Adjustable heat pump concentration auxiliary flow dividing device
Through the adjustable heat pump concentration auxiliary shunt device, the driving motor drives the twisting dragon and the rotation of specific holes to achieve the flow ratio adjustment. Combined with the sealing and cleaning mechanism, the problems of fine shunt, blockage, and difficulty in cleaning in the existing devices are solved, and the shunt efficiency and equipment stability are improved.
Patent Information
- Application Number
- CN202510846850.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-08-08
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When the existing heat pump concentration device treats high solid content, easy crystallization or viscous slurry, it is difficult to achieve fine and continuous adjustment of the flow rate and diverting ratio of the liquid component. The solid-liquid separation effect is limited, it is easy to block, it is difficult to clean and maintain, the liquid inlet interface is easy to loosen and leak, and the residue collection box is inconvenient to operate.
The adjustable heat pump concentration auxiliary diversion device is adopted to drive the liquid discharge frame of the twisted dragon and the specific holes in the shape of the holes, which achieves accurate and continuous adjustment of the diversion ratio. It is equipped with a sealing mechanism and a cleaning mechanism. Combined with the slag collection frame design, it can efficiently separate solid impurities and reduce the risk of blockage; use hollow balls to rotate and spray cleaning liquid to strongly erode internal components, simplify maintenance.
It realizes accurate and continuous adjustment of the diverting ratio, significantly reduces the risk of blockage, improves solid-liquid separation efficiency, simplifies cleaning and maintenance, ensures stable operation of the equipment, prevents loose and leaks from the liquid inlet interface, and is flexible and convenient to operate.
Smart Images

Figure CN120437658A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of heat pump concentration processing, in particular to an adjustable heat pump concentration auxiliary diversion device. Background Art
[0002] In heat pump-driven concentration processes, especially when dealing with high-solids content, easily crystallized or viscous slurries, the performance requirements for the diversion device are particularly stringent. Existing technologies face multiple challenges: traditional diversion structures often find it difficult to achieve fine and continuous adjustment of the liquid component flow rate and diversion ratio, resulting in poor concentration efficiency and energy waste; the solid-liquid separation effect is limited, and the device is prone to frequent shutdown and cleaning due to impurity blockage or crystallization; the internal flow channels of the equipment are complex, making cleaning and maintenance difficult, time-consuming and labor-intensive, and there are dead corners; the key liquid inlet interface is prone to loosening and leakage under high load or pulsating conditions, affecting long-term stable operation; at the same time, the replacement and internal inspection of the slag collection box usually require complex disassembly, which is inconvenient to operate and may damage the equipment sealing.
[0003] Therefore, in order to solve the above problems, an adjustable heat pump concentration auxiliary diversion device is now developed. Summary of the Invention
[0004] In order to overcome the shortcomings of the existing devices, the present invention provides an adjustable heat pump concentration auxiliary diversion device.
[0005] The technical solution of the present invention is: an adjustable heat pump concentration auxiliary diversion device, comprising:
[0006] Mounting plate;
[0007] A diverter box, the diverter box is mounted on the upper side of the mounting plate;
[0008] A drive motor, the drive motor being mounted on the upper left side of the mounting plate;
[0009] A liquid inlet pipe, the liquid inlet pipe being installed on the upper right side of the diversion box;
[0010] a first liquid outlet frame, the first liquid outlet frame being rotatably mounted on the left side of the diversion box and connected to the output shaft of the drive motor;
[0011] a second liquid outlet frame, the second liquid outlet frame being installed on the left side of the diversion box, and the first liquid outlet frame being located inside the second liquid outlet frame;
[0012] a liquid outlet pipe, the liquid outlet pipe being installed at the lower side of the diversion box;
[0013] A slag collecting frame is placed on the upper right side of the mounting plate.
[0014] Furthermore, the first liquid outlet frame includes an auger, a first liquid outlet hole and a second liquid outlet hole. The auger is installed on the outside of the first liquid outlet frame. The first liquid outlet hole is a circular hole, and the second liquid outlet hole is a square hole.
[0015] Furthermore, the second liquid outlet frame includes a third liquid outlet hole and a slag outlet. The third liquid outlet hole is a rectangular hole and is arranged on the outer surface of the second liquid outlet frame. The slag outlet is arranged between the second liquid outlet frame and the first liquid outlet frame.
