Visual flushing device for separator
By designing a visual flushing device for the separator, precise flushing of the separator's interior is achieved using adjustment components and probes, solving the clogging problem caused by mud and sand accumulation and improving cleaning effect and efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHINA PETROLEUM & CHEMICAL CORP
- Filing Date
- 2025-05-08
- Publication Date
- 2026-05-05
AI Technical Summary
After prolonged use, existing separators accumulate silt and sand inside, causing blockages in the sewage pipes and reducing separation efficiency. Traditional water flushing methods are insufficient to cover all areas inside the separator, resulting in poor cleaning performance.
A visual rinsing device for a separator was designed, including a first support, a second support, a spray assembly, a probe, and an adjustment assembly. The angle between the first and second supports is adjusted by the adjustment assembly, and the probe captures images of the internal environment of the separator, thereby achieving precise rinsing of each area of the separator.
It improves the cleaning effect of the separator, covering all areas inside the separator, enhancing the efficiency and quality of rinsing, and reducing production difficulty and energy consumption.
Smart Images

Figure CN224195536U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of gas extraction technology, and in particular to a visual flushing device for a separator. Background Technology
[0002] During gas extraction from a gas well, not only does natural gas flow out of the wellhead, but it also carries a small amount of formation water and sand from the bottom of the well. To improve the quality of natural gas extraction, the extracted gas is passed into a separator for processing. The separator separates the gas from the liquid and sediment, removing the impurities mixed in with the gas. The separated impurities are then discharged through a drain pipeline.
[0003] However, prolonged use of the separator to separate sludge and sand will lead to the accumulation of sludge and sand inside the separator, causing blockages in the drain pipe and reducing the separator's separation efficiency, making it difficult to separate solid impurities from natural gas. Therefore, when sludge and sand accumulate inside the separator, it is necessary to clean the internal chambers to flush away the sludge and sand.
[0004] In the past, water pipes were often used to directly flush the interior of the separator. However, water pipe flushing makes it difficult to reach many areas inside the separator, resulting in generally poor cleaning effectiveness. Utility Model Content
[0005] This invention provides a visual rinsing device for separators, which facilitates adjustment of the rinsing direction and improves the cleaning effect on the separators.
[0006] This utility model provides a visual rinsing device for a separator, comprising: a first support member; a second support member, the second support member being rotatably connected to one end of the first support member; a spray assembly, which is installed on the end of the second support member away from the first support member, the spray assembly being used to communicate with a water pipe to spray water from the water pipe out of the spray assembly; a probe, which is fixed to the second support member for photographing the spray area of the spray assembly; and an adjustment assembly, one side of the adjustment assembly being connected to the first support member and the other side being connected to the second support member, the adjustment assembly being used to adjust the angle between the first support member and the second support member.
[0007] In one embodiment, the first support member is provided with a groove, the extension direction of which is perpendicular to the rotation axis of the second support member; the adjustment assembly includes a slider, a first traction rope, and a second traction rope; the slider is slidably installed in the groove; one end of the first traction rope is fixedly connected to the slider, and pulling the first traction rope can drive the slider to slide along the groove; one end of the second traction rope is fixedly connected to the slider, and the other end of the second traction rope is fixedly connected to the second support member, and the second traction rope is configured to pull the second support member to rotate relative to the first support member when the slider slides.
[0008] In one embodiment, the first end of the first support member is rotatably connected to the second end of the second support member; the second support member is provided with a first connecting part, and the distance between the first connecting part and the second end of the second support member is a first length S1;
[0009] The chute is provided with a first limiting part at one end near the second support member, and the distance between the first limiting part and the first end of the first support member is a second length S2; the length of the second traction rope is L1, where L1 = S1 + S2.
[0010] In one embodiment, the first support member is provided with a second connecting portion with an annular structure, the end of the first traction rope away from the slider passes through the second connecting portion, and the line connecting the second connecting portion and the slider is parallel to the extension direction of the groove.
[0011] In one embodiment, the first support member is further provided with a scale extending along the extension direction of the slide groove, and the first traction rope is connected to a pointer that points to the scale area of the scale.
