WO2023159585A1 - 供水设备 - Google Patents

供水设备 Download PDF

Info

Publication number
WO2023159585A1
WO2023159585A1 PCT/CN2022/078366 CN2022078366W WO2023159585A1 WO 2023159585 A1 WO2023159585 A1 WO 2023159585A1 CN 2022078366 W CN2022078366 W CN 2022078366W WO 2023159585 A1 WO2023159585 A1 WO 2023159585A1
Authority
WO
WIPO (PCT)
Prior art keywords
partition
water
water supply
flow
area
Prior art date
Application number
PCT/CN2022/078366
Other languages
English (en)
French (fr)
Inventor
王聪聪
黄业兴
Original Assignee
佛山市顺德区美的饮水机制造有限公司
美的集团股份有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 佛山市顺德区美的饮水机制造有限公司, 美的集团股份有限公司 filed Critical 佛山市顺德区美的饮水机制造有限公司
Priority to PCT/CN2022/078366 priority Critical patent/WO2023159585A1/zh
Publication of WO2023159585A1 publication Critical patent/WO2023159585A1/zh

Links

Images

Classifications

    • AHUMAN NECESSITIES
    • A47FURNITURE; DOMESTIC ARTICLES OR APPLIANCES; COFFEE MILLS; SPICE MILLS; SUCTION CLEANERS IN GENERAL
    • A47JKITCHEN EQUIPMENT; COFFEE MILLS; SPICE MILLS; APPARATUS FOR MAKING BEVERAGES
    • A47J31/00Apparatus for making beverages
    • A47J31/44Parts or details or accessories of beverage-making apparatus
    • A47J31/50Urns with devices for keeping beverages hot or cool

