Slurry high-boiling residue recovery device
By designing a splitable recycling bin and a flexible rotating device, the problems of low recycling efficiency and insufficient applicability in the existing recycling devices are solved, efficient recycling and space adjustment of different products are achieved, and operating efficiency and applicability are improved.
Patent Information
- Application Number
- CN202421887989.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-06
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-08-06
AI Technical Summary
In the existing recycling device, a single recycling box can only recover one slurry high boiling substance. If another product needs to be recycled, it needs to be replaced, resulting in low operating efficiency; or a single recycling box can be recycled for two products, but the isolation space is locally standardized, inconvenient to adjust, and insufficient applicability.
A recycling device including a recycling box, a rotating component and a supporting component is designed. The recycling box is divided into two independent recycling spaces through a partition, and a hydraulic device and a rotating device are added to the recycling box. The recycling box is raised by a hydraulic device, and the space in the recycling box is positioned by a rotating device and a sensing component to adjust the position of the partition to adapt to the recycling needs of different products.
The problem of low efficiency in the replacement recycling bin for recycling waste in the prior art is solved, which saves working time, improves the efficiency of recycling work, and meets the demand for two different quantities of products. The recycling space is adjusted according to the product output, which improves the applicability of the device.
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Figure CN222860204U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of polysilicon slurry treatment, and in particular to a device for recovering high-boiling substances in the slurry. Background Art
[0002] Polysilicon is a form of elemental silicon. When molten elemental silicon solidifies under supercooling conditions, silicon atoms are arranged into many crystal nuclei in the form of diamond lattices, and slurry high-boiling products belong to its production and processing products. Polysilicon high-boiling products refer to substances formed by boiling during the production of polysilicon. It is mainly composed of alkanes, aromatic hydrocarbons and gaseous silanes.
[0003] As an inevitable by-product in the production of polysilicon, polysilicon slurry is highly harmful to the environment and has certain recovery value for chlorosilane and high-boiling substances. In the prior art, the slurry separates silicon-containing high-boiling substances during the recovery process to obtain a large amount of silicon-containing high-boiling substances. Silicon-containing high-boiling substances have high boiling points and high viscosity and are easily enriched in the system. If the silicon-containing high-boiling substances are not recovered and removed, it is easy to cause blockage of equipment and pipelines.
[0004] A single recovery box in an existing recovery device can be used to recover a high-boiling product in a slurry, and the high-boiling product in the slurry includes solid impurities and metal halides. If another product is to be recovered, the recovery box needs to be replaced, resulting in a waste of time and affecting work efficiency; or a single recovery box can be used to recover two products, but the isolation space is locally standardized, which makes it inconvenient to adjust the space and has insufficient applicability. Utility Model Content
[0005] An embodiment of the present application provides a device for recovering high-boiling materials in slurry, which is used to solve the problem in the prior art that a single recovery box can only recover one type of high-boiling materials in slurry, and if another product is to be recovered, the recovery box needs to be replaced, resulting in longer working time and reduced operating efficiency. Alternatively, a single recovery box can be used to recover two products, but due to the local standardization of the isolation space, it is inconvenient to adjust the space of the recovery box and the applicability is insufficient.
[0006] In order to achieve the above objectives, the embodiments of the present application provide the following technical solutions:
[0007] The present application provides a slurry high-boiling material recovery device, comprising a recovery box (100), a rotating assembly (200) and a supporting assembly (300), wherein a partition (110) parallel to the end surface of the recovery box is arranged in the recovery box (100), and the partition (110) divides the recovery box into two independent recovery spaces;
[0008] The support mechanism (300) comprises: a first support assembly (310) and a second support assembly (320);
[0009] The upper surface of the first support assembly (310) abuts against the bottom of the recovery box (100), and the lower surface is fixedly connected to the upper surface of the second support assembly (320) by fastening bolts;
[0010] The second supporting assembly (320) is provided with a receiving space (321), the receiving space being used to receive the rotating assembly (200), and the rotating assembly (200) being used to drive the first supporting assembly (310) to rotate, thereby driving the recycling box (100) to rotate.
[0011] Optionally, the support mechanism (300) further includes: a third support component (330), the bottom surface of the third support component (330) is provided with a plurality of anti-sliding blocks, the accommodating space (321) runs through the second support component (320), and the third support component (330) is fixedly arranged at the bottom of the accommodating space (321) for supporting the rotating component (200) in the accommodating space (321).
[0012] Optionally, the rotating assembly (200) includes: a hydraulic device (210) and a rotating device (220), and the first supporting assembly (310) includes: a base plate (311), a supporting plate (312) and a damping device (313);
[0013] The hydraulic device (210) and the rotating device (220) are fixedly connected, and the rotating device (220) is arranged on the upper surface of the third supporting assembly (330);
[0014] The upper surface of the support plate (312) abuts against the bottom of the recovery box (100), and the lower surface is fixedly connected to the base plate (311) via the damping device (313);
[0015] The base plate is fixedly connected to the upper surface of the second supporting assembly (320) by fastening bolts;
[0016] The damping device (313) elastically extends under the action of the hydraulic device (210) to lift the support plate (312);
[0017] The rotating device (220) is used to drive the first supporting assembly (310) to rotate when the supporting plate (312) is lifted, thereby driving the recovery box (100) to rotate.