[0012] In one embodiment, the slider includes a first limiting portion and a second limiting portion connected in a first direction, the first limiting portion extending out of the second limiting portion in a second direction, and the first direction and the second direction being perpendicular to the extension direction of the slide groove; the slide groove includes a first groove segment and a second groove segment connected in the first direction, the width of the first groove segment in the second direction being greater than the width of the second groove segment in the second direction, such that the slide groove forms a limiting wall at the connection between the first groove segment and the second groove segment, the first limiting portion being slidably installed in the first groove segment, the second limiting portion being slidably installed in the second groove segment, and the first limiting portion abutting against the limiting wall.
[0013] In one embodiment, the spray assembly is connected to a connector and a nozzle, the end of the connector away from the nozzle being detachably connected to a water pipe, and the second support is provided with a retaining ring for the water supply pipe to pass through, the retaining ring and the connector being located on the same side of the second support.
[0014] In one embodiment, the second support member is provided with a plurality of coaxially arranged fixing rings, which are used for the same water pipe to pass through.
[0015] In one embodiment, the probe is an explosion-proof probe.
[0016] In one embodiment, both the first support member and the second support member are rod-shaped structures.
[0017] Compared with existing technologies, the advantages of this invention are as follows: Since the first and second support members are rotatably connected, and a spray assembly is installed on the second support member, during initial use, a water pipe can be connected to the spray assembly, and the angle between the first and second support members can be adjusted using an adjusting component. This reduces the difficulty of inserting the visible flushing device into the separator. After inserting the second support member into the separator, water can be supplied to the water pipe, and the water flow is sprayed out through the spray assembly to clean the mud and sand inside the separator. Furthermore, since a probe is fixed to the second support member, the internal environment of the separator can be photographed to determine the areas requiring cleaning. By adjusting the angle between the first and second support members using the adjusting component, the spray direction of the spray assembly can be adjusted. Compared to water pipes, which are difficult to adjust the flushing direction with, this invention facilitates flushing of all areas inside the separator, improving the flushing quality. Attached Figure Description
[0018] The present invention will be described in more detail below based on embodiments and with reference to the accompanying drawings.
[0019] Figure 1 This is a schematic diagram of the main structure of the separator visual rinsing device in an embodiment of this utility model;
[0020] Figure 2 This is a three-dimensional structural schematic diagram of the visible rinsing device of the separator in an embodiment of this utility model;
[0021] Figure 3 This is a top view of the visible rinsing device of the separator in an embodiment of this utility model;
[0022] Figure 4 This is a cross-sectional structural diagram of the first support member at the slide groove in an embodiment of this utility model.
[0023] Figure label:
[0024] 100. First support member; 110. Slide groove; 120. Second connecting part; 121. Second support column; 122. Second connecting ring;
[0025] 200. Second support member; 210. First connecting part; 211. First support column; 212. First connecting ring;
[0026] 300. Spray assembly; 310. Connector; 320. Nozzle; 330. Connecting pipe
[0027] 400. Probe;
[0028] 500. Adjustment component; 510. Slider; 511. First limiting part; 512. Second limiting part; 513. Third connecting ring; 520. First traction rope; 521. Handle; 530. Second traction rope;
[0029] 610. Ruler; 620. Pointer;
[0030] 700, fixed ring. Detailed Implementation
[0031] The present invention will be further described below with reference to the accompanying drawings.
[0032] See Figures 1 to 3 As shown, a separator visual rinsing device provided in this application includes: a first support member 100, a second support member 200, a spray assembly 300, a probe 400, and an adjustment assembly 500. The spray assembly 300 and the probe 400 are both mounted on the second support member 200, which is rotatably connected to the first support member 100. One side of the adjustment assembly 500 is connected to the first support member, and the other side is connected to the second support member 200. The angle between the first support member 100 and the second support member 200 is adjusted by the adjustment assembly 500.
[0033] In use, the plastic or rubber water hose can be connected to the spray assembly 300 first. Then, the angle between the first support member 100 and the second support member 200 can be adjusted using the adjusting assembly 500 to facilitate the insertion of the separation rinsing device into the separator. As shown in the figure, the first support member 100 and the second support member 200 can be adjusted to have their axes coincide using the adjusting assembly 500, which can reduce the cross-sectional area of the visible rinsing device in the separator and reduce the difficulty of inserting the visible rinsing device into the separator.