Definitions

  • the present application relates to the technical field of water treatment equipment, in particular to a water supply equipment.
  • the diverter plate in the water dispenser is to divert the normal temperature water into the cold tank and the hot tank respectively.
  • the diverter plate in the water dispenser cannot effectively realize the effect of preventing temperature crossover, resulting in high energy consumption.
  • the diverter plate in the water dispenser also has the problem of poor diversion effect.
  • the present application aims to solve at least one of the technical problems existing in the related art. For this reason, the present application proposes a water supply device, which can effectively realize the effect of preventing temperature crossover and reduce the energy consumption of the water dispenser.
  • the application provides a water supply equipment, including:
  • a water-making component, the containing body is arranged in the water-making component
  • a flow guiding component is arranged in the containing body to divide the containing body into a first containing area and a second containing area which are in fluid communication.
  • the flow guiding component forms a communication channel
  • the flow channel of the first storage area and the second storage area, the flow channel is provided with partitions, and two adjacent partitions are connected by inclined guide plates.
  • a flow guide assembly is provided in the containing body, and a flow channel is provided in the flow guide assembly, a partition is provided in the flow channel, and two adjacent partitions are connected by an inclined guide plate , and further optimize the structure of the planar flow guide assembly in the related art, so that the interval between the water bodies with different temperatures between the first accommodation area and the second accommodation area on the upper and lower sides of the flow guide assembly becomes larger, thereby effectively realizing To prevent the effect of string temperature.
  • the inclined guide plate while increasing the distance between water bodies of different temperatures, it can ensure that the cold water or hot water in the first storage area or the second storage area can be cooled or heated faster, thereby reducing the impact on the water supply.
  • the energy consumption of the water supply of the equipment can avoid the formation of dead water in the flow channel.
  • the side wall of the containing body corresponding to the second containing area is provided with a temperature regulating device, and the part with a higher height in the flow channel is arranged close to the second containing area.
  • the partitions include a top partition, a middle partition and a bottom partition, and between the top partition and the middle partition and between the middle partition and the bottom partition are connected through the inclined guide plate.
  • the height of the flow passage between the top partition and the middle partition is the same as the height of the flow passage between the middle partition and the bottom partition.
  • the range of the height ratio is 1:5 to 5:7.
  • the containing body is provided with a first outlet and a second outlet, the first receiving area is in fluid communication with the first outlet, and the second receiving area is connected to the second outlet fluid communication.
  • the drainage assembly includes a drainage tube, the drainage tube is arranged in the containing body, and the two ends of the drainage tube respectively communicate with the first storage area and the first exit.
  • At least one end of the drainage tube is provided with an installation port at the end, and when there are multiple drainage tubes, two adjacent drainage tubes are suitable for passing through the installation port. port connection.
  • the edge of the partition abuts against the inner wall of the containing body
  • a gap is formed between the edge of the partition and the inner wall of the containing body, and a seal is arranged in the gap.
  • a connecting column is arranged in the flow channel, and a flow hole is opened on the connecting column along the flow direction.
  • installation grooves are provided on two opposite surfaces of the partition, and two ends of the connecting column are respectively inserted into the installation grooves.
  • reinforcing ribs are provided on the lower surface of the partition along the radial direction of the partition.
  • the water-making component further includes:
  • thermo insulation layer covering the outer wall of the container
  • the temperature detecting element is inserted in the side wall of the containing body and protrudes into the second containing area.
  • the water-making component further includes a fastener, and the fastener is sheathed on the outer wall of the heat insulation layer so that the heat insulation layer is attached to the outer wall of the containing body .
  • a flow guide assembly is provided in the containing body, and a flow channel is provided in the flow guide assembly, a partition is provided in the flow channel, and two adjacent partitions are connected by an inclined guide plate , and further optimize the structure of the planar flow guide assembly in the related art, so that the interval between the water bodies with different temperatures between the first accommodation area and the second accommodation area on the upper and lower sides of the flow guide assembly becomes larger, thereby effectively realizing To prevent the effect of string temperature.
  • the inclined guide plate while increasing the distance between water bodies of different temperatures, it can ensure that the cold water or hot water in the first storage area or the second storage area can be cooled or heated faster, thereby reducing the impact on the water supply.
  • the energy consumption of the water supply of the equipment can avoid the formation of dead water in the flow channel.
  • Fig. 1 is a schematic exploded view of a water-making component provided by an embodiment of the present application
  • Fig. 2 is a schematic structural diagram of a water-making component provided by an embodiment of the present application.
  • Fig. 3 is a schematic structural diagram of a flow guide assembly provided by an embodiment of the present application.
  • Fig. 4 is a partial enlarged view of place A in Fig. 3;
  • Fig. 5 is a schematic structural diagram of a partition and a drainage tube provided in an embodiment of the present application.
  • Fig. 6 is a schematic top view of a partition provided by an embodiment of the present application.
  • connection and “connected” should be understood in a broad sense, for example, it can be a fixed connection or a detachable connection, Or integrated connection; it can be mechanical connection or electrical connection; it can be direct connection or indirect connection through an intermediary.
  • connection should be understood in a broad sense, for example, it can be a fixed connection or a detachable connection, Or integrated connection; it can be mechanical connection or electrical connection; it can be direct connection or indirect connection through an intermediary.
  • the first feature may be in direct contact with the first feature or the first feature and the second feature may pass through the middle of the second feature.
  • Media indirect contact Moreover, “above”, “above” and “above” the first feature on the second feature may mean that the first feature is directly above or obliquely above the second feature, or simply means that the first feature is higher in level than the second feature.
  • “Below”, “beneath” and “beneath” the first feature may mean that the first feature is directly below or obliquely below the second feature, or simply means that the first feature is less horizontally than the second feature.
  • the embodiment of the present application provides a water supply device, including a water control unit 100 and a flow guide assembly 104; the water control unit 100 is provided with a containing body 102; In order to divide the receiving body 102 into a first receiving area 106 and a second receiving area 108 in fluid communication, along the height direction of the receiving body 102, the flow guide assembly 104 is formed with In the flow channel, a partition 109 is arranged in the flow channel, and two adjacent partitions 109 are connected by an inclined guide plate 114 .