[0018] Optionally, the device further comprises: an adjustment component (400), the adjustment component (400) comprises: an adjustment device (410), a guide block (420), and a guide groove (120) is provided at the bottom of the recovery box (100);
[0019] The guide block (420) is arranged in the guide groove (120), and one end of the guide block is fixedly connected to the partition plate (110), and the other end of the guide block is fixedly connected to the adjustment device (410);
[0020] The adjusting device (410) is used to control the guide block (420) to slide in the guide groove (120) so as to drive the partition plate (110) to move along the direction of the guide groove (120).
[0021] Optionally, the rotating assembly (200) further comprises: at least one card block (230) and at least one sensing assembly (240), and card slots (130) are respectively provided on both sides of the recycling box (100);
[0022] In the case where both the card block (230) and the sensing component (240) are one, the card block (230) is arranged in any one of the two card slots (130), and the sensing component (240) is fixedly connected to the card block (230);
[0023] The card block (230) is used to drive the sensing component (240) to move along the direction of the card slot (130).
[0024] Optionally, the number of the card block (230) and the number of the sensing components (240) are both two;
[0025] The two card blocks (230) are respectively arranged in the two card slots (130), and each card block (230) is fixedly connected to a sensing component (240), and the sensing component (240) is used to sense the recycling situation in the corresponding recycling space.
[0026] Optionally, the support mechanism (300) further comprises: two gravity components (340), wherein the two gravity components (340) are respectively arranged at two ends of the second support component (320) and are fixedly connected to the second support component (320).
[0027] Optionally, the device further comprises: two moving components (500), the two moving components (500) being respectively arranged on the two gravity components (340) and being used for moving the supporting mechanism (300) to drive the recovery box (100) to move.
[0028] Optionally, the moving assembly (500) includes: a moving rail (510), a moving slider (520), a power assembly (530), a fixed bracket (540) and a plurality of moving wheels (550);
[0029] The movable slider (520) is arranged in the movable slide rail (510), one end of the movable slider (520) is fixedly connected to the power assembly (530), and the other end is fixedly connected to the fixed bracket (540), and a plurality of movable wheels (550) are arranged inside the fixed bracket (540);
[0030] The power assembly (530) is used to push the movable slider (520) to move along the direction of the movable slide rail (510), so as to drive the fixed bracket (540) and the movable wheel (550) to move.
[0031] Optionally, the partition (110) comprises: a partition body (111) and two reinforcing plates (112);
[0032] The two reinforcing plates (112) are respectively arranged at the bottom of two end surfaces of the partition body (111), and each reinforcing plate (112) is threadedly connected to a corresponding end surface of the partition body (111).
[0033] The embodiment of the present application provides a device for recovering high-boiling materials in slurry. A recovery box is divided into two independent recovery spaces by a partition (110), and a conversion component (200) is provided on the recovery box to add a hydraulic device (210) and a rotating device (220). When a product is recovered and accepted in one space, if another product needs to be recovered and accepted, the recovery box (100) only needs to be raised by the hydraulic device (210), and the position of one space in the recovery box (100) is swapped with another space by the rotating device (220) in cooperation with the sensing component (240). At the same time, an adjustment component (400) is provided. After the two independent spaces in the recovery box are isolated and formed by the partition (110), the adjustment device (410) can be used to apply a push-pull force to the partition (110) to adjust the size of the inner sides of the two independent spaces. The invention solves the problem of low efficiency in the waste recycling operation by replacing the recycling box in the prior art, saves working time, improves the efficiency of the recycling work, and at the same time can meet the needs of two different quantities of products in the space, adjust the recycling space according to the product output, improves the applicability of the device, and better meets the actual operation needs. BRIEF DESCRIPTION OF THE DRAWINGS
[0034] In order to more clearly illustrate the technical solutions in the embodiments of the utility model or the prior art, the following is a brief introduction to the drawings required for use in the embodiments or the prior art description. Obviously, the drawings described below are some embodiments of the utility model. For ordinary technicians in this field, other drawings can also be obtained based on these drawings without creative work. The drawings here are incorporated into the specification and constitute a part of this specification, showing embodiments that conform to the present application, and together with the specification, are used to explain the principles of the present application.
[0035] Figure 1 A schematic diagram of the structure of a slurry high boiling point recovery device provided in an embodiment of the present application;
[0036] Figure 2 for Figure 1 A schematic structural diagram of the rotating assembly 200;
[0037] Figure 3 for Figure 1 A schematic diagram of the structure of the middle support mechanism 300 and the moving assembly 500;
[0038] Figure 4 for Figure 3 A schematic structural diagram of the first support assembly 310;
[0039] Figure 5 for Figure 1 A schematic diagram of the structure of the middle adjustment component 400 and the recovery box 100;
[0040] Figure 6 for Figure 5 A schematic structural diagram of the middle partition 110.
