Energy-saving control cabinet of air conditioning unit
By designing components such as sedimentation tanks, inclined groove plates, and arc plates in the control cabinet of the air conditioning unit, the problem of fine groundwater particles entering the equipment is solved by utilizing the flow characteristics of groundwater and the differences in particle mass, thus achieving effective particle removal and improving the stability of equipment operation.
Patent Information
- Application Number
- CN202511104242.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-07
- Publication Date
- 2025-11-07
AI Technical Summary
In existing air conditioning unit control systems, fine particles from groundwater can easily enter the equipment, causing pipe blockages, and the filters need to be replaced frequently, making it impossible to effectively remove fine particles.
An energy-saving control cabinet for an air conditioning unit was designed, comprising a heater, a pressure mechanism, a cleaning mechanism, and a control mechanism. Through components such as a sedimentation tank, an inclined groove plate, and an arc plate, the cabinet utilizes the flow characteristics of groundwater and the differences in particle mass to achieve the sedimentation and removal of fine particles.
It effectively removes fine particles from groundwater, reduces the risk of equipment clogging, lowers the frequency of filter replacement, and improves the operating efficiency and reliability of the equipment.
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Figure CN120907230A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to air conditioning unit control cabinet technical field, specifically to a kind of air conditioning unit energy-saving control cabinet. BACKGROUND
[0002] Air conditioning unit control is generally adopted quantitative control, regardless of air conditioning area load how changes, air conditioning unit fan is always high-frequency operation, only through the control of water valve adjustment changes supply air temperature to meet the indoor load variation demand, using existing household air conditioner changes radiator, changes ground heating, refrigerant distributor is installed in air conditioning unit control cabinet, complete cold and hot intelligent switching is formed, refrigerant enters into cold and hot exchange system to change cold water into hot water when heating, enters into radiator or ground heating to heat, refrigerant distributor is one-way cut-off when refrigeration, so that refrigerant cannot enter heat exchange system, refrigerant single-phase flows into indoor fan outlet refrigeration; Most of the above refrigerants are underground water, and the underground water contains many fine particles, which will also enter the equipment interior when the underground water enters the equipment interior, and even accumulate in the pipeline interior, causing the internal pipeline to be blocked, and a filter screen is usually used to remove the fine particles in the underground water, but this type of way needs to replace the filter screen frequently in actual application, and the following scheme is proposed for the above problems. SUMMARY
[0003] To solve the above technical problems, the present application provides an air conditioning unit energy-saving control cabinet, which comprises a heater, a transmission pipe one is connected through the side wall of the heater, a radiator is connected through the end of the transmission pipe one away from the heater, a water outlet pipe of the radiator is connected through a transmission pipe two, and a water inlet pipe is connected through the water inlet end of the heater. A pressure mechanism is fixedly connected to the bottom of the heater for filtering underground water. A dedoping mechanism is fixedly connected to the bottom of the pressure mechanism for collecting fine particles in the pressure mechanism. A control mechanism is fixedly connected to the side wall of the water inlet pipe for controlling the transmission direction of underground water. Wherein, before use, the water pipe of external underground water is connected through the pressure mechanism, when heating is needed, the power supply of the heater is connected first, and the underground water is heated, and then transmitted to the transmission pipe two through the transmission pipe one.
[0004] Preferably, the pressure mechanism comprises: A fixed component is fixedly connected to the bottom of the heater through a support; The support comprises a fixed frame fixedly connected to the bottom of the heater, and the end of the fixed frame away from the heater is fixedly connected with a sediment tank; A conveying component is fixedly connected to the inner wall of the sediment tank through an isolation piece. The isolation piece includes a square tube 1 fixedly connected to the top of the sediment tank, and a square tube 2 is throughly connected to the end of the sediment tank away from the square tube 1; Wherein, when the groundwater is transmitted in the fixed assembly, it will be transmitted to the inner wall of the sediment tank through the square tube 2, and then the groundwater will be deposited in the sediment tank with a small amplitude.
[0005] Preferably, the impurity removal mechanism comprises: The accumulation assembly is fixedly connected to the inner wall of the sediment tank through the separation piece; The separation piece includes a partition 2 fixedly connected to the inner wall of the sediment tank, and a storage tank is throughly connected to the bottom of the sediment tank; The transmission assembly is fixedly connected to the inner wall of the sediment tank through the blocking piece; The blocking piece includes an inclined linear groove plate fixedly connected to the inner wall of the sediment tank, and an arc-shaped plate is fixedly connected to the inner wall of the sediment tank; Wherein, after the groundwater enters the inner wall of the sediment tank, the fine particles with large mass will be deposited downward and accumulated on the top of the inclined linear groove plate, and the clean water part will be on the top of the partition 2, and finally discharged outward from the square tube 1.