  • the flow guide assembly 104 is provided in the containing body 102, and the flow channel is provided in the flow guide assembly 104, and a partition 109 is arranged in the flow channel, and the space between two adjacent partitions 109 The space is connected by inclined guide plate 114, thereby optimizing the structure of the planar flow guide assembly 104 in the related art, so that the water bodies with different temperatures between the first accommodation area 106 and the second accommodation area 108 on the upper and lower sides of the flow guide assembly 104 The interval becomes larger, which effectively realizes the effect of preventing cross temperature.
  • the water supply equipment can be a water dispenser, there can be a cold tank and a hot tank in the water dispenser, the cold tank is used for preparing cold water, and the hot tank is used for preparing hot water.
  • the water production unit 100 can be a cold tank or a hot tank. Take the water making unit 100 as an example of a cold tank, that is, the water making unit 100 is used to prepare cold water.
  • a containing body 102 is arranged in the water-making component 100, and the containing body 102 is used to hold clean water. Since the water-making component 100 is used to prepare cold water, part of the space of the containing body 102 is used to hold normal temperature water as a water source for preparing cold water. , that is, this part of the space is the first storage area 106 for holding normal temperature water; another part of the space is used for holding the prepared cold water, that is, this part of the space is the second storage area for holding cold water 108. In this case, since there is a temperature difference between the normal temperature water and the cold water, in order to prevent temperature crossover, a flow guide assembly 104 is provided in the containing body 102 .
  • the above-mentioned first accommodation area 106 and second accommodation area 108 can be formed in the accommodation body 102 by arranging the air guide assembly 104, it can be understood that the accommodation body 102 above the air guide assembly 104 is the first accommodation area 106 , the containing body 102 located below the flow guide assembly 104 is a second containing area 108 .
  • a flow channel communicating with the first containing area 106 and the second containing area 108 is formed in the flow guide assembly 104 .
  • the communication between the first storage area 106 and the second storage area 108 can be realized through a flow channel, and a partition 109 is arranged in the flow channel, and an inclined guide plate 114 is arranged between the partitions 109.
  • the temperature variation of the cold water in the second storage area 108 is smaller, and in the cooling process, it can be reached faster.
  • Target cooling temperature which reduces energy consumption in the cooling process.
  • two adjacent partitions 109 communicate through inclined guide plates 114 .
  • the water on the upper partition 109 can flow into the lower partition 109 under the guidance of the inclined guide plate 114. backwaters.
  • the containing body 102 is provided with a first outlet 116 and a second outlet 118 , the first containing area 106 is in fluid communication with the first outlet 116 , and the second containing area 108 is in fluid communication with the second outlet 118 .
  • two different water outlets are respectively formed on the container body 102 , wherein the first outlet 116 is in fluid communication with the first container area 106 , that is, normal temperature water can directly flow out of the container body 102 through the first outlet 116 and flow to a warm water tap or to a hot tank.
  • the second outlet 118 is in fluid communication with the second storage area 108 , that is, the prepared cold water can directly flow out of the storage body 102 through the second outlet 118 and flow to the cold water switch.
  • a temperature regulating device 138 is disposed on a side wall of the containing body 102 corresponding to the second containing area 108 .
  • cold water and hot water can be stored in the second storage area 108.
  • corresponding temperature adjustment devices 138 such as evaporators, heating wires, etc.
  • the evaporator can be installed on the outer wall or the inner wall of the containing body 102.
  • the heating wire can be coiled on the outer wall or the inner wall of the containing body 102.
  • the temperature regulating device 138 in the second storage area 108, the overall volume of the water supply equipment can be reduced, and the miniaturization of the water supply equipment can be realized.
  • the drainage assembly 104 includes a drainage tube 120 and a top partition 110 , a middle partition 112 , and a bottom partition 113 arranged sequentially from top to bottom; wherein, the drainage tube 120 is disposed in the housing body 102 , and the two ends of the drainage tube 120 communicate with the first accommodation area 106 and the first outlet 116 respectively; between the top partition 110 and the middle partition 112 and between the middle partition 112 and the bottom partition 113 are connected by an inclined guide plate 114 .
  • the flow guiding assembly 104 includes a drainage tube 120 , and a top partition 110 , a middle partition 112 and a bottom partition 113 arranged along the axial direction of the drainage tube 120 and spirally wound.
  • flow passages are formed between the top partition 110 and the bracket of the middle partition 112 and between the middle partition 112 and the bottom partition 113 .
  • the drainage tube 120 can be arranged in the container body 102 along the height direction of the container body 102, and the purpose of setting the drainage tube 120 is to provide stable support for the top partition 110, the middle partition 112 and the bottom partition 113 on the one hand, and another The purpose of this aspect is to communicate with the first storage area 106 and the first outlet 116 . It can be understood that the two ends of the drainage tube 120 are respectively in fluid communication with the first storage area 106 and the first outlet 116. At this time, when clean water enters the first storage area 106, it can enter The drain tube 120 then flows out directly through the first outlet 116 to flow to a warm water switch or to a hot tank.
  • the top baffle 110 , the middle baffle 112 and the bottom baffle 113 can be integrally formed on the drainage tube 120 , and can also be connected to the drainage tube 120 by means of plugging or the like.
  • the top baffle 110, the middle baffle 112 and the bottom baffle 113 are helically wound around the outer wall of the drainage tube 120 as a whole, so that the helical flow of the top baffle 110, the middle baffle 112 and the bottom baffle 113 can pass through.
  • the winding and drainage tube 120 forms the flow path described above.
  • the top baffle 110 , the middle baffle 112 and the bottom baffle 113 can be made of materials with poor heat conduction effect, which can further prevent cross temperature between the first storage area 106 and the second storage area 108 .
  • the edges of the top partition 110, the middle partition 112 and the bottom partition 113 abut against the inner wall of the container body 102; or the edges of the top partition 110, the middle partition 112 and the bottom partition 113
  • a gap is formed with the inner wall of the containing body 102 , and a sealing member is provided in the gap.
  • the edges of the top partition 110 , the middle partition 112 and the bottom partition 113 are in contact with the storage body 102 in direct contact with the inner wall.
  • the edges of the top partition 110, the middle partition 112 and the bottom partition 113 can be spaced apart from the inner wall of the container body 102.
  • Seals may be provided between the edges of the middle partition 112 and the bottom partition 113 and the containing body 102 to prevent mixing of water bodies with different temperatures.
  • the first storage area 106 can hold normal temperature water, and the second storage area 108 is used to hold cold water; the first storage area 106 can also hold normal temperature water, and the second storage area 108 is used to hold cold water.
  • the height of the flow channel between the top partition 110 and the middle partition 112 is different from that between the middle partition 112 and the bottom partition 113, and the height of the flow channel near the second accommodation area 108 is different. The height is higher.
  • the top baffle 110 , the middle baffle 112 and the bottom baffle 113 are spirally wound on the drainage tube 120 and form a flow channel. It can be understood that, as shown in FIG. 2 and FIG. 3 , the top baffle 110 , the middle baffle 112 and the bottom baffle 113 are spirally wound at least twice, so that the drainage tube 120 can The upper and lower flow channels are formed.