[0016] Furthermore, a sealing mechanism is also included, and the sealing mechanism includes:
[0017] A double-axis lead screw motor is installed at the bottom of the diverter box;
[0018] A guide rod, the guide rod being mounted on the top of the diverter box;
[0019] A sealing frame, wherein the sealing frame is slidably mounted between the guide rods and is threadedly connected to the output shaft of the dual-axis screw motor;
[0020] Sealing strips are provided inside the sealing frame.
[0021] Furthermore, an auxiliary cleaning mechanism is also included, and the auxiliary cleaning mechanism includes:
[0022] a rotating motor, the rotating motor being mounted on the liquid outlet pipe;
[0023] A connecting pipe installed between the liquid outlet pipes;
[0024] A hollow ball is rotatably installed in the connecting pipe, and the hollow ball is connected to the corresponding output shaft of the rotating motor.
[0025] Furthermore, an opening and closing mechanism is also included, and the opening and closing mechanism includes:
[0026] A side door, the side door being rotatably mounted on the right side of the diverter box;
[0027] an anti-slip cover, the anti-slip cover being mounted on the handle of the side door;
[0028] A locking member is installed between the diverter box and the side door and is used to lock the side door.
[0029] Furthermore, a stabilizing component is also included, and the stabilizing component includes:
[0030] A flange, which is installed inside the diversion box and is used to fix the liquid inlet pipe;
[0031] A reinforcing rib is installed on the flange.
[0032] Furthermore, it also includes a guide structure, which is installed on the upper right side of the installation plate and is slidably connected to the slag collecting frame.
[0033] Furthermore, the slag outlet corresponds to the position of the slag collecting frame.
[0034] Furthermore, a sealing ring is installed at the opening of the hollow ball.
[0035] By adopting the above technical solution, the beneficial effects of the present invention are:
[0036] 1. This invention uses a drive motor to rotate a first liquid outlet frame equipped with an auger and a specifically shaped hole within a fixed second liquid outlet frame. The auger effectively transports material and prevents sedimentation and clogging. The relative motion of the rotating hole and the fixed rectangular hole creates a dynamic flow channel, enabling precise and continuous adjustment of the diversion ratio. Combined with the design of the slag outlet and the slag collection frame below, it efficiently separates and collects solid impurities, significantly reducing the risk of clogging.
[0037] 2. The present invention drives the hollow ball with a sealing ring in the connecting pipe to rotate and spray cleaning liquid through a rotating motor, which strongly flushes the internal key components and flow channels. It combines turbulence and centrifugal effects to efficiently remove crystals and residues, significantly simplifying maintenance and avoiding the tediousness and risks of manual disassembly and cleaning. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0039] Figure 2 It is a schematic diagram of a first partial cross-sectional three-dimensional structure of the present invention.
[0040] Figure 3 It is a schematic diagram of a second partial cross-sectional three-dimensional structure of the present invention.
[0041] Figure 4 It is a partial cross-sectional three-dimensional structural schematic diagram of the sealing mechanism of the present invention.
[0042] Figure 5 It is a partial three-dimensional structural diagram of the sealing mechanism of the present invention.
[0043] Figure 6 It is a structural schematic diagram of the sealing mechanism of the present invention.
[0044] Figure 7 This is a schematic diagram of a first partial cross-sectional three-dimensional structure of the auxiliary cleaning mechanism of the present invention.
[0045] Figure 8This is a schematic diagram of a second partial cross-sectional three-dimensional structure of the auxiliary cleaning mechanism of the present invention.
[0046] Figure 9 It is a schematic diagram of the three-dimensional structure of the opening and closing mechanism of the present invention.
[0047] Figure 10 It is a partial cross-sectional three-dimensional structural schematic diagram of the stabilizing component of the present invention.
[0048] Figure 11 It is a schematic diagram of the three-dimensional structure of the guide structure of the present invention.
[0049] In the accompanying drawings: 1-mounting plate, 2-diversion box, 3-drive motor, 4-liquid inlet pipe, 5-first liquid outlet frame, 51-auger, 52-first liquid outlet hole, 53-second liquid outlet hole, 6-second liquid outlet frame, 61-third liquid outlet hole, 62-slag outlet, 7-liquid outlet pipe, 8-slag collecting frame, 9-sealing mechanism, 91-dual-axis screw motor, 92-guide rod, 93-sealing frame, 94-sealing strip, 10-auxiliary cleaning mechanism, 101-rotating motor, 102-connecting pipe, 103-hollow ball, 104-sealing ring, 11-opening and closing mechanism, 111-side door, 112-anti-slip sleeve, 113-locking member, 12-stabilizing component, 121-flange, 122-reinforcement rib, 13-guide structure. DETAILED DESCRIPTION
[0050] The present invention will be described in detail below with reference to the accompanying drawings and specific embodiments.