[0006] Preferably, the control mechanism comprises: The limiting assembly is fixedly connected to the outer wall of the water inlet pipe through the isolation piece; The isolation piece includes a copper pipe 1 fixedly connected to the top of the water inlet pipe, a slide rail 1 is throughly connected to the inner wall of the copper pipe 1, and a copper pipe 2 is fixedly connected to the outer wall of the copper pipe 1; The auxiliary assembly is fixedly connected to the side wall of the slide rail 1 through the driving piece; The driving piece includes a slide rail 2 fixedly connected to the side wall of the slide rail 1, an electric telescopic rod is fixedly connected to the side wall of the slide rail 2, and an L-shaped baffle is fixedly connected to the output end of the electric telescopic rod; Wherein, the water inlet pipe can directly transmit the groundwater to the air outlet position of the air conditioner indoor unit through the copper pipe 1, and after the heat dissipation fin in the air conditioner turns one circle, the groundwater is discharged outward through the copper pipe 2.
[0007] Preferably, the fixed assembly includes a water inlet pipe fixedly connected to the end of the water inlet pipe away from the heater 1; Wherein, before use, the external water pipe is fixed to the end of the water inlet pipe to ensure that the groundwater can reach the inner wall of the sediment tank through the water inlet pipe.
[0008] Preferably, the conveying assembly includes a partition 1 fixedly connected to the inner wall of the water inlet pipe; Wherein, the partition 1 divides the water inlet pipe into two layers, and the partition 2 divides the sediment tank into two layers, and the groundwater in the above four layers is transmitted in the water inlet pipe.
[0009] Preferably, the accumulation assembly comprises a flow opening formed in the bottom of the deposition tank; Wherein, the fine particles deposited in the deposition tank will be transported to the inside of the storage tank through the flow opening, and the storage tank and the deposition tank are designed to be buckled, and after the impurities are completely accumulated in the inside of the deposition tank, the staff can complete the replacement by disassembling.
[0010] Preferably, the transmission assembly comprises a partition plate fixedly connected to the inner wall of the inclined wire groove plate; Wherein, the fine particles will enter the inner wall of the inclined wire groove plate during falling downward, and flow along the slope of the inclined wire groove plate to the direction of the flow opening.
[0011] Preferably, the limiting assembly comprises a fixed support fixedly connected to the outer wall of the copper pipe one; Wherein, during installation, the sliding rail one, the fixed support, the heating radiator and the heater are fixed on the wall.
[0012] Preferably, the auxiliary assembly comprises a water inlet through hole one formed in the side wall of the L-shaped baffle, a water inlet through hole two formed in the top of the L-shaped baffle, and the outer wall of the L-shaped baffle is slidably connected to the inner wall of the sliding rail two and the inner wall of the sliding rail one; Wherein, when the water inlet through hole one communicates with the water inlet pipe, the water inlet through hole two is in a dislocation state with the copper pipe one, at this time, the groundwater is transported to the heater through the water inlet pipe, and after being heated in the heater, it enters the heating radiator position; and when the water inlet through hole two coincides with the copper pipe one, the water inlet through hole one and the water inlet pipe will be in a dislocation state, at this time, the groundwater will be transported to the air conditioner outlet position through the copper pipe one, and finally discharged outward through the copper pipe two.
[0013] The present application has the following advantages: (1) The fine particles of the above groundwater flow are mostly fine sand, and the mass is much larger than that of groundwater. The deposition tank is arranged in the equipment, and when the fine sand carried by the groundwater passes through the water inlet pipe position, most of the groundwater will enter the inside of the deposition tank, and the remaining groundwater will enter the water inlet pipe position along the inside of the water inlet pipe. Since the mass of the fine sand is much larger than that of the groundwater, most of the impurities will enter the inner wall of the deposition tank through the square pipe two when passing through the water inlet pipe and the square pipe two position. At this time, the flow speed is increased, and the fast flowing groundwater will slow down when reaching the inner wall of the deposition tank due to the increase of the flow area. Most of the fine particles will be deposited downward and reach the bottom of the partition plate two, and due to the small area of the through hole of the side wall of the partition plate two, the flow speed of the water at the bottom of the partition plate two will be much lower than that at the top of the partition plate two, which makes most of the fine particles precipitate at the bottom of the inner wall of the deposition tank. Through the application of the above assembly, the internal fine particles of the groundwater are effectively removed.