  • the flow channel between the middle partition 112 and the bottom partition 113 is set close to the cold water zone, and the flow channel between the top partition 110 and the middle partition 112 is far away from the cold water.
  • Zone setting at this time, the height of the flow passage between the middle partition 112 and the bottom partition 113 is greater than the height of the flow passage between the top partition 110 and the middle partition 112 .
  • the purpose of this setting is to form a relatively large water storage space on the side of the cold water area, thereby being able to store more volumes of cold water, and at the same time to more effectively realize the difference between the cold water area and the normal temperature water area or between the cold water area and the hot water area. isolation, thereby ensuring the reduction of cooling energy consumption of the water dispenser.
  • the flow channel between the top partition 110 and the middle partition 112 It is set close to normal temperature water, and the flow channel between the middle partition 112 and the bottom partition 113 is set close to hot water.
  • the value range of the ratio of the height of the flow passage between the top partition 110 and the middle partition 112 to the height of the flow passage between the middle partition 112 and the bottom partition 113 is 1:5 to 5:7.
  • the height of the flow channel close to the cold water area or the hot water area is higher than the height of the flow channel away from the cold water area or the hot water area.
  • the top partition 110 and the middle partition 112 If the height of the flow channel between them is 10 mm, the height of the flow channel between the middle partition 112 and the bottom partition 113 can be 14 mm to 50 mm.
  • the ratio of the height of the flow channel between the top partition 110 and the middle partition 112 to the height of the flow channel between the middle partition 112 and the bottom partition 113 is 3:5, for example , the height of the flow channel between the top partition 110 and the middle partition 112 is 9 mm, and the height of the flow channel between the middle partition 112 and the bottom partition 113 can be 15 mm.
  • reinforcing ribs 128 are formed on the partition 109 along the radial direction of the partition 109 .
  • the reinforcing rib 128 can be arranged on the upper surface of the partition 109 , and can also be arranged on the lower surface of the partition 109 . Meanwhile, the extending direction of the reinforcing ribs 128 is not specifically limited, for example, the reinforcing ribs 128 may extend along the radial direction of the partition 109 or intersect along the surface of the partition 109 .
  • the ribs 128 are arranged on the lower surface of the partition 109. This is because the upper surface of the partition 109 is a flow surface. By arranging the ribs 128 on the lower surface of the partition 109, reinforcement The ribs 128 provide resistance to the flow of water.
  • a connecting post 124 is provided in the flow channel, and a flow hole 126 is opened on the connecting post 124 along the flow direction.
  • connecting columns 124 may be provided in the flow channel.
  • the connecting column 124 can be integrally formed with the partition 109 , or can be detachably connected with the partition 109 .
  • the connecting column 124 By arranging the connecting column 124 in the flow channel, the flow channel can be prevented from being deformed. That is, during the transportation and installation of the flow guide assembly 104 , the support of the connecting column 124 can ensure that the flow channel will not be deformed even if it is squeezed, thereby ensuring the service life of the flow guide assembly 104 .
  • an overflow hole 126 is also provided on the connecting column 124 along the flow direction, so that when the water flow passes through the connecting column 124, it can pass through.
  • the flow hole 126 flows out, and the flow resistance of the connecting column 124 to the water flow is reduced through the arrangement of the flow hole 126 .
  • the flow hole 126 mentioned here may be one or a plurality of flow holes. When there are a plurality of flow holes 126 , the flow holes 126 may be arranged at intervals along the height direction of the connecting column 124 . It should be noted that the flow direction mentioned here refers to the arc direction on the separator 109 .
  • the flow hole 126 is opened at the end of the connecting column 124 close to the bottom of the partition 109 .
  • the diameter of the flow hole 126 is not specifically limited here, as long as the flow can be realized.
  • two opposite surfaces of the partition 109 are provided with grooves, and the two ends of the connecting column 124 respectively correspond to the grooves.
  • grooves are provided on the partition 109 , and it can be understood that both ends of the connecting column 124 can be directly engaged in the groove.
  • the top partition 110, the middle partition 112 and the bottom partition can also be realized through the groove.
  • the positioning of the partition 113 that is, in the actual installation process, the grooves on the partition 109 can be set correspondingly, and then the top partition 110 , the middle partition 112 and the bottom partition 113 can be spliced together.
  • the end of the drainage tube 120 is provided with an installation port 130 , and when there are multiple drainage tubes 120 , two adjacent drainage tubes 120 are suitable to be connected through the installation port 130 .
  • an installation port 130 for process installation can also be provided at the end of the drainage tube 120. It can be understood that when there are multiple drainage tubes 120, multiple drainage tubes 120 can be placed along its axis. Splicing in sequence, by setting the above-mentioned installation port 130 at the end of the drainage tube 120, the connection between two adjacent drainage tubes 120 is facilitated.
  • the water-making component 100 further includes a heat insulating layer 132 and a temperature detecting member 134; the heat insulating layer 132 is covered on the outer wall of the containing body 102; the temperature detecting member 134 is inserted into the side wall of the containing body 102 And extend into the second accommodation area 108 .
  • the heat insulating layer 132 can be made of foam, and the heat insulating layer 132 can be arranged in a split structure or an integrated structure.
  • the integral heat insulation layer 132 can be directly coated on the outer wall of the containing body 102 to avoid the loss of cold or heat, and ensure the heat preservation effect after the cold water and hot water are prepared.
  • the heat insulation layer 132 When the heat insulation layer 132 is a one-piece structure, the heat insulation layer 132 can be directly sleeved on the outer wall of the containing body 102 to achieve the effect of heat preservation.
  • the temperature adjustment device 138 can be arranged between the heat insulation layer 132 and the container body 102, and when the heat insulation layer 132 covers the outer wall of the container body 102, the temperature regulation device 138 can be attached to the outer wall of the container body 102. On the outer wall of the container 102.
  • the temperature detecting element 134 is directly inserted into the side wall of the containing body 102 and protrudes into the second containing area 108. By setting in this way, it can ensure that the temperature detecting element 134 can directly and effectively detect the temperature in the second containing area 108, further Improve the accuracy of temperature control.
  • an installation hole may be opened on the containing body 102, and the temperature detecting element 134 may be directly installed in the installation hole.
  • a sealing plug is provided between the temperature detecting element 134 and the installation hole, and the sealing plug can also function to fix the temperature detecting element 134 .
  • the water-controlling component 100 further includes a fastener 136 , and the fastener 136 is sheathed on the outer wall of the heat insulation layer 132 so that the heat insulation layer 132 is attached to the outer wall of the containing body 102 .
  • the fasteners 136 can not only combine the split heat insulation layer 132 , but also tightly attach the heat insulation layer 132 to the outer wall of the container body 102 .
  • a corresponding installation groove 127 can also be provided on the outer wall of the heat insulation layer 132, and the fastener 136 can use a clip, which can be clamped in the installation groove 127 The fixing of the heat insulation layer 132 is realized.
  • the fastener 136 can tightly attach the heat insulation layer 132 to the outer wall of the containing body 102 .