[0034] After inserting the separator visual flushing device into the internal chamber of the separator, the probe 400 can be activated to observe the internal environment of the separator. At this time, the horizontal position, height, and angle (around the axis of the first support member 100) of the spray assembly 300 can be adjusted by adjusting the horizontal position, height, and angle of the first support member 100. Furthermore, the angle between the first support member 100 and the second support member 200 can be adjusted by adjusting the assembly, driving the second support member 200 to rotate relative to the first support member 100 to achieve the flushing direction when adjusting the first support member 100 is insufficient for the flushing operation.
[0035] By adjusting component 500, when the first support member 100 is hanging vertically downwards, the angle between the second support member 200 and the first support member 100 can be adjusted to gradually raise the second support member 200, thereby gradually raising the spray direction and cleaning other areas of the separator's inner wall. Adjusting component 500 expands the rinsing range of the separator's visible rinsing device and improves rinsing efficiency.
[0036] See Figure 1 and Figure 2 As shown, the probe 400 is oriented in the same direction as the spray direction of the spray assembly 300, so as to capture the spray area of the spray assembly 300. Therefore, if there is mud and sand accumulation in the image captured by the probe 400, the spray assembly 300 can be used directly to flush the captured mud and sand accumulation area. The probe 400 can also monitor the cleaning effect of the spray assembly 300 on the internal chamber of the separator in real time, and determine whether to stop spraying based on the captured image. Compared with arranging the probe 400 in other directions, it is more convenient to control the timing of spray flushing.
[0037] In this application, a probe 400 with wireless image transmission capability can be used to transmit the images captured by the probe 400 to the user in real time. Specifically, the probe 400 can be used to transmit the captured images to other smart terminals such as computers and mobile phones outside the separator, so that the washing personnel can monitor the situation inside the separator and accurately control the timing of water spraying by the spray assembly 300.
[0038] See Figures 1 to 3As shown, in some implementations, the first support member 100 is provided with a groove 110, the extension direction of the groove 110 being perpendicular to the rotation axis of the second support member 200; the adjustment assembly 500 includes a slider 510, a first traction rope 520, and a second traction rope 530. The slider 510 is slidably installed in the groove 110. One end of the first traction rope 520 is fixedly connected to the slider 510. Pulling the first traction rope 520 can drive the slider 510 to slide along the groove 110. One end of the second traction rope 530 is fixedly connected to the slider 510, and the other end of the second traction rope 530 is fixedly connected to the second support member 200. The second traction rope 530 is configured to pull the second support member 200 to rotate relative to the first support member 100 when the slider 510 slides.
[0039] In other words, when it is necessary to adjust the angle between the second support member 200 and the first support member 100 using the adjustment component 500, the first traction rope 520 can be pulled away from one end of the slider 510, thereby causing the slider 510 to slide in the slide groove 110, and then the sliding of the slider 510 can be used to drive the second traction rope 530 to pull the second support member 200 to slide.
[0040] Specifically, during separator cleaning, the visible flushing device extends from the top of the separator, and under gravity, the second support member 200 tends to rotate to a vertical position. Without the adjustment component 500, the second support member 200 would always remain vertical. In this application, the adjustment component 500 allows the first traction rope 520 to pull the slider 510, which in turn drives the second traction rope 530 to pull the second support member 200 upwards, thus adjusting the angle of the second support member 200 and consequently adjusting the spray direction of the spray component 300 fixed to the second support member 200. This enables cleaning of different areas of different separators.
[0041] It is understandable that in other implementations, the adjustment component 500 is not necessarily a slider 510 traction rope structure. A gear drive mechanism can also be used. For example, a pair of meshing gears can be set at the rotational connection between the first support member 100 and the second support member 200. One gear is fixedly connected to the second support member 200, and the other gear is fixedly connected to the first support member 100. A drive motor is used to drive one gear to rotate so that the other gear rotates synchronously, thereby realizing the angle adjustment of the first support member 100 and the second support member 200.