[0041] The above drawings have shown clear embodiments of the present application, which will be described in more detail later. These drawings and text descriptions are not intended to limit the scope of the present application in any way, but to illustrate the concept of the present application to those skilled in the art by referring to specific embodiments.
[0042] Description of reference numerals:
[0043] 100-recycling bin;
[0044] 110-partition plate; 111-partition plate body; 112-reinforcement plate; 120-guide groove; 130-card slot;
[0045] 200-rotation assembly;
[0046] 210- hydraulic device; 220- rotating device; 230- clamping block; 240- induction component;
[0047] 300-support mechanism;
[0048] 310-first support assembly; 311-base plate; 312-support plate; 313-damping device; 320-second support assembly; 321-accommodating space; 330-third support assembly; 340-gravity assembly;
[0049] 400-adjustment component;
[0050] 410-adjusting device; 420-guide block;
[0051] 500-mobile components;
[0052] 510 - movable slide rail; 520 - movable slider; 530 - power assembly; 540 - fixed bracket; 550 - movable wheel. DETAILED DESCRIPTION
[0053] In order to make the purpose, technical solutions and advantages of the present application clearer, the technical solutions in the present application and how the technical solutions in the present application solve the above-mentioned technical problems will be clearly and completely described below with specific embodiments and in combination with the drawings in the present application. Obviously, the described embodiments are part of the embodiments of the present application, not all of the embodiments. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of this application.
[0054] The terms "first", "second", "third", "fourth", etc. (if any) in the specification and claims of this application and the above-mentioned drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the numbers used in this way can be interchanged where appropriate, so that the embodiments of the application described herein can be implemented in an order other than those illustrated or described herein, for example.
[0055] In the embodiments of the present application, the words "exemplary" or "for example" are used to indicate examples, illustrations or descriptions. Any embodiment or design described as "exemplary" or "for example" in the present application should not be interpreted as being more preferred or more advantageous than other embodiments or designs. Specifically, the use of words such as "exemplary" or "for example" is intended to present related concepts in a specific way.
[0056] As an inevitable by-product in the production of polysilicon, polysilicon slurry is highly harmful to the environment and has certain recycling value for chlorosilane and high-boiling products. A single recycling box in the existing recycling device can recycle one type of slurry high-boiling products, and the slurry high-boiling products include solid impurities and metal halides. If another product is to be recycled, the recycling box needs to be replaced, resulting in a waste of time and affecting the operating efficiency; or a single recycling box can recycle two products, but the isolation space is locally standardized, which is inconvenient to adjust the space and has insufficient applicability.
[0057] Therefore, the embodiment of the present application provides a device for recovering high-boiling materials in slurry, which divides the inside of the recovery box into two independent spaces, sets a recovery material conversion mechanism, and adds a CCD image sensor, a hydraulic cylinder, and a rotating motor to the recovery box. When a product is recovered in one space, if another product needs to be recovered, the recovery box is raised by the hydraulic cylinder, and the position of one space in the recovery box is swapped with another space by the rotating motor in conjunction with the CCD image sensor; and an adjusting partition mechanism is set. After the partition is used to isolate and form two independent spaces in the recovery box, the cylinder can apply a push-pull force to the partition to adjust the size of the inner side of the two independent spaces. The problem of low efficiency in replacing the recovery box to recycle waste materials in the prior art is solved, which saves working time and improves the efficiency of recycling work.
[0058] The technical solution of the utility model is described in detail below in conjunction with the accompanying drawings and specific embodiments. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments.
[0059] like Figure 1 and Figure 3 As shown, an embodiment of the present application provides a recovery device for high-boiling materials in slurry, including a recovery box 100, a rotating assembly 200 and a supporting mechanism 300, wherein the recovery box 100 is provided with a partition 110 parallel to the end face of the recovery box, and the partition 110 divides the recovery box into two independent recovery spaces; the supporting mechanism 300 includes: a first supporting assembly 310 and a second supporting assembly 320; the upper surface of the first supporting assembly 310 abuts against the bottom of the recovery box 100, and the lower surface is fixedly connected to the upper surface of the second supporting assembly 320 by fastening bolts; the second supporting assembly 320 is provided with a accommodating space 321, and the accommodating space is used to accommodate the rotating assembly 200, and the rotating assembly 200 is used to drive the first supporting assembly 310 to rotate, so as to drive the recovery box 100 to rotate.
[0060] In the embodiment of the present application, a partition 110 parallel to the end face of the recovery box is provided inside the recovery box 100. The partition 110 is used to divide the internal space of the recovery box into two independent recovery spaces, which helps to achieve effective stratification or separation according to the physical properties such as density and boiling point of different components in the slurry during the recovery process. The two independent recovery spaces can be used to collect high-boiling substances or impurities of different properties, respectively, thereby improving the accuracy and efficiency of recovery.
