rotating rod 7 is coaxially connected to the rotating plate 303, and an annular groove 8 for accommodating the other end of the rotating rod 7 is opened in the water inlet pipe 1, and a plurality of connecting springs 9 are installed in the annular groove 8, one end of the connecting spring 9 is connected to the annular groove 8, and the other end is installed with a protrusion 10, which is used to contact the free end of the rotating rod 7. The rotating rod 7 is L-shaped, one end is connected to the rotating plate 303, and the other end is located in the annular groove 8, the connecting spring 9 is located on the two side walls of the annular groove 8, and the protrusion 10 is installed on the opposite end of the connecting spring 9. The protrusion 10 is hemispherical. When the rotating rod 7 rotates, its free end slides in the annular groove 8 and contacts the protrusion 10. When the two collide, the free end of the rotating rod 7 collides with the protrusion 10, causing the water inlet pipe 1 to vibrate, further reducing the possibility of impurities adhering to the filter plate 2.
[0062] like Figure 5 As shown, in some embodiments, a cleaning plate 11 is installed in the water inlet pipe 1, and multiple cleaning tubes 12 are installed on the cleaning plate 11. The number of cleaning tubes 12 is consistent with the number of filter holes on the filter plate 2. A through hole 13 is opened on the cleaning tube 12 to pass through the cleaning tube 12. The through hole 13 is used for water to pass through. The cleaning plate 11 and the resistance spring 601 are located on the same side. During use, when the filter plate 2 squeezes the resistance spring 601, the cleaning tube 12 on the cleaning plate 11 is inserted into the filter hole on the filter plate 2 to clean the impurities in the filter hole and separate them from the filter hole, thereby reducing the possibility of the filter plate 2 being blocked. The water flows from the through hole 13 through the cleaning plate 11 to the filter plate 2, and when the filter plate 2 is cleaned, the water can also pass through the cleaning plate 11.
[0063] like Figure 5 As shown, in some embodiments, a guide rod 14 is installed in the sliding groove 5, and a resistance spring 601 is sleeved on the guide rod 14. A sleeve plate 15 is installed on the resistance spring 601, and the sleeve plate 15 is slidably connected to the guide rod 14. The sleeve plate 15 is used to resist the filter plate 2. The resistance spring 601 is sleeved on the guide rod 14, and the guide rod 14 makes the resistance spring 601 only stretch or be compressed in the horizontal direction, and resists the filter plate 2 through the sleeve plate 15. The sleeve plate 15 increases the contact area between the resistance spring 601 and the filter plate 2, reduces the wear on the filter plate 2 during the resistance, and increases the service life of the filter plate 2.
[0064] like Figure 5 As shown, in some embodiments, a plurality of water openings 16 are provided on the cleaning plate 11, and the water openings 16 are used for water to flow through. In addition to the through holes 13, the cleaning plate 11 is also provided with water openings 16, which increases the water flow rate of the cleaning plate 11. When in use, the water flow rate passing through the cleaning plate 11 meets the needs of the steam generator.
[0065] like Figure 3 As shown, in some embodiments, a plurality of protrusions 17 are constructed on one side of the impact block 602 close to the filter plate 2. The protrusions 17 are used to contact the filter plate 2. The protrusions 17 are made of rubber. When in use, the protrusions 17 contact the filter plate 2. When in use, the flexible contact between the protrusions 17 and the filter plate 2 reduces the loss to the filter plate 2 when the protrusions 17 collide with the filter plate 2, thereby increasing the service life of the filter plate 2.
[0066] like Figure 4 As shown, in some embodiments, a mounting groove 19 is opened on the water inlet pipe 1, a mounting plate 18 is inserted into the mounting groove 19, and the rotating shaft 301 is rotatably installed on the mounting plate 18. When in use, the mounting plate 18 and the water inlet pipe 1 are detachably installed. When in use, the mounting plate 18 and the water inlet pipe 1 are disassembled to facilitate the replacement of the driving member 3 and the mounting plate 18.
[0067] It should be noted that, in this document, the terms "comprises," "includes," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a process, apparatus, article, or method comprising a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, apparatus, article, or method. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of other identical elements in the process, apparatus, article, or method comprising the element.
[0068] The above description is only a preferred embodiment of the present application and does not limit the patent scope of the present application. Any equivalent structure or equivalent process transformation made using the contents of the present application specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present application.
[0069] Although the embodiments of the present application have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the appended claims and their equivalents.