[0042] In this application, the angle between the first support member 100 and the second support member 200 is changed by sliding the slider 510 through a traction rope. Compared with setting gear assemblies or other structures to adjust the angle, the requirements for installation accuracy are lower, which significantly reduces the production difficulty of the separator visual rinsing device and thus reduces manufacturing costs. Moreover, no additional drive components are needed for angle adjustment during use, and energy can be concentrated on powering the probe 400, reducing energy consumption and extending the usage time per charge.
[0043] See Figure 1 and Figure 2 As shown, the first end of the first support member 100 ( Figure 1 The right end of the middle) and the second end of the second support member 200 ( Figure 1 The left end of the first support member 200 is rotatably connected to the second support member 200. The first connecting part 210 is provided on the second support member 200. The distance between the first connecting part 210 and the second end of the second support member 200 is a first length S1. The end of the slide groove 110 near the second support member 200 is provided with a first limiting wall. The distance between the first limiting wall and the first end of the first support member 100 is a second length S2. The length of the second traction rope 530 is L1, where L1 = S1 + S2.
[0044] Because a first limiting wall is provided at one end (right end) of the slide 110 near the second support member 200, the first limiting wall can be used to prevent the slider 510 from getting too close to the second support member 200.
[0045] If we denote the adjustable distance X as the distance between the slider 510 and the first end of the first support member 100, we can understand that X ≥ S2, and X = S2 only when the slider 510 moves to fit against the first limiting wall. Since L1 = S1 + S2, we can deduce that L1 ≤ S1 + X. That is, as long as the slider 510 has not moved to the first limiting part 511, the length relationship of the first side of the first support member 100 (the part between the slider 510 and the first end of the first support member 100), the second side of the second support member 200 (the part between the first connecting part 210 and the second end of the first support member 100), and the second traction rope 530 can form a triangular structure. When the three form a triangular structure, when the slider 510 moves in the groove 110 and the size of X changes, the angle of the triangle will change accordingly, thereby realizing the angle change between the first support member 100 and the second support member 200, and adjusting the spray angle of the spray assembly 300.
[0046] Compared to setting the length L1 of the second traction rope 530 to L1 > S1 + S2, the second traction rope 530 can be tightened simultaneously with the driving slider 510 leaving the first limiting wall. This allows the slider 510 to pull the second traction rope 530, thus adjusting the angle of the second support member 200, which is relatively convenient. Compared to setting L1 < S1 + S2, this avoids the inability to make the first support member 100 and the second support member 200 collinear, expanding the angle adjustment range between the first support member 100 and the second support member 200.
[0047] See Figure 1 and Figure 2 As shown, the first connecting part 210 includes a first support column 211, the bottom of which is connected to the second support member 200, and a first connecting ring 212 is connected to the top of the first support column 211. The first connecting ring 212 is used to fix one end of the second traction rope 530. A third connecting ring 513 is provided above the slider 510. The end of the second traction rope 530 away from the first connecting ring 212 is fixed to the third connecting ring 513. When the slider 510 slides to the end of the groove 110 ( Figure 1 When the right end of the first connecting ring 212 and the third connecting ring 513 are at the same distance, the distance between them is equal to the length L1 of the second traction rope 530.
[0048] See Figure 1 and Figure 2 As shown, in some implementations, a second connecting portion 120 is provided above the first support member 100. The second connecting portion 120 includes a second support column 121 fixedly connected to the first support member 100, and a second connecting ring 122 disposed above the second support column 121. One end of the first traction rope 520 is fixedly connected to the third connecting ring 513 of the slider 510, and the other end of the first traction rope 520 passes through the second connecting ring 122 and is connected to a handle 521. The first traction rope 520 can be pulled by pulling the handle 521. In some implementations, the outer diameter of the handle 521 can be set to be larger than the aperture of the second connecting ring 122, so that the handle 521 is always located on the side of the second connecting ring 122 away from the slider 510, preventing the handle 521 from passing through the second connecting ring 122.
[0049] Since the second connecting part 120 has a second connecting ring 122 with an annular structure, and the first traction rope 520 passes through the second connecting ring 122 of the second connecting part 120, and the limiting hole of the second connecting part 120 restricts the traction direction of the first traction rope 520 to the direction of the slide groove 110 through the second connecting part 120 and the slider 510, the slider 510 can be driven to move along the direction of the slide groove 110 when the first traction rope 520 is pulled.