[0014] (2) The present application utilizes the characteristics that the fine particles are mostly accumulated on the inner wall of the sediment tank, and a slanted groove plate is arranged inside the device. When the fine particles at the bottom of the second partition plate are deposited downward, the deposited impurities will enter the inner wall of the groove of the slanted groove plate, and slowly roll down along the slanted surface of the slanted groove plate towards the flow-through opening. During this process, since most of the particles are on the inner wall of the groove of the slanted groove plate, the flow pressure of the external water flow on the fine particles is greatly reduced. Through the application of the above-mentioned component, the fine particles are prevented from mixing with the water flow again after being deposited due to the influence of the water flow, thereby affecting the trapping efficiency of the device on the fine particles.
[0015] (3) The present application utilizes the characteristics that the fine particles enter the groove inside the slanted groove plate, and a partition plate is arranged inside the device. One end of the partition plate is in an arc shape, as shown in Figure Ten When the underground water flows from the lower right to the upper left, the water flow will contact the arc surface of the partition plate, and part of the water flow will change the flow direction along the arc surface of the partition plate and impact the remaining water flow, thereby avoiding the situation that the water flow direction is the same as the transverse direction of the groove of the slanted groove plate, so that the water flow directly enters the inner part of the groove of the slanted groove plate, causing the fine particles inside the groove to fly.
[0016] (4) The present application utilizes the characteristics that the water flow inside the second partition plate flows from the second square tube end to the first square tube end, and an arc plate is arranged inside the device. After the underground water at the bottom of the second partition plate is deposited, it will enter the top of the second partition plate through the through hole of the second partition plate, and then enter the position of the water inlet pipe through the first square tube. At this time, the water flow at the bottom of the second partition plate will change the overall flow direction of the device along the arc surface of the arc plate during the flow process, so that the underground water at the front and back ends will impact each other, greatly reducing the flow speed of the water flow at the bottom of the second partition plate, and ensuring that the fine particles at the bottom of the second partition plate have enough time to deposit. BRIEF DESCRIPTION OF DRAWINGS
[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor.
[0018] Figure 1 is a schematic diagram of the overall structure of the present application in working state Figure One ; Figure 2 is a schematic diagram of the overall structure of the present application in working state Figure Two ; Figure 3 is a schematic diagram of the overall structure of the present application Figure 4 is a sectional view of the fixed component of the present application Figure 5 It is the cross section schematic view of the limiting assembly of the present application; Figure 6 It is the overall schematic view of the control mechanism of the present application; Figure 7 It is the schematic view of the auxiliary assembly of the present application; Figure 8 It is the cross section schematic view of the accumulation assembly of the present application; Figure 9 It is the cross section schematic view of the transmission assembly of the present application; Figure 10 It is the cross section schematic view of the impurity removing mechanism of the present application; Figure 11 It is the overall schematic view of the present application Figure 10 It is the enlarged schematic view of A in the present application.
[0019] In the drawings, the components represented by each number are listed as follows: In the drawings: 1, pressure mechanism; 11, fixed assembly; 12, conveying assembly; 13, heater; 14, transmission pipe one; 15, radiator; 16, transmission pipe two; 17, water inlet pipe; 111, fixed frame; 112, deposition box; 113, water inlet pipe; 121, square pipe one; 122, square pipe two; 123, partition one; 2, impurity removing mechanism; 21, accumulation assembly; 22, transmission assembly; 211, partition two; 212, storage box; 213, flow-through port; 221, inclined linear groove plate; 222, arc-shaped plate; 223, partition; 3, control mechanism; 31, limiting assembly; 32, auxiliary assembly; 311, slide rail one; 312, copper pipe one; 313, copper pipe two; 314, fixed support; 321, slide rail two; 322, electric telescopic rod; 323, L-shaped baffle; 324, water inlet through hole one; 325, water inlet through hole two. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the present application.