[0051] Example 1
[0052] An adjustable heat pump concentration auxiliary diversion device, such as Figures 1-11 As shown, it includes a mounting plate 1, a diverter box 2 mounted on the upper side of the mounting plate 1, a drive motor 3 mounted on the upper left side of the mounting plate 1, a liquid inlet pipe 4 mounted on the upper right side of the diverter box 2, a first liquid outlet frame 5 rotatably mounted on the inner left side of the diverter box 2, the first liquid outlet frame 5 is connected to the output shaft of the drive motor 3, the second liquid outlet frame 6 is mounted on the inner left side of the diverter box 2, the first liquid outlet frame 5 is located inside the second liquid outlet frame 6, and the liquid outlet pipe 7 is mounted on the lower side of the diverter box 2; a slag collecting frame 8, the slag collecting frame 8 is placed on the upper right side of the mounting plate 1.
[0053] The first liquid outlet frame 5 includes an auger 51 , a first liquid outlet hole 52 and a second liquid outlet hole 53 . The auger 51 is installed outside the first liquid outlet frame 5 . The first liquid outlet hole 52 is a circular hole, and the second liquid outlet hole 53 is a square hole.
[0054] The second liquid outlet frame 6 includes a third liquid outlet hole 61 and a slag outlet 62. The third liquid outlet hole 61 is a rectangular hole and is arranged on the outer surface of the second liquid outlet frame 6. The slag outlet 62 is arranged between the second liquid outlet frame 6 and the first liquid outlet frame 5. The slag outlet 62 corresponds to the position of the slag collecting frame 8.
[0055] It also includes a sealing mechanism 9, which includes a double-axis screw motor 91. The double-axis screw motor 91 is installed at the bottom of the diverter box 2, and the guide rod 92 is installed at the top of the diverter box 2. The sealing frame 93 is slidably installed between the guide rods 92. The sealing frame 93 is threadedly connected to the output shaft of the double-axis screw motor 91, and a sealing strip 94 is provided on the inner side of the sealing frame 93.
[0056] It should be noted that when the adjustable heat pump concentration auxiliary diversion device is working, the high-temperature concentrated slurry or solid-liquid mixture to be processed is first stably input into the internal cavity of the diversion box 2 through the liquid inlet pipe 4 arranged on the upper right side of the diversion box 2. The core power of the device comes from the drive motor 3 firmly mounted on the upper left side of the mounting plate 1. After starting, it directly drives the key diversion component located on the left side of the diversion box 2 in a coaxial nested manner, namely the first liquid outlet frame 5, to rotate continuously through the output shaft. The design of this first liquid outlet frame 5 is particularly sophisticated, and holes of specific shapes are distributed on its outer wall, namely the first liquid outlet hole 52 with a circular cross-section and the second liquid outlet hole 53 with a square cross-section. At the same time, a crucial auger 51 structure is also installed on its outer surface. The structure is that the rotation of the first liquid outlet frame 5 drives the outer auger 51 to rotate synchronously, which is similar to a built-in single-screw conveyor, exerting a controllable axial propulsion force on the slurry flowing into the diversion box 2, driving the solid slurry to be thrown out from the interlayer area between the first liquid outlet frame 5 and the second liquid outlet frame 6 to be spirally conveyed in the downstream direction. This conveying process not only realizes the homogenization and directional flow of the slurry, but its squeezing effect can also produce a preliminary pre-concentration effect on the slurry and help prevent the deposition of particulate matter. During the outer rotation of the first liquid outlet frame 5, the first liquid outlet holes 52 (circular) and the second liquid outlet holes 53 (square) distributed on its surface continuously interact with the third liquid outlet hole 61 with a rectangular cross-section opened on the surface of the fixed second liquid outlet frame 6. Regarding movement, as the first liquid outlet frame 5 continues to rotate, the relative positions and overlapping states of the three groups of holes (the first circular hole, the second square hole and the third rectangular hole of the external second liquid outlet frame 6) undergo periodic or continuous dynamic changes, which are specifically manifested as follows: when the first circular hole or the second square hole on the first liquid outlet frame 5 is completely or partially overlapped and aligned with the third rectangular hole on the second liquid outlet frame 6 during the rotation process, an open channel is formed to allow the liquid component in the slurry to flow out. Through these real-time changing overlapping areas of the holes, the liquid flows out from the inside of the first liquid outlet frame 5 in turn through the third rectangular hole on the wall of the second liquid outlet