[0050] The distance between the second connecting ring 122 and the outer circumferential surface of the first support member 100 is equal to the distance between the third connecting ring 513 and the outer circumferential surface of the first support member 100, ensuring that the extension direction of the first traction rope 520 is parallel to the extension direction of the outer circumferential surface of the first support member. During use, the slider 510 is located below the first traction rope 520. Under the influence of gravity, the slider 510 will fall downwards, tauting the first traction rope 520. The slider 510 will only be pulled upwards when the first traction rope 520 is manually tightened, thereby pulling the second support member 200 to rotate and adjusting the spray direction of the spray assembly 300.
[0051] Because of the second connecting part 120, the extension direction of the first traction rope 520 is in the same direction as the direction of the slide groove 110, thereby making the displacement of the first traction rope 520 the same as the displacement of the slider 510. The user can roughly judge the displacement of the slider 510 by controlling the displacement of the first traction rope 520, and thus judge the degree of angle adjustment of the second support member 200.
[0052] See Figures 1 to 4 As shown, in some implementations, the first support member 100 is also provided with a scale 610 extending along the extension direction of the slide groove 110, and the first traction rope 520 is connected to a pointer 620, which points to the scale area of the scale 610.
[0053] Since the first traction rope 520 is connected to the pointer 620, when the first traction rope 520 is pulled, the pointer 620 will move synchronously with the movement of the first traction rope 520. As mentioned above, under the limitation of the second connecting part 120, the displacement direction of the first traction rope 520 is the same as the extension direction of the slide groove 110. The displacement length of the first traction rope 520 can be determined based on the displacement of the pointer 620 in the scale area, and thus the rotation angle of the second support member 200 can be analyzed.
[0054] In some implementations, angle information can be marked on the scale area of the ruler 610, and the marked angle information corresponds to the lifting angle of the second support member 200. That is, when the lifting angle of the second support member 200 relative to the first support member 100 is α, the angle α is marked on the scale area corresponding to the pointer 620. This allows the user to determine the current angle between the second support member 200 and the first support member 100 based on the position of the pointer 620 on the ruler 610, and to conveniently control the spray direction of the spray assembly 300 when pulling the first traction rope 520. Moreover, by increasing the number of marked angles on the scale area, the measurement accuracy of the ruler 610 can be improved, allowing for a more accurate determination of the angle between the second support member 200 and the first support member 100, thereby more accurately controlling the spray direction of the spray assembly 300.
[0055] See Figure 1 , Figure 2 and Figure 4 As shown, in some implementations, the slider 510 includes a first limiting part 511 and a second limiting part 512 connected in a first direction. The first limiting part 511 extends out of the second limiting part 512 in a second direction. The first direction and the second direction are perpendicular to the extension direction of the slide groove 110.
[0056] The slide 110 includes a first groove segment and a second groove segment connected in a first direction. The width of the first groove segment in the second direction is greater than the width of the second groove segment in the second direction, such that the slide 110 forms a limiting wall at the connection between the first groove segment and the second groove segment. The first limiting part 511 is slidably installed in the first groove segment, and the second limiting part 512 is slidably installed in the second groove segment, and the first limiting part 511 abuts against the limiting wall.
[0057] like Figure 1 and Figure 4 As shown, the slide 110 along Figure 1 Extending in the left and right directions, the first direction is Figure 1 The top and bottom directions, the second direction is Figure 1 The front and back directions, namely the first direction and the second direction, are perpendicular to the extension direction of the slide groove 110.
[0058] Because the first groove segment and the second groove segment are connected in the first direction, and the width of the first groove segment in the second direction is greater than the width of the second groove segment in the second direction, a T-shaped groove 110 or an L-shaped groove 110 can be formed. For example... Figure 4 As shown, the cross-section of the slide groove 110 is T-shaped. Correspondingly, the cross-section of the slider 510 is also T-shaped. Furthermore, the first limiting part 511 of the slider 510 abuts against the limiting wall formed by the first groove segment and the second groove segment, which can prevent the slider 510 from moving relative to the slide groove 110 in the first direction, thereby improving the stability of the slider 510 and preventing the slider 510 from detaching from the slide groove 110.