[0021] Embodiment one, please refer to Figures 1-9 The present application is a kind of air conditioning unit energy-saving control cabinet, including heater 13, the side wall of heater 13 is connected with transmission pipe one 14, the end of transmission pipe one 14 away from heater 13 is connected with radiator 15, the water outlet pipe of radiator 15 is connected with transmission pipe two 16, the water inlet end of heater 13 is connected with water inlet pipe 17; The pressure mechanism 1 is fixedly connected to the bottom of the heater 13, and is used for filtering underground water; The impurity removal mechanism 2 is fixedly connected to the bottom of the pressure mechanism 1, and is used for collecting fine particles in the pressure mechanism 1; The control mechanism 3 is fixedly connected to the side wall of the water inlet pipe 17, and is used for controlling the transmission direction of the underground water; Before use, the water pipe of the external underground water is connected to the pressure mechanism 1, when heating is needed, the power supply of the heater 13 is turned on, and the underground water is heated, and then transmitted to the transmission pipe two 16 through the transmission pipe one 14.
[0022] The pressure mechanism 1 comprises: The fixing assembly 11 is fixedly connected to the bottom of the heater 13 through a support; The support comprises a fixed frame 111 fixedly connected to the bottom of the heater 13, and a deposition box 112 fixedly connected to the end of the fixed frame 111 away from the heater 13; The conveying assembly 12 is fixedly connected to the inner wall of the deposition box 112 through an isolation piece; The isolation piece comprises a square pipe one 121 fixedly connected to the top of the deposition box 112, and a square pipe two 122 throughly connected to the end of the deposition box 112 away from the square pipe one 121; When the underground water is transmitted in the fixing assembly 11, the underground water will be transmitted to the inner wall of the deposition box 112 through the square pipe two 122, and then a small amount of sediment will be generated in the deposition box 112.
[0023] The impurity removal mechanism 2 comprises: The accumulation assembly 21 is fixedly connected to the inner wall of the deposition box 112 through a separation piece; The separation piece comprises a second partition plate 211 fixedly connected to the inner wall of the deposition box 112, and a storage box 212 throughly connected to the bottom of the deposition box 112; The transmission assembly 22 is fixedly connected to the inner wall of the deposition box 112 through an obstacle piece; The obstacle piece comprises an inclined groove plate 221 fixedly connected to the inner wall of the deposition box 112, and an arc-shaped plate 222 fixedly connected to the inner wall of the deposition box 112; When the underground water enters the inner wall of the deposition box 112, the fine particles with large mass will be deposited downward and accumulated on the top of the inclined groove plate 221, and the clean water part will be on the top of the second partition plate 211, and finally discharged outward from the square pipe one 121.
[0024] The control mechanism 3 comprises: The limiting assembly 31 is fixedly connected to the outer wall of the water inlet pipe 17 through the isolation piece; The isolation piece comprises a copper pipe one 312 fixedly connected to the top of the water inlet pipe 17, and a slide rail one 311 connected through the inner wall of the copper pipe one 312, and a copper pipe two 313 fixedly connected to the outer wall of the copper pipe one 312; The auxiliary assembly 32 is fixedly connected to the side wall of the slide rail one 311 through the driving piece; The driving piece comprises a slide rail two 321 fixedly connected to the side wall of the slide rail one 311, an electric telescopic rod 322 fixedly connected to the side wall of the slide rail two 321, and an L-shaped baffle 323 fixedly connected to the output end of the electric telescopic rod 322; The water inlet pipe 17 can directly transmit underground water to the air outlet position of the air conditioner indoor unit through the copper pipe one 312, and the underground water is discharged outward through the copper pipe two 313 after flowing through the air conditioner internal heat dissipation fin once.
[0025] In the second embodiment, please refer to Figures 2-11 The fixed assembly 11 of the air conditioning unit energy-saving control cabinet comprises a water inlet pipe 113 fixedly connected to the end of the water inlet pipe 17 away from the heater 13. Before use, the end of the external water pipe is fixed to the water inlet pipe 113 to ensure that the underground water can reach the inner wall of the sediment tank 112 through the water inlet pipe 113. The end of the external water pipe is connected to the water inlet pipe 113, and then the water flow is connected. If the air conditioner indoor unit needs to release cold air, the underground water in the water inlet pipe 113 will be transmitted to the copper pipe one 312 through the water inlet pipe 17, and then enter the air outlet position of the air conditioner indoor unit from the copper pipe one 312, and then flow out from the copper pipe two 313 after passing through the heat dissipation fin of the air conditioner indoor unit, so that the air conditioner indoor unit completes the cold air blowing process. If the heating radiator 15 needs to be heated, the electric telescopic rod 322 is forced to be in an extended state, and the underground water in the water inlet pipe 17 will enter the internal part of the electric heater 13 through the auxiliary assembly 32. At this time, the heater 13 will heat the underground water, and then transmit the heated water to the heating radiator 15 through the transmission pipe one 14. Through the application of the above assemblies, the basic work process is completed.