frame 6, and finally converges to the main liquid outlet pipe 7 located on the lower side of the diversion box 2 to be collected. This method uses relative rotation to dynamically adjust the effective flow The mechanism of hole area and position realizes the precise and continuously adjustable diversion ratio control function, that is, by changing the speed or running time of the driving motor 3, the flow rate and characteristics of the concentrated slurry flowing out of the main liquid outlet pipe 7 per unit time can be indirectly adjusted. At the same time, the separation and collection of solid phase impurities are carried out in parallel with the liquid fractionation process: due to the precise axial gap designed between the first liquid outlet frame 5 and the second liquid outlet frame 6, the gap constitutes the main removal channel for high-density and large-particle-size impurities such as solid residues and crystal particles in the process fluid - the slag outlet 62. These solid impurities that cannot pass through the above-mentioned variable-opening liquid outlet holes during the slurry transportation and pre-concentration process, or are forced to be pushed and separated into the gap between the two frames due to gravity sedimentation and the extrusion of the auger 51,The solid matter separated by the slag collecting frame 8 is collected, stored and cleaned conveniently. In order to further enhance the reliability of the operation and the flexibility of operation, an advanced sealing mechanism 9 is also integrated. The core component of the sealing mechanism 9 is a double-axis screw motor 91 installed at the bottom of the diverter box 2. When it is in operation, it drives the output screws at both ends to rotate synchronously. There is a screw threaded fitting relationship formed with the output screw of the double-axis screw motor 91. A sealing frame 93 is slidably installed inside the diverter box 2 and its stroke is precisely constrained by a parallel guide rod 92 arranged on the top of the diverter box 2. When the dual-axis screw motor 91 receives a control signal and starts, it drives the sealing frame 93 to precisely translate along the guide rod 92. A flexible, heat-resistant and corrosion-resistant sealing strip 94 is installed on the inner periphery of the sealing frame 93. When the process requires completely cutting off the diverter path (i.e., cleaning the interior), the dual-axis screw motor 91 can drive the sealing frame 93 to translate to a position where its inner sealing strip 94 fits tightly or even completely covers the outer wall of the second liquid outlet frame 6 (covering the third rectangular liquid outlet hole thereon), instantly realizing the outlet The liquid hole is reliably sealed, thereby completely cutting off the channel for the slurry to flow out of the liquid outlet, relying on the internal liquid backwash treatment. On the contrary, when it is necessary to restore the diversion function or adjust its sealing degree to match different working conditions, the dual-axis screw motor 91 can run in the opposite direction, driving the sealing frame 93 with the sealing strip 94 to withdraw, and gradually releasing the covering and sealing of the third liquid outlet hole 61. In summary, the device forms a relative motion through the rotation of the first liquid outlet frame 5 and the static fixation of the second liquid outlet frame 6, and utilizes the dynamic overlap and dislocation of the holes of different shapes thereon formed in the relative motion to accurately and continuously control the size and flux of the outflow channel of the liquid phase components, thereby realizing an adjustable diversion. The core function of the auger 51 is supplemented by the forced slurry conveying and pre-concentration effects to enhance separation efficiency. The cleverly designed inter-frame gap serves as a slag outlet 62 to efficiently discharge solid impurities to the slag collection frame 8. Furthermore, the translation mechanism of the sealing frame 93, precisely controlled by a dual-axis screw motor 91 and equipped with a flexible sealing strip 94, gives the entire device the powerful ability to flexibly open, close, or adjust the on-off state of the diverter liquid path at any time. This perfectly adapts to the diverse and complex needs of dynamic, controllable, and continuous diversion of high-temperature slurries in heat pump concentration and similar processes. It also significantly improves the efficiency of solid-liquid separation and impurity removal, as well as the reliability and safety of system operation.
[0057] Example 2
[0058] On the basis of Example 1, an auxiliary cleaning mechanism 10 is also included. The auxiliary cleaning mechanism 10 includes a rotating motor 101, which is installed on the liquid outlet pipe 7; a connecting pipe 102, which is installed between the liquid outlet pipes 7; a hollow ball 103, which is rotatably installed in the connecting pipe 102 and is connected to the corresponding output shaft of the rotating motor 101; and a sealing ring 104, which is installed at the opening of the hollow ball 103.