Landscapes

  • Engineering & Computer Science (AREA)
  • Food Science & Technology (AREA)
  • Devices For Dispensing Beverages (AREA)

Abstract

一种供水设备,包括制水部件(100),制水部件(100)中设置有容纳体(102);导流组件(104),设置于容纳体(102)中以将容纳体(102)分隔为流体连通的第一容纳区(106)和第二容纳区(108),沿容纳体(102)的高度方向,导流组件(104)形成有连通第一容纳区(106)和第二容纳(108)区的流道(107),流道(107)内设置有隔板(109),相邻两个隔板(109)之间通过倾斜导板(114)连接。该供水设备能够优化相关技术中平面状的导流组件(104)的结构,使得导流组件(104)上下两侧的第一容纳区(106)和第二容纳区(108)之间温度不同的水体间的间隔变大,进而有效地实现了防止串温的效果。还能够保证第一容纳区(106)或第二容纳区(108)中冷水或者热水更快地实现制冷或加热,进而能够降低对低该供水设备的供水能耗。

Description

供水设备 技术领域
本申请涉及涉及水处理设备技术领域,尤其涉及一种供水设备。
背景技术
饮水机中的分流盘是为了将常温水分别引流到冷罐和热罐中。在相关技术中,饮水机中的分流盘并不能有效地实现防串温的效果,导致能耗较高。同时,饮水机中的分流盘还存在导流效果差的问题。
发明内容
本申请旨在至少解决相关技术中存在的技术问题之一。为此,本申请提出一种供水设备,能够有效地实现防串温的效果,降低饮水机的能耗。
本申请提供一种供水设备,包括:
制水部件,所述制水部件中设置有容纳体;
导流组件,设置于所述容纳体中以将所述容纳体分隔为流体连通的第一容纳区和第二容纳区,沿所述容纳体的高度方向,所述导流组件形成有连通所述第一容纳区和所述第二容纳区的流道,所述流道内设置有隔板,相邻两个所述隔板之间通过倾斜导板连接。
根据本申请实施例提供的供水设备,通过在容纳体中设置导流组件,并通过将导流组件中设置流道,流道内设置有隔板,相邻两个隔板之间通过倾斜导板连接,进而优化了相关技术中平面状的导流组件的结构,使得导流组件上下两侧的第一容纳区和第二容纳区之间温度不同的水体间的间隔变大,进而有效地实现了防止串温的效果。同时,通过设置倾斜导板,在增大不同温度水体之间间距的同时,能够保证第一容纳区或第二容纳区中冷水或者热水更快的实现制冷或加热,进而能够降低对低该供水设备的供水能耗,避免在流道中形成死水区。
根据本申请的一个实施例,述容纳体对应所述第二容纳区的侧壁设有调温装 置,所述流道中高度较高的部分靠近所述第二容纳区设置。
根据本申请的一个实施例,所述隔板包括顶部隔板、中间隔板和底部隔板,所述顶部隔板和所述中间隔板之间以及所述中间隔板和所述底部隔板之间通过所述倾斜导板连接。
根据本申请的一个实施例,位于所述顶部隔板以及所述中间隔板之间的所述流道的高度与位于所述中间隔板以及所述底部隔板之间的所述流道的高度比值的取值范围为1:5至5:7。
根据本申请的一个实施例,所述容纳体上设置有第一出口和第二出口,所述第一容纳区与所述第一出口流体连通,所述第二容纳区与所述第二出口流体连通。
根据本申请的一个实施例,所述导流组件包括引流管,所述引流管设置于所述容纳体中,且所述引流管的两端分别连通所述第一容纳区和所述第一出口。
根据本申请的一个实施例,所述引流管的至少一端设置有端部设置有安装口,在所述引流管为多个的情况下,相邻两个所述引流管适于通过所述安装口连接。
根据本申请的一个实施例,所述隔板的边缘与所述容纳体的内壁抵接;或者,
所述隔板的边缘与所述容纳体的内壁之间形成有间隙,且所述间隙中设置有密封件。
根据本申请的一个实施例,所述流道中设置有连接柱,沿过流方向,所述连接柱上开设有过流孔。
根据本申请的一个实施例,所述隔板上相对的两个面设置有安装槽,所述连接柱的两端分别插设于所述安装槽。
根据本申请的一个实施例,沿所述隔板的径向,在所述隔板的下表面设置有加强筋。
根据本申请的一个实施例,所述制水部件还包括:
隔热层,包覆于所述容纳体的外壁;
温度检测件,插设于所述容纳体的侧壁并伸入所述第二容纳区。
根据本申请的一个实施例,所述制水部件还包括紧固件,所述紧固件套设于所述隔热层的外壁以使所述隔热层贴合于所述容纳体的外壁。
本申请实施例中的上述一个或多个技术方案,至少具有如下技术效果之一:
根据本申请实施例提供的供水设备,通过在容纳体中设置导流组件,并通过将导流组件中设置流道,流道内设置有隔板,相邻两个隔板之间通过倾斜导板连 接,进而优化了相关技术中平面状的导流组件的结构,使得导流组件上下两侧的第一容纳区和第二容纳区之间温度不同的水体间的间隔变大,进而有效地实现了防止串温的效果。同时,通过设置倾斜导板,在增大不同温度水体之间间距的同时,能够保证第一容纳区或第二容纳区中冷水或者热水更快的实现制冷或加热,进而能够降低对低该供水设备的供水能耗,避免在流道中形成死水区。
本申请的附加方面和优点将在下面的描述中部分给出,部分将从下面的描述中变得明显,或通过本申请的实践了解到。
附图说明
为了更清楚地说明本申请实施例或相关技术中的技术方案,下面将对实施例或相关技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1是本申请实施例提供的制水部件的示意性爆炸图;
图2是本申请实施例提供的制水部件的示意性结构图;
图3是本申请实施例提供的导流组件的示意性结构图;
图4是图3中A处的局部放大图;
图5是本申请实施例提供的隔板与引流管的示意性结构图;
图6是本申请实施例提供的隔板的示意性俯视图。
附图标记:
100、制水部件;102、容纳体;104、导流组件;106、第一容纳区;107、流道;108、第二容纳区;109、隔板;110、顶部隔板;112、中间隔板;113、底部隔板;114、倾斜导板;116、第一出口;118、第二出口;120、引流管;124、连接柱;126、过流孔;127、安装槽;128、加强筋;130、安装口;132、隔热层;134、温度检测件;136、紧固件;138、调温装置。
具体实施方式
下面结合附图和实施例对本申请的实施方式作进一步详细描述。以下实施例用于说明本申请,但不能用来限制本申请的范围。
在本申请实施例的描述中,需要说明的是,术语“中心”、“纵向”、“横向”、“上”、“下”、“前”、“后”、“左”、“右”、“竖直”、“水平”、“顶”、“底”、“内”、“外”等指示的方位或位置关系为基于附图所示的方位或位置关系,仅是为了便于描述本申请实施例和简化描述,而不是指示或暗示所指的装置或元件必须具有特定的方位、以特定的方位构造和操作,因此不能理解为对本申请实施例的限制。此外,术语“第一”、“第二”、“第三”仅用于描述目的,而不能理解为指示或暗示相对重要性。
在本申请实施例的描述中,需要说明的是,除非另有明确的规定和限定,术语“相连”、“连接”应做广义理解,例如,可以是固定连接,也可以是可拆卸连接,或一体连接;可以是机械连接,也可以是电连接;可以是直接相连,也可以通过中间媒介间接相连。对于本领域的普通技术人员而言,可以具体情况理解上述术语在本申请实施例中的具体含义。
在本申请实施例中,除非另有明确的规定和限定,第一特征在第二特征“上”或“下”可以是第一和第二特征直接接触,或第一和第二特征通过中间媒介间接接触。而且,第一特征在第二特征“之上”、“上方”和“上面”可是第一特征在第二特征正上方或斜上方,或仅仅表示第一特征水平高度高于第二特征。第一特征在第二特征“之下”、“下方”和“下面”可以是第一特征在第二特征正下方或斜下方,或仅仅表示第一特征水平高度小于第二特征。
