Ice making module capable of preventing water leakage and ice making machine
By designing a connected structure for the cold water tank, water replenishment tank, ice-making tank, and ice storage chamber in the ice maker, and utilizing a gas pressure relief mechanism to balance the gas pressure, the problem of water leakage or rupture in the ice maker is solved, achieving a more efficient ice-making process and a lower cost ice maker design.
Patent Information
- Application Number
- CN202423169378.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-20
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2034-12-20
AI Technical Summary
The cold water tank, water replenishment tank, and ice-making container in ice makers are prone to leakage or rupture due to increased air pressure, and existing technologies are unable to effectively solve this problem.
Design a leak-proof ice-making module. By using a gas pressure relief mechanism to balance the air pressure through the interconnected structure between the cold water tank, the water replenishment tank, the ice-making tank, and the ice storage chamber, the module ensures the circulation of water and avoids leakage or rupture caused by excessive air pressure.
It effectively prevents the cold water tank, water replenishment tank, and ice maker from leaking or cracking due to excessive air pressure, improves ice-making efficiency and safety, simplifies the structure, and reduces the cost of the ice maker.
Smart Images

Figure CN223769098U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of ice-making technology, and in particular to a leak-proof ice-making module and ice maker. Background Technology
[0002] An ice maker is a refrigeration machine that produces ice by cooling water through an evaporator with a refrigerant in a refrigeration system.
[0003] The ice-making module of the ice maker mainly includes an ice maker, an ice box, a cold water tank, a water replenishment tank, and an ice storage box. The inlet of the cold water tank is connected to the outlet of the pure water tank of the ice maker, the outlet of the cold water tank is connected to the inlet of the water replenishment tank, the water replenishment tank is connected to the ice box, and the ice maker is used to make ice from the water in the ice box.
[0004] However, to ensure smooth water delivery, the ice-making module is equipped with a water pump on the connecting pipeline between the cold water tank and the water replenishment tank. The water pump is controlled electronically and is prone to malfunction. In the event of a malfunction, water in the cold water tank will be continuously pumped to the water replenishment tank and then transported to the ice-making box. During this process, the air pressure in the cold water tank, water replenishment tank, and ice-making box will continuously increase, which may cause at least one of the three to leak or even rupture. Utility Model Content
[0005] This application provides a leak-proof ice-making module and ice maker to solve the leakage problem existing in related technologies. The technical solution is as follows:
[0006] In a first aspect, embodiments of this application provide a leak-proof ice-making module, comprising:
[0007] A cold water tank, wherein the first inlet of the cold water tank is used to connect to the pure water tank of the ice maker;
[0008] A water supply tank, wherein the inlet of the water supply tank is connected to the first outlet of the cold water tank;
[0009] A water pump is installed on the first connecting pipeline between the water supply tank and the cold water tank, and the water pump is used to draw water from the cold water tank to the water supply tank.
[0010] An ice maker has an ice-making tank and an ice outlet connected to the ice-making tank. The water inlet of the ice-making tank is connected to the water outlet of the water supply tank, and the ice outlet is also connected to the second water inlet of the cold water tank.
[0011] An ice maker, wherein the ice maker is disposed within the ice-making tank, and the ice maker is used to produce ice from the water in the ice-making tank; and
[0012] An ice storage box, the ice storage box having an ice storage cavity, the ice storage cavity being connected to the ice outlet, and the ice storage cavity also being connected to the outside atmosphere.
[0013] In one embodiment, the ice storage box further has a return port communicating with the ice storage cavity, and the return port is also connected to the third water inlet of the cold water tank.
[0014] In one embodiment, the height of the reflux port is higher than the height of the third inlet of the cold water tank.
[0015] In one embodiment, the outlet of the water replenishment tank is located at a higher height than the inlet of the ice-making tank.
[0016] In one embodiment, the ice outlet is located at a height higher than the second inlet of the cold water tank.
[0017] In one embodiment, the ice outlet is located at a height higher than the ice storage cavity.
[0018] In one embodiment, an ice discharge channel is provided between the ice-making box and the ice storage box. The ice discharge channel has an ice discharge groove and a water collection port. The ice discharge groove connects the ice outlet and the ice storage cavity. The water collection port is located on the bottom wall of the ice discharge groove and is connected to the second water inlet of the cold water tank. The water collection port is used to collect the water flowing out of the ice outlet to the second water inlet of the cold water tank.
[0019] In one embodiment, the inlet of the ice discharge chute extends through the ice discharge channel both above and below, and the inlet of the ice discharge channel is located above the ice discharge outlet and is connected to the ice discharge outlet.
[0020] The ice discharge chute is also provided with a flow guide, which is arranged around the inlet of the ice discharge chute and is arranged obliquely downward toward the ice discharge chute. The flow guide is used to guide the ice and water output from the ice outlet to the ice discharge chute.
[0021] In one embodiment, the ice discharge chute further includes a water collection chamber, a drain hole, and a baffle. The water collection chamber is located below the ice discharge chute and is connected to the second water inlet of the cold water tank.
[0022] The drain hole is located on the bottom wall of the ice discharge chute. The drain hole connects the ice discharge chute and the water collection cavity. The drain hole is used to guide the water in the ice discharge chute to the water collection cavity and prevent ice blocks from falling into the water collection cavity.
[0023] The bottom wall of the ice discharge chute is provided with a drainage section and a non-porous section. The drainage section and the non-porous section are arranged sequentially along the width direction of the ice discharge chute. The drainage holes and the water collection port are both provided on the drainage section.