[0061] When in use, the rotating assembly 200 is placed in the accommodating space 321 in the second supporting assembly 320, and is used to drive the first supporting assembly 310 and then drive the entire recycling box 100 to rotate. The supporting mechanism 300 is composed of two parts, the first supporting assembly 310 and the second supporting assembly 320. The first supporting assembly 310 can be a damping frame supporting device, and the second supporting assembly 320 can be a fixed supporting device. The first supporting assembly 310 directly abuts against the bottom of the recycling box 100 to provide stable support. The second supporting assembly 320 is provided with an accommodating space 321 inside, which is used to install the rotating assembly 200 and serves as the lower foundation of the entire supporting structure.
[0062] Specifically, the first support assembly 310 and the second support assembly 320 are fixedly connected by fastening bolts, which not only ensures the stability of the structure, but also facilitates later maintenance and adjustment. The support mechanism 300 provides a stable support platform for the recycling box 100, and also provides a storage space in the second support assembly 320, which provides necessary conditions for the installation and operation of the rotating assembly.
[0063] Through the partition design inside the recovery box and the rotational movement of the recovery box, effective stratification and separation of high-boiling materials in the slurry are achieved, thereby improving the recovery efficiency; the design of the support assembly ensures the stability of the recovery box during rotation, preventing a decrease in the recovery effect due to shaking or tilting; the various components are connected in a detachable manner to facilitate subsequent maintenance and replacement.
[0064] like Figure 1 , Figure 2 and Figure 4 As shown, in a possible implementation, the support mechanism 300 also includes: a third support assembly 330, the bottom surface of the third support assembly 330 is provided with a plurality of anti-sliding blocks, the accommodating space 321 runs through the second support assembly 320, and the third support assembly 330 is fixedly arranged at the bottom of the accommodating space 321 for supporting the rotating assembly 200 in the accommodating space 321.
[0065] The rotating assembly 200 includes: a hydraulic device 210 and a rotating device 220, and the first supporting assembly 310 includes: a base plate 311, a supporting plate 312 and a damping device 313; the hydraulic device 210 and the rotating device 220 are fixedly connected, and the rotating device 220 is arranged on the upper surface of the third supporting assembly 330; the upper surface of the supporting plate 312 abuts against the bottom of the recycling box 100, and the lower surface is fixedly connected to the base plate 311 through the damping device 313; the base plate and the upper surface of the second supporting assembly 320 are fixedly connected by fastening bolts; the damping device 313 elastically extends under the action of the hydraulic device 210 to lift the supporting plate 312; the rotating device 220 is used to drive the first supporting assembly 310 to rotate when the supporting plate 312 is lifted, so as to drive the recycling box 100 to rotate.
[0066] The support mechanism 300 further includes a third support assembly 330, which further enhances the stability and carrying capacity of the entire device. The third support assembly 330 is provided with a plurality of anti-sliding blocks on its bottom surface, which can ensure that the device is not easy to slide during operation, thereby increasing the safety of use.
[0067] It can be understood that the third support assembly 330 is fixedly arranged at the bottom of the accommodating space 321, which can serve as a support base for the rotating assembly 200 to ensure the stability of the device. The accommodating space 321 runs through the second support assembly 320, providing a place for the rotating assembly 200 to be installed and operated. The size of the accommodating space can be determined according to the size and movement requirements of the rotating assembly 200, for example, to ensure the smoothness and accuracy of the rotating assembly rotating the recycling box.
[0068] The rotating assembly 200 is composed of a hydraulic device 210 and a rotating device 220. The two parts work together to drive and rotate the recycling box 100. The hydraulic device 210 is used as a power source. The hydraulic device 210 can drive the entire system by generating hydraulic pressure, and is fixedly connected to the rotating device 220 to ensure effective power transmission. The rotating device 220 is arranged on the upper surface of the third support assembly 330 and is a key component for driving the recycling box 100 to rotate. The rotating device 220 can receive power from the hydraulic device 210 and convert it into rotational motion, thereby driving the recycling box 100 to rotate.
[0069] In this embodiment, the first support assembly 310 serves as a direct support part of the recycling box 100 to ensure the stability and adjustability of the device. The base plate 311 serves as the base part of the first support assembly 310. The base plate 311 is fixedly connected to the upper surface of the second support assembly 320 by fastening bolts to ensure the stability of the support structure. The upper surface of the support plate 312 abuts against the bottom of the recycling box 100, providing direct support for the recycling box 100.
[0070] Specifically, the lower surface of the support plate 312 can be fixedly connected to the base plate 311 via the damping device 313 , so that the support plate 312 can be raised and lowered under the action of the hydraulic device 210 .
[0071] Under the action of the hydraulic device 210, the damping device 313 can be elastically extended or shortened, driving the support plate 312 to be lifted or lowered. The height of the recycling box 100 can be adjusted, which helps to maintain the stability of the recycling box 100 during the rotation process.