在本说明书的描述中,参考术语“一个实施例”、“一些实施例”、“示例”、“具体示例”、或“一些示例”等的描述意指结合该实施例或示例描述的具体特征、结构、材料或者特点包含于本申请实施例的至少一个实施例或示例中。在本说明书中,对上述术语的示意性表述不必须针对的是相同的实施例或示例。而且,描述的具体特征、结构、材料或者特点可以在任一个或多个实施例或示例中以合适的方式结合。此外,在不相互矛盾的情况下,本领域的技术人员可以将本说明书中描述的不同实施例或示例以及不同实施例或示例的特征进行结合和组合。
如图1至图6所示,本申请实施例提供一种供水设备,包括制水部件100和导流组件104;制水部件100中设置有容纳体102;导流组件104设置于容纳体102中以将容纳体102分隔为流体连通的第一容纳区106和第二容纳区108,沿容纳体102的高度方向,导流组件104形成有连通第一容纳区106和第二容纳区108的流道,流道内设置有隔板109,相邻两个隔板109之间通过倾斜导板114连接。
根据本申请实施例提供的供水设备,通过在容纳体102中设置导流组件104,并通过将导流组件104中设置流道,流道内设置有隔板109,相邻两个隔板109之间通过倾斜导板114连接,进而优化了相关技术中平面状的导流组件104的结构,使得导流组件104上下两侧的第一容纳区106和第二容纳区108之间温度不同的水体间的间隔变大,进而有效地实现了防止串温的效果。同时,通过设置倾斜导板114,在增大不同温度水体之间间距的同时,能够保证第一容纳区106或第二容纳区108中冷水或者热水更快的实现制冷或加热,进而能够降低对低该供水设备的供水能耗,避免在流道中形成死水区。
请继续参见图1至图6,该供水设备可以是饮水机,饮水机中可以有冷罐和热罐,冷罐用于制备冷水,热罐用于制备热水。可以理解的是,制水部件100即可以是冷罐或者热罐。以制水部件100是冷罐为例,也即,该制水部件100用于制备冷水。
在制水部件100中设置有容纳体102,容纳体102用于盛放清水,由于该制水部件100用于制备冷水,容纳体102的部分空间用于盛放常温水以作为制备冷水的水源,也即,这部分空间为用于盛放常温水的第一容纳区106;另一部分空间用于盛放制备完成的冷水,也即,这部分空间为用于盛放冷水的第二容纳区108。在这种情况下,由于常温水与冷水之间存在温差,因而,为了防止串温,在容纳体102内设置有导流组件104。
通过设置导流组件104能够在容纳体102中形成上文所述的第一容纳区106和第二容纳区108,可以理解的是,位于导流组件104上方的容纳体102为第一容纳区106,位于导流组件104下方的容纳体102为第二容纳区108。
在本申请实施例中,为了实现防串温的效果,沿容纳体102的高度方向,在导流组件104中形成有连通第一容纳区106和第二容纳区108的流道。可以理解的是,第一容纳区106和第二容纳区108之间可以通过流道实现连通,流道中设置有隔板109,隔板109之间设置有倾斜导板114,通过这样设置,进而优化了相关技术中平面状的导流组件104的结构,使得第一容纳区106和第二容纳区108之间的间隔进一步地增大,由此即可实现防串温的效果。同时,由于第一容纳区106和第二容纳区108之间的间距被增大,因而使得位于第二容纳区108中的冷水的温度变化幅度更小,在制冷过程中,能够更快的达到目标制冷温度,这样即可降低制冷过程中的能耗。
参见图3,相邻两个隔板109之间通过倾斜导板114连通。通过在相邻两个隔板109之间设置倾斜导板114,使得上层隔板109上的水能够在倾斜导板114的引导作用下流入下层隔板109中,这样能够避免在导流组件104中出现死水区。
根据本申请的一个实施例,容纳体102上设置有第一出口116和第二出口118,第一容纳区106与第一出口116流体连通,第二容纳区108与第二出口118流体连通。
参见图2,在容纳体102上分别形成有两个不同的出水口,其中,第一出口116与第一容纳区106流体连通,也即,常温水可以直接通过第一出口116流出容纳体102并流至温水开关或者流至热罐中。第二出口118与第二容纳区108流体连通,也即,制备完成的冷水可以直接通过第二出口118流出容纳体102并流至冷水开关。
根据本申请的一个实施例,在容纳体102对应第二容纳区108的侧壁设置有调温装置138。
如前所述,第二容纳区108中可以盛放冷水、热水,相应的,在第二容纳区108对应的侧壁上可以设置相应的调温装置138,例如蒸发器、加热丝等。以蒸发器为例,蒸发器可以盘设在容纳体102的外壁或者内壁上,通过这样设置,当第一容纳区106中的水通过导流组件104进入到第二容纳区108中后,即可通过与蒸发器的换热实现制备冷水的目的。以加热丝为例,加热丝可以盘设在容纳体102的外壁或者内壁上,通过这样设置,当第一容纳区106中的水通过导流组件104进入到第二容纳区108中后,即可通过加热丝的加热实现制备热水的目的。
在本申请实施例中,通过在第二容纳区108设置调温装置138,能够减小该供水设备的整体体积,实现供水设备的小型化。
根据本申请的一个实施例,导流组件104包括引流管120和由上向下依次设置的顶部隔板110、中间隔板112和底部隔板113;其中,引流管120设置于容纳体102中,且引流管120的两端分别连通第一容纳区106和第一出口116;顶部隔板110和中间隔板112之间以及中间隔板112和底部隔板113之间通过倾斜导板114连接。
参见图2和图3,导流组件104包括引流管120以及沿引流管120的轴向设置且成螺旋绕设的顶部隔板110、中间隔板112和底部隔板113。在这种情况下,流道形成于顶部隔板110与中间隔板112支架以及中间隔板112和底部隔板113之间。
引流管120可以沿着容纳体102的高度方向设置于容纳体102内,设置引流管120的目的一方面在于为顶部隔板110、中间隔板112和底部隔板113提供稳定的支撑,另一方面的目的在于连通第一容纳区106以及第一出口116。可以理解的是, 引流管120的两端分别与第一容纳区106以及第一出口116实现流体连通,此时,当清水进入到第一容纳区106后,能够通过引流管120的端部进入引流管120,然后直接经过第一出口116流出以流至温水开关或者流至热罐中。
顶部隔板110、中间隔板112和底部隔板113可以一体成型在引流管120上,也可以通过插接等方式实现与引流管120的连通。顶部隔板110、中间隔板112和底部隔板113整体上呈螺旋状绕设于引流管120的外壁,由此,即可通过顶部隔板110、中间隔板112和底部隔板113的螺旋绕设以及引流管120形成上文所述的流道。顶部隔板110、中间隔板112和底部隔板113可以采用导热效果差的材料制成,这样能够进一步地防止第一容纳区106和第二容纳区108之间发生串温。
根据本申请的一个实施例,顶部隔板110、中间隔板112和底部隔板113的边缘与容纳体102的内壁抵接;或者顶部隔板110、中间隔板112和底部隔板113的边缘与容纳体102的内壁之间形成有间隙,且间隙中设置有密封件。
参见图2,在一些实施例中,为了提高第一容纳区106与第二容纳区108之间的隔水效果,顶部隔板110、中间隔板112和底部隔板113的边缘与容纳体102的内壁直接抵接。或者,在其他的一些实施例中,顶部隔板110、中间隔板112和底部隔板113的边缘可以与容纳体102的内壁间隔设置,此时,为了实现上述目的,在顶部隔板110、中间隔板112和底部隔板113的边缘与容纳体102之间可以设置密封件以防止温度不同的水体之间的混合。