[0026] The conveying assembly 12 comprises a partition one 123 fixedly connected to the inner wall of the water inlet pipe 113. The partition one 123 divides the water inlet pipe 113 into two layers, and the partition two 211 divides the sediment tank 112 into two layers, and the underground water in the above four layers is combined and transmitted in the water inlet pipe 17. The fine particles in the groundwater flow are mostly fine sand, and the mass is much greater than that of the groundwater. A sediment tank 112 is arranged in the equipment. When the groundwater carrying part of the fine sand passes the position of the water inlet pipe 113, most of the groundwater will enter the inside of the sediment tank 112, and the remaining groundwater will enter the water inlet pipe 17 along the inside of the water inlet pipe 113.
[0027] The accumulation assembly 21 comprises a flow-through opening 213 arranged at the bottom of the sediment tank 112. The fine particles deposited in the inside of the sediment tank 112 will be transmitted to the inside of the storage tank 212 through the flow-through opening 213. The storage tank 212 and the sediment tank 112 are designed in a snap manner. After the impurities are completely deposited in the inside of the sediment tank 112, the staff can complete the replacement by disassembling. Since the mass of the fine sand is much greater than that of the groundwater, when passing the position of the water inlet pipe 113 and the square pipe two 122, most of the impurities will enter the inner wall of the sediment tank 112 through the square pipe two 122. At this time, the flow speed is accelerated. When the fast-flowing groundwater reaches the inner wall of the sediment tank 112, the flow speed will become slow due to the increase of the flow area. Most of the fine particles will be deposited downward and reach the bottom of the second partition plate 211. And due to the influence of the small area of the through hole of the side wall of the second partition plate 211, the flow speed of the water at the bottom of the second partition plate 211 will be much lower than that at the top of the second partition plate 211. This makes most of the fine particles precipitate at the bottom of the inner wall of the sediment tank 112. Through the application of the above assembly, the internal fine particles of the groundwater are effectively removed.
[0028] The transmission assembly 22 comprises a partition plate 223 fixedly connected to the inner wall of the inclined surface groove plate 221. The fine particles will enter the inner wall of the inclined surface groove plate 221 during the downward falling process and flow along the inclined surface of the inclined surface groove plate 221 to the direction of the flow-through opening 213. Due to the characteristics that most of the fine particles are deposited in the inner wall of the sediment tank 112, an inclined surface groove plate 221 is arranged in the equipment. When the fine particles at the bottom of the second partition plate 211 precipitate downward, the precipitated impurities will enter the inner wall of the groove of the inclined surface groove plate 221 and slowly roll down along the inclined surface of the inclined surface groove plate 221 to the direction of the flow-through opening 213. During this process, since most of the particles are at the inner wall of the groove of the inclined surface groove plate 221, the flow pressure of the external water flow on the fine particles will be greatly reduced. Through the application of the above assembly, the fine particles are prevented from mixing with the water flow again after completing the precipitation due to the influence of the water flow, which affects the trapping efficiency of the equipment on the fine particles.
[0029] The limiting assembly 31 comprises a fixed support 314 fixedly connected to the outer wall of the copper pipe one 312. During installation, the slide rail 311, the fixing bracket 314, the radiator 15, and the heater 13 need to be fixed to the wall first. Taking advantage of the characteristic that the aforementioned fine particles can enter the internal groove of the inclined wire groove plate 221, a partition 223 is installed inside the equipment. One end of the partition 223 is curved, such as... Figure Ten As shown, when the groundwater flows from the lower right to the upper left, the water flow will come into contact with the arc surface of the baffle 223. Some of the water flow changes direction along the arc surface of the baffle 223 and impacts the rest of the water flow. This prevents the water flow direction from being the same as the transverse direction of the inclined wire trough plate 221, which would cause the water flow to directly enter the inside of the wire trough plate 221, resulting in the flying of fine particles inside the wire trough.