[0059] See Figures 1 to 4 As shown, in some implementations, the spray assembly 300 includes a connector 310 and a nozzle 320 connected together. The end of the connector 310 away from the nozzle 320 is detachably connected to a water pipe. A retaining ring 700 is provided on the second support member 200 for the water supply pipe to pass through. The retaining ring 700 and the connector 310 are located on the same side of the second support member 200. Figure 1 (The lower side of the middle).
[0060] When using the separator visual rinsing device of this application, first connect the water pipe to the connector 310 of the spray assembly 300 so that the water pipe can be connected to the nozzle 320 via the connector 310. The amount of water sprayed into the separator can be controlled by opening or closing the nozzle 320. A connecting pipe 330 can be provided between the connector 310 and the nozzle 320 to accommodate the angle between the direction of the connector 310 and the direction of the nozzle 320. In some implementations, the connector 310 can also be integrated into the nozzle 320.
[0061] Because a retaining ring 700 is provided on the second support member 200, and the retaining ring 700 and the interface are located on the same side of the second support member 200, when connecting the water pipe to the connector 310, the water pipe can be easily passed through the retaining ring 700. The retaining ring 700 supports the water pipe, preventing it from sagging, improving the stability of the water pipe, and reducing the difficulty of connecting the water pipe to the connector 310. Furthermore, during use, the support of the water pipe by the retaining ring 700 prevents the water pipe from detaching from the connector 310 due to sagging, thus improving the connection stability between the water pipe and the connector 310.
[0062] See Figure 1 and Figure 2 As shown, in some implementations, the axial direction of the fixing ring 700 is the same as the length direction of the second support member 200, while the spray direction of the nozzle 320 is perpendicular to the length direction of the second support member 200. The nozzle 320 is located on the side of the second support member 200 where the first connecting portion 210 is provided. When the first support member 100 is vertically positioned, and the angle between the second support member 200 and the first support member 100 reaches 180°, the spray direction of the nozzle 320 is horizontal. Subsequently, the first traction rope 520 pulls the slider 510 upwards, causing the second traction rope 530 to lift the second support member 200, allowing the spray direction of the nozzle 320 to gradually rise, thereby cleaning the upper space of the separator.
[0063] Understandably, in some implementations, the nozzle 320 may also be located on the side of the second support 200 opposite to the first connecting portion 210. This causes the spray direction of the nozzle 320 to gradually downward when the first traction rope 520 is pulled upward, thereby cleaning the lower space of the separator.
[0064] See Figure 1 and Figure 2 As shown, in some implementations, the second support member 200 is provided with multiple coaxially arranged retaining rings 700, which are used for the same water pipe to pass through. By using multiple retaining rings 700 to support the water pipe, bending and deformation of the water pipe can be avoided, thereby reducing the risk of the water pipe coming off the joint 310.
[0065] Among them, the fixing rings 700 on the second support member 200 can be arranged at equal intervals, so as to evenly bear the weight of the water pipe when supporting the water pipe, reduce the load on a single fixing ring 700, and extend the service life of the fixing ring 700.
[0066] See Figures 1 to 3 As shown, in some implementations, a fixing ring 700 through which the water supply pipe passes can also be provided on the first support member 100 to further improve the support effect on the water pipe and prevent the water pipe from shaking during use.
[0067] In some implementations, the probe 400 is an explosion-proof probe 400. Using an explosion-proof probe 400 can prevent the generation of electric sparks during use from igniting the combustible gas in the separator, thus improving the safety of the cleaning operation.
[0068] See Figure 1 and Figure 2 As shown, both the first support member 100 and the second support member 200 are rod-shaped structures. Compared with the block structure, the rod-shaped structure can be made longer in the same volume, thereby allowing the spray assembly 300 to extend deeper into the internal chamber of the separator and expand the rinsing range of the visible rinsing device of the separator.