根据本申请的一个实施例,第一容纳区106可以盛放常温水,第二容纳区108用于盛放冷水;第一容纳区106还可以盛放常温水,第二容纳区108用于盛放热水,位于顶部隔板110以及中间隔板112之间的流道与位于中间隔板112以及底部隔板113之间的流道的高度不同,且靠近第二容纳区108的流道的高度更高。
在本申请实施例中,顶部隔板110、中间隔板112和底部隔板113呈螺旋状绕设于引流管120上并形成有流道。可以理解的是,如图2和图3所示,顶部隔板110、中间隔板112和底部隔板113呈螺旋状绕设且至少绕设两圈,这样一来,就能够在引流管120上形成上下两层流道。
举例来说,当冷水区位于第一容纳区106时,中间隔板112和底部隔板113之间的流道靠近冷水区设置,顶部隔板110和中间隔板112之间的流道远离冷水区设置,此时,中间隔板112和底部隔板113之间的流道的高度大于顶部隔板110和中间隔板112之间的流道高度。这样设置的目的在于,能够在冷水区一侧形成相对 较大的储水空间,进而能够储存更多体积的冷水,同时也能够更加有效地实现冷水区与常温水区或者冷水区与热水区的隔离,进而保证饮水机的制冷能耗的降低。
当然,在其他的一些实施例中,若第一容纳区106用于盛放常温水,第二容纳区108用于盛放热水,则顶部隔板110和中间隔板112之间的流道靠近常温水设置,中间隔板112和底部隔板113之间的流道靠近热水设置。
根据本申请的一个实施例,位于顶部隔板110以及中间隔板112之间的流道的高度与位于中间隔板112以及底部隔板113之间的流道的高度的比值的取值范围为1:5至5:7。
如前所述,靠近冷水区或者热水区的流道的高度相较于远离冷水区或者热水区的流道的高度较高,举例来说,若位于顶部隔板110以及中间隔板112之间的流道高度为10毫米,则位于中间隔板112以及底部隔板113之间的流道的高度可以取14毫米至50毫米。通过这样设置,能够在冷水区一侧形成相对较大的储水空间,进而能够储存更多体积的冷水,同时也能够更加有效地实现冷水区与常温水区或者冷水区与热水区的隔离,进而保证饮水机的制冷能耗的降低。
在本申请实施例中,位于顶部隔板110以及中间隔板112之间的流道的高度与位于中间隔板112以及底部隔板113之间的流道的高度的比值为3:5,例如,位于顶部隔板110以及中间隔板112之间的流道的高度为9毫米,则位于中间隔板112以及底部隔板113之间的流道的高度可以取15毫米。
根据本申请的一个实施例,沿着隔板109的径向,在隔板109上形成有加强筋128。
参见图6,通过在隔板109上设置加强筋128,能够防止隔板109在运输、安装的过程中发生形变。加强筋128可以设置在隔板109的上表面,还可以设置在隔板109的下表面。同时,加强筋128的延伸方向并不做具体限定,例如,加强筋128可以沿着隔板109的径向方向延伸或者沿着隔板109的表面交叉设置。
在本申请实施例中,加强筋128设置在隔板109的下表面,这是由于隔板109的上表面为过流面,通过将加强筋128设置在隔板109的下表面,能够避免加强筋128对于水的流动造成阻力。
根据本申请的一个实施例,在流道中设置有连接柱124,沿过流方向,连接柱124上开设有过流孔126。
参见图3和图4,为了提升流道的结构强度,在流道中可以设置连接柱124。 连接柱124可以与隔板109一体成型,也可以与隔板109可拆卸地连接。
通过在流道中设置连接柱124,能够防止流道发生形变。也即,在导流组件104运输、安装的过程中,通过连接柱124的支撑,能够保证即便流道受到挤压也不会发生形变,进而保证了该导流组件104的使用寿命。
参见图4,为了避免连接柱124对水流的通过造成阻力,沿着过流方向,在连接柱124上还开设有过流孔126,这样一来,当水流经过连接柱124时,能够通过过流孔126流出,进而通过过流孔126的设置降低了连接柱124对于水流的流动阻力。这里提及的过流孔126可以是一个,也可以是多个,当过流孔126是多个时,多个过流孔126可以沿着连接柱124的高度方向间隔设置。需要说明的是,这里提及的过流方向是指隔板109上的圆弧方向。
参见图4,在本申请实施例中,过流孔126开设在连接柱124上靠近隔板109底部的一端。通过这样设置,即便流道中的水流量很小时,也能够通过过流孔126流出,避免了连接柱124对水流造成影响。过流孔126的孔径这里并不做具体限定,只要能够实现过流的作用即可。
根据本申请的一个实施例,隔板109上相对的两个面设置有凹槽,连接柱124的两端分别与凹槽对应。
在本申请实施例中,为了提高连接柱124的装配便利性,在隔板109上设置有凹槽,可以理解的是,连接柱124的两端可以直接卡接在凹槽内。同时,通过在隔板109上设置凹槽,在顶部隔板110、中间隔板112以及底部隔板113的拼接过程中,还能够通过凹槽实现对顶部隔板110、中间隔板112以及底部隔板113的定位,也即,在实际安装过程中,可以将隔板109上的凹槽对应设置,然后再将顶部隔板110、中间隔板112以及底部隔板113拼接即可。
根据本申请的一个实施例,引流管120的端部设置有安装口130,当引流管120为多个时,相邻两个引流管120适于通过安装口130连接。
在本申请实施例中,在引流管120的端部还可以设置用于工艺安装的安装口130,可以理解的是,当引流管120为多个时,可以将多个引流管120沿其轴向依次拼接,通过在引流管120的端部设置上述安装口130,便于相邻两个引流管120之间的连接。
根据本申请的一个实施例,制水部件100还包括隔热层132和温度检测件134;隔热层132包覆于容纳体102的外壁;温度检测件134插设于容纳体102的侧壁并伸 入第二容纳区108。
参见图1,隔热层132可以使用泡沫制成,隔热层132可以设置成分体式结构或者一体式结构,当隔热层132为分体式结构时,隔热层132可以设置成两组,分体式隔热层132可以直接包覆在容纳体102的外壁以避免冷量或者热量的流失,保证冷水、热水制备完成后的保温效果。
当隔热层132为一体式结构时,隔热层132可以直接套设在容纳体102的外壁以实现保温的效果。此外,需要说明的是,调温装置138可以设置在隔热层132与容纳体102之间,当隔热层132包覆于容纳体102的外壁时,同时可以将调温装置138贴紧在容纳体102的外壁上。
温度检测件134直接插设在容纳体102的侧壁并伸入至第二容纳区108中,通过这样设置,能够保证温度检测件134可以直接有效地检测第二容纳区108中的温度,进一步地提升控温的准确性。例如,可以在容纳体102上开设一个安装孔,温度检测件134可以直接安装于安装孔中。同时,为了避免温度检测件134与容纳体102之间发生漏水的情况,在温度检测件134与安装孔之间还设置有密封塞,密封塞同时还能够起到固定温度检测件134的作用。
根据本申请的一个实施例,制水部件100还包括紧固件136,紧固件136套设于隔热层132的外壁以使隔热层132贴合于容纳体102的外壁。
参见图1,当隔热层132为分体式结构时,紧固件136不仅仅能够将分体式隔热层132进行组合,还能够将隔热层132紧紧地贴合在容纳体102的外壁。相应的,为了实现对紧固件136的固定,在隔热层132的外壁还可以设置相应的安装槽127,紧固件136可以使用卡箍,将卡箍卡设于安装槽127中即可实现对隔热层132的固定。当隔热层132为一体式结构时,紧固件136可以将隔热层132紧紧地贴合在容纳体102的外壁。
最后应说明的是:以上实施例仅用以说明本申请的技术方案,而非对其限制;尽管参照前述实施例对本申请进行了详细的说明,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分技术特征进行等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本申请各实施例技术方案的精神和范围。