[0030] The auxiliary component 32 includes a water inlet hole 324 opened on the side wall of the L-shaped baffle 323, a water inlet hole 325 opened on the top of the L-shaped baffle 323, the outer wall of the L-shaped baffle 323 is slidably connected to the inner wall of the slide rail 321, and the outer wall of the L-shaped baffle 323 is slidably connected to the inner wall of the slide rail 311. When the first water inlet hole 324 is connected to the water inlet pipe 17, the second water inlet hole 325 and the first copper pipe 312 are misaligned. At this time, the groundwater is transmitted to the heater 13 through the water inlet pipe 17, and after being heated inside the heater 13, it enters the radiator 15. When the second water inlet hole 325 coincides with the first copper pipe 312, the first water inlet hole 324 and the water inlet pipe 17 will be misaligned. At this time, the groundwater will be transmitted to the air conditioner outlet through the first copper pipe 312, and finally discharged outward through the second copper pipe 313. Taking advantage of the characteristic that the water inside the partition 211 flows from the end of the square pipe 212 to the end of the square pipe 121, an arc-shaped plate 222 is installed inside the equipment. After the groundwater at the bottom of the partition 211 has settled, it will enter the top of the partition 211 through the through hole, and then enter the water inlet pipe 17 through the square pipe 121. At this time, the water at the bottom of the partition 211 will change the overall flow direction of the equipment along the arc surface of the arc-shaped plate 222 during the flow process, so that the groundwater at the front and rear ends will impact each other, which will greatly reduce the flow speed of the water at the bottom of the partition 211 and ensure that the fine particles at the bottom of the partition 211 have enough time to settle.
[0031] One specific application of this embodiment is as follows: Before using the present invention, the slide rail 311, the fixing bracket 314, the radiator 15, and the heater 13 are first fixed to the wall, such as... Figure OneThe state of the art, then, ensure that the external water pipe and the end of the water pipe 113 connected, then turn on the water, if the need for air conditioning indoor unit to release cold air, the groundwater inside the water pipe 113 will be transmitted to the copper pipe 312 through the water pipe 17, and then from the copper pipe 312 into the air conditioning indoor unit outlet position, through the radiator of the air conditioning indoor unit, and then from the copper pipe 312 outwards, so that the air conditioning indoor unit to complete the cold wind blowing process, if you need to heat radiator 15, forcing the electric telescopic rod 322 in the extended state, the groundwater inside the water pipe 17 will enter the inside of the electric heater 13 through the auxiliary assembly 32, at this time the heater 13 will heat the groundwater, and through the transmission pipe 14 transmission in the radiator 15, through the application of the above components, complete the basic work process; The fine particles of the above-mentioned groundwater flow are mostly fine sand, and the mass is much greater than that of groundwater. A sediment tank 112 is arranged inside the equipment. When the external groundwater carrying part of the fine sand passes through the water pipe 113 position, most of the groundwater will enter the inside of the sediment tank 112, and the remaining groundwater will enter the water pipe 17 position along the inside of the water pipe 113. Because the mass of the fine sand is much greater than that of the groundwater, when passing through the water pipe 113 and the square pipe two 122 position, most of the impurities will enter the inner wall of the sediment tank 112 through the square pipe two 122. At this time, the flow rate of the water increases, and the fast flowing groundwater slows down when reaching the inner wall of the sediment tank 112. Most of the fine particles will be deposited downward and reach the bottom of the baffle two 211. Due to the influence of the small area of the through hole of the side wall of the baffle two 211, the flow rate of the water at the bottom of the baffle two 211 will be much lower than that at the top of the baffle two 211. This makes most of the fine particles precipitate at the bottom of the inner wall of the sediment tank 112. Through the application of the above components, the internal fine particles of the groundwater are effectively removed. Utilizing the feature that most of the fine particles accumulate in the inner wall of the sediment tank 112, a beveled groove plate 221 is arranged inside the equipment. When the fine particles at the bottom of the baffle two 211 precipitate downward, the precipitated impurities will enter the inner wall of the groove of the beveled groove plate 221 and slowly roll down along the slope of the beveled groove plate 221 towards the flow-through opening 213. During this process, because most of the particles are in the inner wall of the groove of the beveled groove plate 221, the flow pressure of the external water flow on the fine particles will be greatly reduced. Through the application of the above components, the fine particles are prevented from mixing with the water flow again after completing precipitation due to the influence of the water flow, affecting the trapping efficiency of the equipment on the fine particles. Utilizing the feature that the fine particles enter the groove inside the beveled groove plate 221, a baffle 223 is arranged inside the equipment. One end of the baffle 223 is arc-shaped, like Figure TenAs shown, when the groundwater flows from the lower right to the upper left, the water flow will contact the arc surface of the partition 223, part of the water flow changes the flow direction along the arc surface of the partition 223, and collides with the remaining water flow, avoiding the water flow direction being the same as the transverse direction of the inclined groove of the groove plate 221, causing the water flow to directly enter the groove inside the inclined groove plate 221, causing the fine particles inside the groove to fly.