[0072] When in use, after the space inside the recycling box 100 is divided into two by the partition 110, and after a product is recovered and accepted through one space, under the external control end, the hydraulic device 210 applies a downward force to the third support assembly 330, and after the bottom end surface of the third support assembly 330 contacts the external structure, under the application of continuous force, the recycling box 100 is raised to a certain height, and the rotating device 220 applies a rotational force to the third support assembly 330 to convert the designated position of the recycling box 100, so as to cause another space to swap its position with the above-mentioned space so as to recycle and accept another product.
[0073] like Figure 5 As shown, in a possible implementation, a slurry high-boiling material recovery device also includes: an adjusting component 400, the adjusting component 400 includes: an adjusting device 410, a guide block 420, and a guide groove 120 is arranged at the bottom of the recovery box 100; the guide block 420 is arranged in the guide groove 120, and one end of the guide block is fixedly connected to the partition 110, and the other end is fixedly connected to the adjusting device 410; the adjusting device 410 is used to control the guide block 420 to slide in the guide groove 120, so as to drive the partition 110 to move along the direction of the guide groove 120.
[0074] The adjustment assembly 400 is composed of an adjustment device 410 and a guide block 420, which work together to achieve precise movement of the partition 110. The adjustment device 410 applies a push-pull force to the guide block 420, and the guide block 420 slides in the guide groove 120 to push and pull the partition 110 to change the isolation space inside the recycling box 100.
[0075] It is understandable that the adjusting device 410 can provide power and control the sliding of the guide block 420 in the guide groove 120. The adjusting device 410 can be manually operated, such as a handle, a knob, etc., or can be automatically controlled, such as a motor, a hydraulic cylinder, etc., depending on the use environment and operation requirements of the recovery device. Among them, the adjusting device 410 can control the position of the guide block 420 so that the partition 110 moves to a preset position.
[0076] The guide block 420 can be closely matched in the guide groove 120 at the bottom of the recovery box 100. Its shape and size can match the guide groove 120 to ensure that it remains stable and will not fall off the track during the sliding process.
[0077] Specifically, one end of the guide block 420 is fixedly connected to the partition 110 , and the other end is fixedly connected to the adjustment device 410 , so that the adjustment device 410 can drive the partition 110 to move along the guide groove 120 by controlling the sliding of the guide block 420 .
[0078] The guide groove 120 may be one or more grooves disposed at the bottom of the recycling box 100 for guiding the sliding of the guide block 420. The guide groove 120 ensures that the guide block 420 will not be obstructed during the sliding process and can maintain a stable motion trajectory. In addition, the length and shape of the guide groove 120 can be customized according to the requirements of the internal space of the recycling box 100 so as to adjust the position of the partition 110 within the maximum range.
[0079] The position of the partition 110 can be easily adjusted by the adjustment component 400 to meet the needs of recovering different types of high-boiling materials in slurry. For example, when materials of different densities need to be separated, the size of the separation space inside the recovery box 100 can be changed by adjusting the position of the partition 110, thereby achieving a more efficient separation effect.
[0080] Specifically, after the partition 110 forcefully divides the two spaces in the recycling box 100, one space corresponds to the recycling of one product. When the quantity of one product is large and the quantity of the other is small, the adjusting device 410 automatically applies a push-pull force to the partition 110 under the external control end. Then, the guide block 420 slides in the guide groove to drive the partition 110 to move accordingly. At this time, the storage area inside one space becomes larger, while the storage area inside the other space becomes smaller, so as to recycle and accept the corresponding products.
[0081] like Figure 2As shown, in a possible implementation, the rotating component 200 also includes: at least one card block 230 and at least one sensing component 240, and the recycling box 100 is respectively provided with card slots 130 on both sides; when the card block 230 and the sensing component 240 are both one, the card block 230 is set in any one of the two card slots 130, and the sensing component 240 is fixedly connected to the card block 230; the card block 230 is used to drive the sensing component 240 to move along the direction of the card slot 130.
[0082] The card block (230) and the induction component (240) are introduced into the rotating component (200) to improve the stability and safety of the recycling box (100) during the rotation process. The card block (230) can be embedded in the card slots (130) arranged on both sides of the recycling box (100). In the case of only one card block (230), it can be installed in any one of the two card slots (130), which can be adjusted according to design requirements and operational convenience.
[0083] Specifically, the card block (230) can be fixed in the card slot (130), and can also move along the direction of the card slot (130) when needed. The movement of the card block (230) can be used to trigger the sensing component 240 to work at a specific position.
[0084] It can be understood that the sensing component (240) is fixedly connected to the card block (230), and the sensing component (240) can move along with the movement of the card block (230), and can detect the rotation position or angle of the recycling box (100).
[0085] During use, the sensing component (240) can monitor and record the rotation state of the recycling box (100), and various sensor technologies can be used, such as position sensors, angle sensors, etc. By transmitting these sensor data to the control system, the rotation of the recycling box (100) can be accurately controlled, and an alarm can be triggered or the rotation can be stopped when necessary to prevent accidents.