Claims (13)

  1. 一种供水设备,其特征在于,包括:
    制水部件(100),所述制水部件(100)中设置有容纳体(102);
    导流组件(104),设置于所述容纳体(102)中以将所述容纳体(102)分隔为流体连通的第一容纳区(106)和第二容纳区(108),沿所述容纳体(102)的高度方向,所述导流组件(104)形成有连通所述第一容纳区(106)和所述第二容纳区(108)的流道(107),所述流道(107)内设置有隔板(109),相邻两个所述隔板(109)之间通过倾斜导板(114)连接。
  2. 根据权利要求1所述的供水设备,其特征在于,所述容纳体(102)对应所述第二容纳区(108)的侧壁设有调温装置(138),所述流道(107)中高度较高的部分靠近所述第二容纳区(108)设置。
  3. 根据权利要求2所述的供水设备,其特征在于,所述隔板(109)包括顶部隔板(110)、中间隔板(112)和底部隔板(113),所述顶部隔板(110)和所述中间隔板(112)之间以及所述中间隔板(112)和所述底部隔板(113)之间通过所述倾斜导板(114)连接。
  4. 根据权利要求3所述的供水设备,其特征在于,位于所述顶部隔板(110)以及所述中间隔板(112)之间的所述流道(107)的高度与位于所述中间隔板(112)以及所述底部隔板(113)之间的所述流道(107)的高度比值的取值范围为1:5至5:7。
  5. 根据权利要求1至4中任一项所述的供水设备,其特征在于,所述容纳体(102)上设置有第一出口(116)和第二出口(118),所述第一容纳区(106)与所述第一出口(116)流体连通,所述第二容纳区(108)与所述第二出口(118)流体连通。
  6. 根据权利要求5所述的供水设备,其特征在于,所述导流组件(104)包括引流管(120),所述引流管(120)设置于所述容纳体(102)中,且所述引流管(120)的两端分别连通所述第一容纳区(106)和所述第一出口(116)。
  7. 根据权利要求6所述的供水设备,其特征在于,所述引流管(120)的至少一端设置有端部设置有安装口(130),在所述引流管(120)为多个的情况下, 相邻两个所述引流管(120)适于通过所述安装口(130)连接。
  8. 根据权利要求1至4中任一项所述的供水设备,其特征在于,所述隔板(109)的边缘与所述容纳体(102)的内壁抵接;或者,
    所述隔板(109)的边缘与所述容纳体(102)的内壁之间形成有间隙,且所述间隙中设置有密封件。
  9. 根据权利要求1至4中任一项所述的供水设备,其特征在于,所述流道(107)中设置有连接柱(124),沿过流方向,所述连接柱(124)上开设有过流孔(126)。
  10. 根据权利要求9所述的供水设备,其特征在于,所述隔板(109)上相对的两个面设置有安装槽(127),所述连接柱(124)的两端分别插设于所述安装槽(127)。
  11. 根据权利要求1至4中任一项的供水设备,其特征在于,沿所述隔板(109)的径向,在所述隔板(109)的下表面设置有加强筋(128)。
  12. 根据权利要求1至4中任一项所述的供水设备,其特征在于,所述制水部件(100)还包括:
    隔热层(132),包覆于所述容纳体(102)的外壁;
    温度检测件(134),插设于所述容纳体(102)的侧壁并伸入所述第二容纳区(108)。
  13. 根据权利要求12所述的供水设备,其特征在于,所述制水部件(100)还包括紧固件(136),所述紧固件(136)套设于所述隔热层(132)的外壁以使所述隔热层(132)贴合于所述容纳体(102)的外壁。
PCT/CN2022/078366 2022-02-28 2022-02-28 供水设备 WO2023159585A1 (zh)

Priority Applications (1)

Application Number Priority Date Filing Date Title
PCT/CN2022/078366 WO2023159585A1 (zh) 2022-02-28 2022-02-28 供水设备

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/CN2022/078366 WO2023159585A1 (zh) 2022-02-28 2022-02-28 供水设备

Publications (1)

Publication Number Publication Date
WO2023159585A1 true WO2023159585A1 (zh) 2023-08-31

Family

ID=87764416

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2022/078366 WO2023159585A1 (zh) 2022-02-28 2022-02-28 供水设备

Country Status (1)

Country Link
WO (1) WO2023159585A1 (zh)

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2005132404A (ja) * 2003-10-29 2005-05-26 Ishino Seisakusho:Kk 飲料水供給装置
GB2417058B (en) * 2004-08-11 2008-08-13 Aqualisa Products Ltd Water mixing valve
CN201505017U (zh) * 2009-09-16 2010-06-16 美的集团有限公司 一种饮水机的导流装置
CN108937577A (zh) * 2017-05-25 2018-12-07 佛山市顺德区美的饮水机制造有限公司 分流盘、饮水机的冷罐和饮水机
CN109222660A (zh) * 2017-07-11 2019-01-18 佛山市顺德区美的饮水机制造有限公司 热罐及饮水机
CN210383644U (zh) * 2019-04-09 2020-04-24 佛山市顺德区美的饮水机制造有限公司 饮水机的冷罐组件及饮水机

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2005132404A (ja) * 2003-10-29 2005-05-26 Ishino Seisakusho:Kk 飲料水供給装置
GB2417058B (en) * 2004-08-11 2008-08-13 Aqualisa Products Ltd Water mixing valve
CN201505017U (zh) * 2009-09-16 2010-06-16 美的集团有限公司 一种饮水机的导流装置
CN108937577A (zh) * 2017-05-25 2018-12-07 佛山市顺德区美的饮水机制造有限公司 分流盘、饮水机的冷罐和饮水机
CN109222660A (zh) * 2017-07-11 2019-01-18 佛山市顺德区美的饮水机制造有限公司 热罐及饮水机
CN210383644U (zh) * 2019-04-09 2020-04-24 佛山市顺德区美的饮水机制造有限公司 饮水机的冷罐组件及饮水机

Similar Documents

Publication Publication Date Title
KR102023619B1 (ko) 냉수탱크 및 이를 구비하는 수처리 기기
US20100319878A1 (en) Multilateral continuous uniform rapid cooling device of double cooling structure
US20100101767A1 (en) Heat pump type hot water supply apparatus
WO2023159585A1 (zh) 供水设备
CN210892353U (zh) 一种液体速冷装置
CN109520176A (zh) 换热装置
KR101920067B1 (ko) 조립블록구조의 해수용 쉘 앤 나선형코일타입 열교환기
WO2024036992A1 (zh) 风路组件及制冷设备
CN210892251U (zh) 一种液体速冷装置
KR20130024592A (ko) 저장탱크
US20140003801A1 (en) Water heating system
CN114557598B (zh) 供水设备
KR102066478B1 (ko) 유체 냉각장치 및 이의 제조방법
CN114766912B (zh) 供水设备
CN110984307B (zh) 一种排水管用隔板
CN114601336B (zh) 饮水设备
WO2023159621A1 (zh) 储水装置及饮水设备
CN217013614U (zh) 容器及饮水机
CN217013581U (zh) 分流盘、冷罐以及饮水机
CN114766918A (zh) 饮水设备的冷罐和饮水设备
CN114601337B (zh) 储水装置及饮水设备
WO2023159626A1 (zh) 水路组件及供水装置
WO2023159623A1 (zh) 饮水设备
WO2023159605A1 (zh) 饮水设备的冷罐和饮水设备
CN114766911A (zh) 分流盘、冷罐以及饮水设备

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 22927866

Country of ref document: EP

Kind code of ref document: A1