[0032] By using the above-mentioned characteristics of the water flow inside the partition two 211 flowing from the end of the square tube two 122 to the end of the square tube one 121, an arc plate 222 is arranged inside the device, wherein after the groundwater at the bottom of the partition two 211 completes the precipitation, it will enter the top of the partition two 211 through the through hole of the partition two 211, and then enter the position of the water inlet pipe 17 through the square tube one 121, and at this time the water flow at the bottom of the partition two 211 will change the overall flow direction of the device along the arc surface of the arc plate 222 during the flow process, so that the groundwater at the front and rear ends will collide with each other, greatly reducing the flow speed of the water flow at the bottom of the partition two 211, and ensuring that the fine particles at the bottom of the partition two 211 have enough time to precipitate.
[0033] The preferred embodiments of the above disclosed application are only used to help explain the application. The preferred embodiments do not describe all the details and do not limit the application to the specific embodiments described. Obviously, according to the content of the specification, many modifications and changes can be made. The specification selects and describes these embodiments in order to better explain the principles and practical applications of the application, so that those skilled in the art can well understand and utilize the application. The application is limited by the claims and their entire scope and equivalents.
Claims
1. An air conditioning unit energy-saving control cabinet, comprising a heater (13), a transmission pipe I (14) is connected through the side wall of the heater (13), a radiator (15) is connected through the end of the transmission pipe I (14) away from the heater (13), a water outlet pipe of the radiator (15) is connected through a transmission pipe II (16), and a water inlet pipe (17) is connected through the water inlet end of the heater (13), characterized in that, Also include: Pressure mechanism (1), the pressure mechanism (1) is fixedly connected at the bottom of the heater (13), for filtering groundwater; Impurity removal mechanism (2), the impurity removal mechanism (2) is fixedly connected at the bottom of the pressure mechanism (1), for collecting fine particles inside the pressure mechanism (1); Control mechanism (3), the control mechanism (3) is fixedly connected at the side wall of the water inlet pipe (17), for controlling the transmission direction of groundwater; Wherein, before use, the water pipe of external groundwater is penetrated with the pressure mechanism (1), when heating is needed, the power supply of the heater (13) is connected first, and the groundwater is heated, then transmitted to the transmission pipe two (16) through the transmission pipe one (14).
2. The energy saving control cabinet for an air conditioning unit of claim 1, wherein: The pressure mechanism (1) comprises: Fixed assembly (11), the fixed assembly (11) is fixedly connected at the bottom of the heater (13) through the support; The support comprises a fixed frame (111) fixedly connected at the bottom of the heater (13), and the end of the fixed frame (111) away from the heater (13) is fixedly connected with a sediment tank (112); Conveying assembly (12), the conveying assembly (12) is fixedly connected to the inner wall of the sediment tank (112) through the isolation piece; The isolation piece comprises a square pipe one (121) fixedly connected to the top of the sediment tank (112), and the end of the sediment tank (112) away from the square pipe one (121) is connected with a square pipe two (122) penetratingly; Wherein, when the groundwater is transmitted in the fixed assembly (11), it will be transmitted to the inner wall of the sediment tank (112) through the square pipe two (122), and the groundwater will produce small amplitude sedimentation in the inside of the sediment tank (112).
3. The energy saving control cabinet for an air conditioning unit of claim 2, wherein: The impurity removal mechanism (2) comprises: Accumulation assembly (21), the accumulation assembly (21) is fixedly connected to the inner wall of the sediment tank (112) through the separation piece; The separation piece comprises a baffle two (211) fixedly connected to the inner wall of the sediment tank (112), and the bottom of the sediment tank (112) is connected with a storage tank (212) penetratingly; Transmission assembly (22), the transmission assembly (22) is fixedly connected to the inner wall of the sediment tank (112) through the hindering piece; The hindering piece comprises an inclined linear groove plate (221) fixedly connected to the inner wall of the sediment tank (112), and the inner wall of the sediment tank (112) is fixedly connected with an arc plate (222); Wherein, after the groundwater enters the inner wall of the sediment tank (112), the fine particles with large mass will be deposited downward and accumulated on the top of the inclined linear groove plate (221), and the clean water part will be on the top of the baffle two (211), finally discharged outward from the square pipe one (121).