[0086] It should be noted that the sensing component (240) can improve the safety and operating efficiency of the recycling device. For example, it can be used to monitor whether the recycling box (100) has rotated to a preset position, thereby triggering the next operation, such as discharging high-boiling substances, replacing filter media, etc. At the same time, it can also be used to prevent the recycling box (100) from exceeding the safety range or colliding during the rotation process. The introduction of the block (230) and the sensing component (240) provides stability and safety for the rotating component (200) and enhances the monitoring and control capabilities of the rotation state of the recycling box (100).
[0087] like Figure 2As shown, in a possible implementation, the number of the card blocks (230) and the number of the sensing components (240) are both two; the two card blocks (230) are respectively arranged in two card slots (130), and each card block (230) is fixedly connected to a sensing component (240), and the sensing component (240) is used to sense the recycling situation in the corresponding recycling space.
[0088] The number of the card blocks (230) and the sensing components (240) are designed to be two, which can provide more comprehensive and accurate control and monitoring functions. The two card blocks (230) are respectively arranged in the card slots (130) on both sides of the recycling box (100). The balance and stability of the recycling box (100) during the rotation process can be maintained to prevent vibration or deviation caused by the center of gravity shift. Each card block (230) is fixedly connected to a sensing component (240), that is, the two sensing components (240) correspond to two different areas or recycling spaces of the recycling box (100).
[0089] It can be understood that the sensing component (240) can monitor and record the recovery status in the corresponding recovery space in real time, for example, it can monitor the concentration, liquid level, flow rate and other parameters of high boiling points, and detect whether there are any abnormalities in the recovery process.
[0090] During use, the data collected by the sensing component (240) can be used to evaluate the recycling efficiency and quality, and make adjustments as needed. For example, if the recycling efficiency of a certain recycling space decreases or an abnormality occurs, the control system can automatically adjust the rotation speed, tilt angle or other operating parameters to optimize the recycling effect. At the same time, the sensing component (240 can also be set up with an alarm system, so as to promptly notify the operator to take corresponding measures when a serious abnormality is detected.
[0091] The two clamping blocks (230) and the two sensing components (240) can ensure that the rotating component (200) can stably drive the recycling box (100) to rotate, and can monitor and evaluate various parameters and conditions in the recycling process in real time.
[0092] like Figure 3 As shown, in a possible implementation, the support mechanism (300) further includes: two gravity components (340), wherein the two gravity components (340) are respectively arranged at two ends of the second support component (320) and fixedly connected to the second support component (320).
[0093] The two gravity components (340) are installed at two ends of the second support component (320) and are firmly fixedly connected to the second support component (320).
[0094] It is understandable that the gravity component (340) can increase the weight of the entire support mechanism (300), thereby lowering its center of gravity and improving overall stability. Since the recycling box (100) and its internal materials will generate dynamic torque when rotating, the setting of the gravity component (340) can balance these torques and reduce vibration or offset caused by unbalanced torque. The gravity component (340) can also play a role in auxiliary positioning, ensuring that the recycling box (100) can stop accurately when rotating to a specific position, thereby improving the accuracy of the operation. The gravity component (340) can be made of a material with high density and good stability, for example, to ensure that it can effectively increase the weight of the support mechanism (300) and lower the center of gravity.
[0095] like Figure 1 As shown, in a possible implementation, a slurry high-boiling material recovery device further includes two moving components (500), and the two moving components (500) are respectively arranged on the two gravity components (340) and are used to move the supporting mechanism (300) to drive the recovery box (100) to move.
[0096] The moving assembly (500) enables the support mechanism (300) and the recycling box (100) thereon to move within the working area. The movement may be linear, such as sliding along a track, or rotational, such as rotating through wheels or tracks, etc., and there is no limitation on this.
[0097] It can be understood that by installing the moving assembly (500) on the gravity assembly (340), the weight and stability of the gravity assembly (340) can be used to enhance the overall balance during the movement and reduce the possibility of vibration and deviation.
[0098] During use, by installing two moving components (500), the support mechanism (300) can have better stability and flexibility during movement. The two components can work together to jointly undertake the movement task, or they can act independently when necessary, so as to better cope with complex movement requirements or environmental changes.
[0099] like Figure 2As shown, in a possible implementation, the moving component (500) includes: a moving rail (510), a moving slider (520), a power component (530), a fixed bracket (540) and a plurality of moving wheels (550); the moving slider (520) is arranged in the moving rail (510), one end of the moving slider (520) is fixedly connected to the power component (530), and the other end is fixedly connected to the fixed bracket (540), and a plurality of moving wheels (550) are arranged on the inner side of the fixed bracket (540); the power component (530) is used to push the moving slider (520) to move along the direction of the moving rail (510) to drive the fixed bracket (540) and the moving wheels (550) to move.
[0100] The power assembly (530) applies a downward force to the movable slider (520), and the movable slider (520) slides in the movable slide rail (510), thereby driving the fixed bracket (540) to move downward. After the movable wheel 550 contacts the external structure, a pushing force is applied to move the recycling box.