[0069] In this configuration, a hole structure can be provided at the first end of the first support member 100, and a corresponding hole structure can be provided at the second end of the second support member 200. A pin passing through both the first and second ends of the first support member 100 and the second support member 200 is used to rotatably connect the first support member 100 and the second support member 200. Alternatively, a hole structure can be provided at the first end of the first support member 100, and a corresponding shaft structure can be provided at the second end of the second support member 200. The shaft structure at the second end of the second support member 200 is inserted into the hole structure at the first end of the first support member 100, achieving a rotatable connection between the first support member 100 and the second support member 200. Of course, a shaft structure can also be provided at the first end of the first support member 100, and a hole structure at the second end of the second support member 200. The first end of the first support member 100 is inserted into the second end of the second support member 200, achieving a rotatable connection between the first support member 100 and the second support member 200. It is understood that a bearing can be provided between the hole structure and the shaft structure to ensure smooth rotation between the first support member 100 and the second support member 200.
[0070] Although the present invention has been described with reference to preferred embodiments, various modifications can be made thereto and components can be replaced with equivalents without departing from the scope of the invention. In particular, the technical features mentioned in the various embodiments can be combined in any manner, provided there is no structural conflict. The present invention is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A visual rinsing device for a separator, characterized in that, It includes: First support component; The second support member is rotatably connected to one end of the first support member; A spray assembly is mounted on the end of the second support member away from the first support member. The spray assembly is used to communicate with a water pipe to spray water from the water pipe out of the spray assembly. The probe, which is fixed to the second support, is used to photograph the spray area of the spray assembly; as well as An adjustment component is provided, with one side connected to the first support member and the other side connected to the second support member. The adjustment component is used to adjust the included angle between the first support member and the second support member.
2. The separator visual rinsing device according to claim 1, characterized in that, The first support member is provided with a sliding groove, and the extending direction of the sliding groove is perpendicular to the rotation axis of the second support member; The adjustment assembly includes a slider, a first traction rope, and a second traction rope; The slider is slidably mounted in the groove; One end of the first traction rope is fixedly connected to the slider, and pulling the first traction rope can drive the slider to slide along the groove; One end of the second traction rope is fixedly connected to the slider, and the other end of the second traction rope is fixedly connected to the second support member. The second traction rope is configured to pull the second support member to rotate relative to the first support member when the slider slides.
3. The separator visual rinsing device according to claim 2, characterized in that, The first end of the first support member is rotatably connected to the second end of the second support member; The second support member is provided with a first connecting part, and the distance between the first connecting part and the second end of the second support member is a first length S1; A first limiting wall is provided at one end of the slide near the second support member, and the distance between the first limiting wall and the first end of the first support member is a second length S2; The length of the second traction rope is L1, where L1 = S1 + S2.
4. The separator visual rinsing device according to claim 2, characterized in that, The first support member is provided with a second connecting part with a ring structure. The end of the first traction rope away from the slider passes through the second connecting part. The line connecting the second connecting part and the slider is parallel to the extension direction of the groove.
5. The separator visual rinsing device according to claim 2, characterized in that, The first support member is also provided with a scale extending along the extension direction of the slide groove, and the first traction rope is connected to a pointer, which points to the scale area of the scale.
6. The separator visual rinsing device according to claim 2, characterized in that, The slider includes a first limiting part and a second limiting part connected in a first direction, the first limiting part extending out of the second limiting part in a second direction, and the first direction and the second direction being perpendicular to the extension direction of the groove. The chute includes a first chute segment and a second chute segment connected in a first direction. The width of the first chute segment in the second direction is greater than the width of the second chute segment in the second direction, such that the chute forms a limiting wall at the connection between the first chute segment and the second chute segment. The first limiting part is slidably installed in the first chute segment, the second limiting part is slidably installed in the second chute segment, and the first limiting part abuts against the limiting wall.
7. The separator visual flushing device according to any one of claims 1-6, characterized in that, The spray assembly is connected to a connector and a nozzle. The end of the connector away from the nozzle is used for detachable connection with a water pipe. The second support is provided with a fixing ring for the water supply pipe to pass through. The fixing ring and the connector are located on the same side of the second support.
8. The separator visual flushing device according to any one of claims 1-6, characterized in that, The second support member is provided with multiple coaxially arranged fixing rings, which are used for the same water pipe to pass through.
9. The separator visual flushing device according to any one of claims 1-6, characterized in that, The probe is an explosion-proof probe.
10. The separator visual flushing device according to any one of claims 1-6, characterized in that, Both the first support member and the second support member are rod-shaped structures.