[0059] It should be noted that when the device needs to perform cleaning or descaling maintenance, the auxiliary cleaning mechanism 10 starts working: the rotating motor 101 installed on the liquid outlet pipe 7 is powered on and drives its output shaft to drive the hollow ball 103 located inside the connecting pipe 102 to rotate. The surface of the hollow ball 103 is evenly provided with a number of micropores or specific flow channel designs, and the opening position of the interface between it and the two ends of the connecting pipe 102 is installed with a high-temperature resistant and chemically resistant sealing ring 104 to ensure that the hollow ball 103 can still maintain the dynamic sealing of the pipeline system during rotation and prevent leakage of the cleaning medium. The operator connects the cleaning liquid (such as dilute acid, alkali solution or special solvent) or pressurized clean water to the inlet of the liquid outlet pipe 7 through an external pipeline, and the cleaning medium then flows into the hollow ball 103 and is received by the connecting pipe 102. The opening direction of the hollow ball 103 can be adjusted according to the area to be cleaned.
[0060] It also includes an opening and closing mechanism 11, which includes a side door 111, which is rotatably installed on the right side of the diverter box 2; an anti-slip cover 112, which is installed on the handle of the side door 111; and a locking member 113, which is installed between the diverter box 2 and the side door 111 and is used to lock the side door 111.
[0061] It should be noted that, in order to facilitate the internal inspection, maintenance and cleaning of the slag collecting frame 8 of the equipment, the device is equipped with an opening and closing mechanism 11: the core component of the mechanism includes a side door 111 rotatably mounted on the right side wall of the diversion box 2, which is controlled to open or close outward through a special hinge or axle pin assembly. An ergonomically designed handle is fixed to the outside of the side door 111, and an anti-slip cover 112 is installed on the gripping area of the handle. The anti-slip cover 112 is usually made of wear-resistant, flexible and high-friction coefficient material to ensure that the operator can still hold the door firmly and apply force to operate the door when the hands are wet due to slurry or cleaning fluid during the operation of the equipment. When the side door 111 is used for internal inspection, replacement of parts or removal of the slag collecting frame 8 to clean solid residues, the operator must first release the constraint of the locking member 113: the locking member 113 is usually a rotary latch, fixedly installed in the contact area between the door frame of the diversion box 2 and the side door 111; after unlocking, hold the non-slip handle to pull outward and rotate the side door 111, so that it rotates around the installation axis to open to the maximum angle, so that you can have unimpeded access to the internal structure of the diversion box 2 and the slag collecting frame 8 itself. In particular, when the slag collecting frame 8 is full of solid residue and needs to be cleaned, the slag collecting frame 8 can be removed directly by hand or with tools through the opening of the side door 111 for dumping and cleaning, without the need to remove the box body as a whole.
[0062] It also includes a stabilizing component 12 , which includes a flange 121 installed inside the diversion box 2 and used to fix the liquid inlet pipe 4 ; and a reinforcing rib 122 installed on the flange 121 .
[0063] It should be noted that the flange 121 installed at a specific position inside the diversion box 2 has a center hole that tightly fits and firmly fixes the insertion end of the liquid inlet pipe 4, significantly enhancing the vibration and displacement resistance of the liquid inlet pipe 4 during high-pressure or pulsating slurry input, ensuring the rigidity and sealing of the liquid inlet connection, and the reinforcing ribs 122 welded or integrally formed on the flange 121 provide additional structural support for the connection between the flange 121 and the diversion box 2 body, effectively dispersing the load and thermal stress transmitted by the liquid inlet pipe 4, and preventing the key connection point from loosening or breaking due to long-term stress or thermal deformation.
[0064] The guide structure 13 is also included. The guide structure 13 is installed on the upper right side of the installation plate 1 . The guide structure 13 is slidably connected to the slag collecting frame 8 .
[0065] It should be noted that the guide structure 13 fixedly mounted on the upper right side of the mounting plate 1 forms a sliding fit with a corresponding slider on the bottom or side of the slag collecting frame 8. When the slag collecting frame 8 needs to be removed or inserted, the guide structure 13 accurately guides the slag collecting frame 8 to slide along a preset straight path, ensuring that the slag collecting frame 8 can move smoothly and without jamming to its designated working position or completely leave the installation area. Once in place, it can maintain a stable posture so that the slag outlet 62 below it can be accurately aligned with the receiving opening of the slag collecting frame 8, effectively preventing solid residue from spilling during the transfer process.