[0101] It is understandable that the movable slide rail (510) can provide a guide path for the movable slider (520) to ensure that it can maintain a straight line or a preset trajectory during the movement. The movable slider (520) is a component connecting the power component (530) and the fixed bracket (540). It slides along the movable slide rail (510), thereby driving the displacement of the entire movable component. It should be noted that the slider can be designed with a sliding surface with a low friction coefficient to reduce resistance during movement.
[0102] The power assembly (530) is the power source of the mobile assembly (500), and can provide the necessary thrust or pulling force to enable the mobile slider (520) to move along the mobile slide rail (510). The power assembly can be, for example, a driver in the form of a motor, a cylinder, a hydraulic cylinder, etc. The fixed bracket (540) is a structural component that supports and fixes multiple mobile wheels (550). The fixed bracket 540 can be, for example, a bracket such as a U-shaped frame that supports the installation of the mobile wheels 550. The fixed bracket 540 connects the mobile wheels 550 with the mobile slider (520) and the power assembly (530) to form a stable mobile platform. The mobile wheels (550) are components that support the entire mobile assembly (500) and the load thereon (such as the support mechanism 300 and the recycling box 100). The mobile wheels can contact the ground or the track to achieve rolling movement and drive the device to move.
[0103] Specifically, when the power assembly (530) is started, it pushes the moving slider (520) to move along the moving rail (510). Since the moving slider (520) is fixedly connected to the fixed bracket (540), the fixed bracket (540) and the moving wheels (550) thereon will also move accordingly. The moving wheels (550) are in contact with the ground or the track to achieve rolling movement, thereby driving the entire support mechanism (300) and the recycling box (100) to move. By accurately controlling the output of the power assembly (530), the precise positioning and stable movement of the moving assembly (500) can be achieved.
[0104] like Figure 5 and Figure 6 In a possible implementation, the partition (110) includes: a partition body (111) and two reinforcing plates (112); the two reinforcing plates (112) are respectively arranged at the bottom of two end surfaces of the partition body (111), and each reinforcing plate (112) is threadedly connected to the corresponding end surface of the partition body (111).
[0105] The partition (110) includes a partition body (111) and two reinforcing plates (112). The reinforcing plates 112 can enhance the overall strength and stability of the partition. The reinforcing plates can be arranged at the bottom of the two end surfaces of the partition body 111, for example.
[0106] The partition body (111) is the main part of the partition, and can be made of metal, plastic or other strong materials, for example, without limitation. The partition body provides the basic shape and structural support of the partition, and divides the recycling box 100 into two independent spaces. Two reinforcing plates 112 are respectively installed at the bottom of the two end surfaces of the partition body (111), which can further enhance the strength and rigidity of the partition at key positions such as the bottom section, and prevent the partition body 111 from being deformed or damaged when subjected to external forces. The reinforcing plates 112 can be made of metal, composite materials or other high-strength materials, for example, and the present solution does not limit the material of the reinforcing plates.
[0107] Specifically, each reinforcing plate (112) is connected to the corresponding end face of the partition body (111) through a threaded connection, which is convenient for installation and disassembly. The threaded connection can have a certain pre-tightening force, which helps to maintain close contact between the reinforcing plate 112 and the partition body 111, thereby enhancing the overall connection strength and stability.
[0108] During use, reinforcing plates 112 are added to the bottom of the two end surfaces of the partition body 111, and they are fixed together by threaded connection, which can improve the overall strength and stability of the partition and can be used in situations where it needs to withstand greater external forces or requires higher stability.
[0109] In summary, the embodiment of the present application provides a device for recovering high-boiling materials in slurry. The recovery box is divided into two independent recovery spaces by a partition (110), and a conversion assembly (200) is provided on the recovery box to add a hydraulic device (210) and a rotating device (220). The recovery box (100) is raised by the hydraulic device (210), and the positions of the two independent spaces in the recovery box (100) are swapped by cooperating with the sensing assembly (240) through the rotating device (220). At the same time, an adjustment assembly (400) is provided, and a push-pull force is applied to the partition (110) by the adjustment device (410), so that the sizes of the two independent spaces can be adjusted. The problem of low efficiency in the prior art of replacing the recovery box to recycle waste is solved, working time is saved, and the efficiency of the recycling work is improved. At the same time, the demand for two different quantities of products in the space can be met, and the recovery space is adjusted according to the product output, thereby improving the applicability of the device and better meeting the actual operation needs.
[0110] So far, the technical solution of the present application has been described in conjunction with the preferred embodiments shown in the accompanying drawings. However, it is easy for those skilled in the art to understand that the protection scope of the present application is obviously not limited to these specific embodiments, and the above embodiments are only used to illustrate the technical solution of the present application rather than to limit it. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or replace some or all of the technical features therein by equivalents. However, these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present application.