Claims
1. A continuous steam generator, comprising a body, wherein the body has a cavity for holding water, a water inlet pipe (1) is installed on the cavity, and the water inlet pipe (1) is connected to a water source, characterized in that: The body further comprises: a filter plate (2) slidably mounted on the water inlet pipe (1), the filter plate (2) sliding along the axial direction of the water inlet pipe (1); A driving member (3) is installed in the water inlet pipe (1), and the driving member (3) is used to drive the filter plate (2) to slide in the water inlet pipe (1). The driving member (3) includes a rotating shaft (301) rotatably installed in the water inlet pipe (1), a plurality of stirring blades (302) are installed on the circumference of the rotating shaft (301), a rotating plate (303) is installed on the rotating shaft (301), and a connecting rod (304) is eccentrically hinged on the rotating plate (303). A connecting cylinder (305) is slidably installed on the water inlet pipe (1), and one end of the connecting cylinder (305) contacts the filter plate (2). A driving rod (306) is movably installed in the connecting tube (305), and the driving rod (306) is hinged to the connecting rod (304). A rotating rod (7) is installed on the rotating plate (303), and one end of the rotating rod (7) is coaxially connected to the rotating plate (303). An annular groove (8) for accommodating the other end of the rotating rod (7) is provided in the water inlet pipe (1). A plurality of connecting springs (9) are installed in the annular groove (8). One end of the connecting spring (9) is connected to the annular groove (8), and the other end is provided with a protrusion (10), and the protrusion (10) is used to contact the free end of the rotating rod (7); a cleaning member (6) installed in the water inlet pipe (1), the cleaning member (6) being located on one side of the filter plate (2), and causing the filter plate (2) to vibrate when the filter plate (2) slides; A noise reduction member (4) is installed on the outer peripheral side of the water inlet pipe (1). When vibration occurs on the filter plate (2), the noise reduction member (4) is used to absorb the vibration transmitted to the outside by the filter plate (2). A sliding groove (5) is provided on the water inlet pipe (1). The filter plate (2) is slidably connected to the sliding groove (5). The cleaning member (6) includes a resistance spring (601) installed in the sliding groove (5). One end of the resistance spring (601) is connected to the sliding groove (5) and the other end is connected to the filter plate (2). An impact block (602) is installed in the water inlet pipe (1). The impact block (602) is located on a side of the filter plate (2) away from the resistance spring (601). When the resistance spring (601) is not subjected to external force, the impact block (602) contacts the filter plate (2).
2. The continuous steam generator according to claim 1, characterized in that The noise reduction component (4) comprises: a sleeve (401) sleeved on the outer peripheral side of the water inlet pipe (1), wherein a cavity is formed in the sleeve (401); A plurality of partitions (402) installed in the cavity, wherein angles are formed between the partitions (402), and the partitions (402) divide the cavity into a plurality of small spaces; Sound insulation cotton (403) is provided in the small space.
3. The continuous steam generator according to claim 2, characterized in that A cleaning plate (11) is installed in the water inlet pipe (1), and a plurality of cleaning pipes (12) are installed on the cleaning plate (11). The number of the cleaning pipes (12) is consistent with the number of filter holes on the filter plate (2). The cleaning pipes (12) are provided with through holes (13) that penetrate the cleaning pipes (12), and the through holes (13) are used for water to pass through.
4. The continuous steam generator according to claim 3, characterized in that A guide rod (14) is installed in the sliding groove (5), the interference spring (601) is sleeved on the guide rod (14), and a sleeve plate (15) is installed on the interference spring (601). The sleeve plate (15) is slidably connected to the guide rod (14), and the sleeve plate (15) is used to interfere with the filter plate (2).
5. The continuous steam generator according to claim 4, characterized in that The cleaning plate (11) is provided with a plurality of water openings (16), and the water openings (16) are used for water to pass through.
6. The continuous steam generator according to claim 5, characterized in that A plurality of protruding blocks (17) are constructed on one side of the impact block (602) close to the filter plate (2). The protruding blocks (17) are used to abut against the filter plate (2), and the protruding blocks (17) are made of rubber.
7. The continuous steam generator according to claim 6, characterized in that The water inlet pipe (1) is provided with a mounting groove (19), a mounting plate (18) is inserted into the mounting groove (19), and the rotating shaft (301) is rotatably mounted on the mounting plate (18).
Citation Information
Patent Citations
Anti-blocking electric flange butterfly valve
CN213575588U
Pneumatic conveying pipeline
CN214732761U
Valve capable of preventing filtered objects from being damaged
CN217272068U