[0066] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. An adjustable heat pump concentration auxiliary diversion device, characterized in that: Includes: Mounting plate (1); A diverter box (2), the diverter box (2) being mounted on the upper side of the mounting plate (1); A drive motor (3), the drive motor (3) being mounted on the upper left side of the mounting plate (1); A liquid inlet pipe (4), the liquid inlet pipe (4) being installed on the upper right side of the diversion box (2); A first liquid outlet frame (5), the first liquid outlet frame (5) is rotatably mounted on the left side of the diversion box (2), and the first liquid outlet frame (5) is connected to the output shaft of the drive motor (3); a second liquid outlet frame (6), the second liquid outlet frame (6) being installed in the left portion of the diversion box (2), and the first liquid outlet frame (5) being located inside the second liquid outlet frame (6); a liquid outlet pipe (7), the liquid outlet pipe (7) being installed on the lower side of the diversion box (2); A slag collecting frame (8), the slag collecting frame (8) is placed on the upper right side of the mounting plate (1).
2. The adjustable heat pump concentration auxiliary diversion device according to claim 1, characterized in that: The first liquid outlet frame (5) comprises an auger (51), a first liquid outlet hole (52) and a second liquid outlet hole (53); the auger (51) is installed outside the first liquid outlet frame (5); the first liquid outlet hole (52) is a circular hole; and the second liquid outlet hole (53) is a square hole.
3. The adjustable heat pump concentration auxiliary diversion device according to claim 2, characterized in that: The second liquid outlet frame (6) comprises a third liquid outlet hole (61) and a slag outlet (62); the third liquid outlet hole (61) is a rectangular hole and is arranged on the outer surface of the second liquid outlet frame (6); and the slag outlet (62) is arranged between the second liquid outlet frame (6) and the first liquid outlet frame (5).
4. The adjustable heat pump concentration auxiliary diversion device according to claim 3, characterized in that: The invention also includes a sealing mechanism (9), wherein the sealing mechanism (9) includes: A double-axis screw motor (91), the double-axis screw motor (91) being installed at the bottom of the diverter box (2); A guide rod (92), the guide rod (92) being mounted on the top of the diverter box (2); A sealing frame (93), wherein the sealing frame (93) is slidably mounted between the guide rods (92), and the sealing frame (93) is threadedly connected to the output shaft of the double-axis screw motor (91); A sealing strip (94) is provided inside the sealing frame (93).
5. The adjustable heat pump concentration auxiliary diversion device according to claim 4, characterized in that: The auxiliary cleaning mechanism (10) is also included, and the auxiliary cleaning mechanism (10) includes: a rotating motor (101), wherein the rotating motor (101) is mounted on the liquid outlet pipe (7); A connecting pipe (102), the connecting pipe (102) being installed between the liquid outlet pipes (7); A hollow ball (103) is rotatably mounted in the connecting tube (102), and the hollow ball (103) is connected to the output shaft of the corresponding rotating motor (101).
6. The adjustable heat pump concentration auxiliary diversion device according to claim 5, characterized in that: It also includes an opening and closing mechanism (11), which includes: A side door (111), the side door (111) being rotatably mounted on the right side of the diverter box (2); an anti-slip cover (112), the anti-slip cover (112) being mounted on the handle of the side door (111); A locking member (113) is installed between the diverter box (2) and the side door (111) and is used to lock the side door (111).
7. The adjustable heat pump concentration auxiliary diversion device according to claim 6, characterized in that: Also included is a stabilizing component (12), the stabilizing component (12) including: A flange (121), the flange (121) being installed inside the diversion box (2), and the flange (121) being used to fix the liquid inlet pipe (4); A reinforcing rib (122) is mounted on the flange (121).
8. The adjustable heat pump concentration auxiliary diversion device according to claim 7, characterized in that: It also includes a guide structure (13), which is installed on the upper right side of the installation plate (1), and the guide structure (13) is slidably connected to the slag collecting frame (8).
9. The adjustable heat pump concentration auxiliary flow diversion device according to claim 3, characterized in that: The slag outlet (62) corresponds to the position of the slag collecting frame (8).
10. The adjustable heat pump concentration auxiliary diversion device according to claim 5, characterized in that: A sealing ring (104) is installed at the opening of the hollow ball (103).