4. The energy saving control cabinet for an air conditioning unit of claim 3, wherein: The control mechanism (3) comprises: Limiting assembly (31), the limiting assembly (31) is fixedly connected to the outer wall of the water inlet pipe (17) through the isolation piece; The isolation piece comprises a copper pipe one (312) fixedly connected to the top of the water inlet pipe (17), the inner wall of the copper pipe one (312) is connected with a slide rail one (311) penetratingly, and the outer wall of the copper pipe one (312) is fixedly connected with a copper pipe two (313) An auxiliary assembly (32) is fixedly connected to the side wall of the slide rail one (311) through a driving member; The driving member comprises a slide rail two (321) fixedly connected to the side wall of the slide rail one (311), and the side wall of the slide rail two (321) is fixedly connected with an electric telescopic rod (322), and the output end of the electric telescopic rod (322) is fixedly connected with an L-shaped baffle (323); The water inlet pipe (17) can directly transmit underground water to the air outlet position of the air conditioner indoor unit through the copper pipe one (312), and after the air conditioner internal cooling fins flow for one circle, the underground water is discharged outward through the copper pipe two (313).
5. The energy saving control cabinet for an air conditioning unit of claim 4, wherein: The fixed assembly (11) comprises a water inlet pipe (113) fixedly connected to the end of the water inlet pipe (17) away from the heater (13); Before use, the end of the water inlet pipe (113) is fixed with an external water pipe, so that the underground water can reach the inner wall of the sediment tank (112) through the water inlet pipe (113).
6. The energy saving control cabinet for an air conditioning unit of claim 5, wherein: The conveying assembly (12) comprises a partition one (123) fixedly connected to the inner wall of the water inlet pipe (113); The underground water in the above four layers is converged and transmitted in the water inlet pipe (17).
7. The energy saving control cabinet for an air conditioning unit of claim 6, wherein: The accumulation assembly (21) comprises a flow-through opening (213) formed in the bottom of the sediment tank (112); The fine particles deposited in the sediment tank (112) are transmitted to the inside of the storage tank (212) through the flow-through opening (213), and the storage tank (212) and the sediment tank (112) are designed as buckles, so that the staff can replace them by disassembling when the impurities are completely accumulated in the sediment tank (112).
8. The energy saving control cabinet for an air conditioning unit of claim 7, wherein: The transmission assembly (22) comprises a partition (223) fixedly connected to the inner wall of the inclined surface groove plate (221); The fine particles fall into the inner wall of the inclined surface groove plate (221) and flow along the inclined surface of the inclined surface groove plate (221) to the direction of the flow-through opening (213) in the process of falling downward.
9. The energy saving control cabinet for an air conditioning unit of claim 8, wherein: The limiting assembly (31) comprises a fixed support (314) fixedly connected to the outer wall of the copper pipe one (312); When installing, the slide rail one (311), the fixed support (314), the heating radiator (15) and the heater (13) are fixed on the wall.
10. The energy saving control cabinet for an air conditioning unit of claim 9, wherein: The auxiliary assembly (32) comprises a water inlet hole one (324) formed in the side wall of the L-shaped baffle (323), a water inlet hole two (325) formed in the top of the L-shaped baffle (323), and the outer wall of the L-shaped baffle (323) is slidably connected with the inner wall of the slide rail two (321) and the inner wall of the slide rail one (311). Wherein, when the water inlet hole one (324) and the water inlet pipe (17) intercommunication, the water inlet hole two (325) and the copper pipe one (312) are in the misaligned state, at this time, the groundwater is transmitted to the heater (13) through the water inlet pipe (17), and after being heated in the heater (13), enters the radiator (15) position; while the water inlet hole two (325) and the copper pipe one (312) coincide, the water inlet hole one (324) and the water inlet pipe (17) will be in the misaligned state, at this time, the groundwater will be transmitted to the air conditioner air outlet position through the copper pipe one (312), and finally discharged outward through the copper pipe two (313).