[0111] Those skilled in the art will readily appreciate other embodiments of the present application after considering the description and practicing the contents disclosed herein. The present application is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The present application is intended to cover any modification, use or adaptation of the present application, which follows the general principles of the present application and includes common knowledge or customary technical means in the art that are not disclosed in the present application. The description and embodiments are only considered as exemplary, and the scope of the present application is limited only by the appended claims.
Claims
1. A device for recovering high-boiling substances from slurry, characterized in that: It comprises a recycling box (100), a rotating assembly (200) and a supporting mechanism (300); a partition (110) parallel to the end surface of the recycling box is arranged in the recycling box (100); the partition (110) divides the recycling box into two independent recycling spaces; The support mechanism (300) comprises: a first support assembly (310) and a second support assembly (320); The upper surface of the first support assembly (310) abuts against the bottom of the recovery box (100), and the lower surface is fixedly connected to the upper surface of the second support assembly (320) by fastening bolts; The second supporting assembly (320) is provided with a receiving space (321), the receiving space being used to receive the rotating assembly (200), and the rotating assembly (200) being used to drive the first supporting assembly (310) to rotate, thereby driving the recycling box (100) to rotate.
2. The device according to claim 1, characterized in that The support mechanism (300) further comprises: a third support assembly (330), the bottom surface of the third support assembly (330) being provided with a plurality of anti-sliding blocks, the accommodating space (321) penetrating the second support assembly (320), the third support assembly (330) being fixedly arranged at the bottom of the accommodating space (321) for supporting the rotating assembly (200) in the accommodating space (321).
3. The device according to claim 2, characterized in that The rotating assembly (200) comprises: a hydraulic device (210) and a rotating device (220); the first supporting assembly (310) comprises: a base plate (311), a supporting plate (312) and a damping device (313); The hydraulic device (210) and the rotating device (220) are fixedly connected, and the rotating device (220) is arranged on the upper surface of the third supporting assembly (330); The upper surface of the support plate (312) abuts against the bottom of the recovery box (100), and the lower surface is fixedly connected to the base plate (311) via the damping device (313); The base plate is fixedly connected to the upper surface of the second supporting assembly (320) by fastening bolts; The damping device (313) elastically extends under the action of the hydraulic device (210) to lift the support plate (312); The rotating device (220) is used to drive the first supporting assembly (310) to rotate when the supporting plate (312) is lifted, thereby driving the recovery box (100) to rotate.
4. The device according to claim 3, characterized in that The device further comprises: an adjustment component (400), wherein the adjustment component (400) comprises: an adjustment device (410) and a guide block (420), and a guide groove (120) is provided at the bottom of the recovery box (100); The guide block (420) is arranged in the guide groove (120), and one end of the guide block is fixedly connected to the partition plate (110), and the other end of the guide block is fixedly connected to the adjustment device (410); The adjusting device (410) is used to control the guide block (420) to slide in the guide groove (120) so as to drive the partition plate (110) to move along the direction of the guide groove (120).
5. The device according to claim 3, characterized in that The rotating assembly (200) further comprises: at least one card block (230) and at least one sensing assembly (240), and card slots (130) are respectively arranged on both sides of the recycling box (100); In the case where both the card block (230) and the sensing component (240) are one, the card block (230) is arranged in any one of the two card slots (130), and the sensing component (240) is fixedly connected to the card block (230); The card block (230) is used to drive the sensing component (240) to move along the direction of the card slot (130).
6. The device according to claim 5, characterized in that The number of the card blocks (230) and the number of the sensing components (240) are both two; The two card blocks (230) are respectively arranged in the two card slots (130), and each card block (230) is fixedly connected to a sensing component (240), and the sensing component (240) is used to sense the recycling situation in the corresponding recycling space.
7. The device according to claim 2, characterized in that The support mechanism (300) further comprises: two gravity components (340), wherein the two gravity components (340) are respectively arranged at two ends of the second support component (320) and are fixedly connected to the second support component (320).
8. The device according to claim 7, characterized in that The device further comprises: two moving components (500), the two moving components (500) being respectively arranged on the two gravity components (340) and being used for moving the supporting mechanism (300) to drive the recovery box (100) to move.
9. The device according to claim 8, characterized in that The moving assembly (500) comprises: a moving rail (510), a moving slider (520), a power assembly (530), a fixed bracket (540) and a plurality of moving wheels (550); The movable slider (520) is arranged in the movable slide rail (510), one end of the movable slider (520) is fixedly connected to the power assembly (530), and the other end is fixedly connected to the fixed bracket (540), and a plurality of movable wheels (550) are arranged inside the fixed bracket (540); The power assembly (530) is used to push the movable slider (520) to move along the direction of the movable slide rail (510), so as to drive the fixed bracket (540) and the movable wheel (550) to move.
10. The device according to claim 1, characterized in that The partition (110) comprises: a partition body (111) and two reinforcing plates (112); The two reinforcing plates (112) are respectively arranged at the bottom of two end surfaces of the partition body (111), and each reinforcing plate (112) is threadedly connected to a corresponding end surface of the partition body (111).