[0024] The baffle is located on the side near the inlet of the ice discharge chute. The baffle and the non-perforated part are arranged sequentially along the ice discharge direction of the ice discharge chute. The ice discharge direction of the ice discharge chute is perpendicular to or inclined to the width direction of the ice discharge chute. The first side of the baffle is connected to the first sidewall of the ice discharge chute in the width direction, and the second side of the baffle forms an outlet with the second sidewall of the ice discharge chute in the width direction. The outlet and the drain part are arranged sequentially along the ice discharge direction of the ice discharge chute. The outlet allows the ice and water output from the inlet of the ice discharge chute to flow to the drain part.
[0025] Secondly, embodiments of this application provide an ice maker, including the aforementioned leak-proof ice-making module.
[0026] The advantages or beneficial effects of the above technical solutions include at least the following:
[0027] This invention relates to a leak-proof ice-making module. Because the cold water tank is connected to the replenishment tank, the replenishment tank is connected to the ice-making tank, the ice-making tank is connected to the cold water tank, and the ice storage chamber is connected to the outside atmosphere, in the event of a pump malfunction, the gas in the cold water tank flows to the replenishment tank under the pressure of the water, and the gas in the replenishment tank flows to the ice-making tank under the pressure of the water. The gas in the ice-making tank is released to the outside through the ice storage chamber, thus achieving pressure relief and balancing the air pressure. This ensures that the liquid can circulate between the cold water tank, the replenishment tank, and the ice-making tank, preventing excessive air pressure in these three components from hindering the circulation of the liquid. Therefore, it can prevent leaks or ruptures in the cold water tank, the replenishment tank, and the ice-making tank.
[0028] The above overview is for illustrative purposes only and is not intended to be limiting in any way. In addition to the illustrative aspects, embodiments, and features described above, further aspects, embodiments, and features of this application will become readily apparent from the accompanying drawings and the following detailed description. Attached Figure Description
[0029] In the accompanying drawings, unless otherwise specified, the same reference numerals throughout the various drawings denote the same or similar parts or elements. These drawings are not necessarily drawn to scale. It should be understood that these drawings depict only some embodiments disclosed in this application and should not be construed as limiting the scope of this application.
[0030] Figure 1 This is a simplified structural diagram of the ice-making module of this utility model;
[0031] Figure 2 This is a schematic diagram illustrating the principle of the ice-making module of this utility model being connected to the outside atmosphere;
[0032] Figure 3 This is a three-dimensional structural diagram of the ice-removing slide in this utility model;
[0033] Figure 4 This is a cross-sectional view of the ice-removing slide in this utility model;
[0034] Figure 5 This is a diagram showing the internal structure of the ice-removing slide in this utility model.
[0035] Figure Labels
[0036] 1. Cold water tank; 2. Make-up water tank; 3. Water pump; 4. Ice maker; 41. Ice trough; 5. Ice maker; 6. Ice storage box; 7. Second connecting pipe; 8. Third connecting pipe; 9. Fourth connecting pipe; 10. Ice discharge chute; 101. Ice discharge chute; 1011. Drainage section; 1012. Holeless section; 102. Water collection port; 103. Inlet of ice discharge chute; 104. Flow guide section; 105. Water collection chamber; 106. Drainage hole; 107. Baffle; 1071. Guide section; 108. Outlet; 20. Pure water tank. Detailed Implementation
[0037] In the following description, only certain exemplary embodiments are briefly described. As those skilled in the art will recognize, the described embodiments can be modified in various ways without departing from the spirit or scope of this application. Therefore, the drawings and description are considered to be exemplary in nature and not restrictive.
[0038] See Figures 1-5 This invention illustrates a preferred embodiment of a leak-proof ice-making module, comprising:
[0039] Cold water tank 1, the first water inlet of cold water tank 1 is used to connect with pure water tank 20 of ice maker so that pure water output from pure water tank 20 can be delivered to cold water tank 1, so as to provide pure water source to cold water tank 1.
[0040] Water supply tank 2 has its inlet connected to the first outlet of cold water tank 1. The water supply tank 2 can store water and provide water to ice box 4 in a timely manner, thereby improving ice making efficiency.
[0041] A water pump 3 is installed on the first connecting pipeline between the water supply tank 2 and the cold water tank 1. The water pump 3 is used to pump water from the cold water tank 1 to the water supply tank 2 to replenish the water supply tank 2.
[0042] Ice maker 4 has an ice trough 41 and an ice outlet (not shown in the figure) connected to the ice trough 41. The water inlet of the ice trough 41 is connected to the water outlet of the water supply tank 2, and the ice outlet is also connected to the second water inlet of the cold water tank 1.
[0043] Ice maker 5, located inside ice-making tank 41, is used to make ice from the water in ice-making tank 41; and
[0044] Ice storage box 6 has an ice storage cavity, which is connected to an ice outlet and is also connected to the outside atmosphere.
[0045] This invention relates to a leak-proof ice-making module. Because the cold water tank 1 is connected to the replenishment tank 2, the replenishment tank 2 is connected to the ice-making tank 41, the ice-making tank 41 is connected to the cold water tank 1, the ice storage chamber, and the ice storage chamber is connected to the outside atmosphere, in the event of a malfunction of the water pump 3, the gas in the cold water tank 1 flows to the replenishment tank 2 under the pressure of the water, and the gas in the replenishment tank 2 flows to the ice-making tank 41 under the pressure of the water. The gas in the ice-making tank 41 is released to the outside through the ice storage chamber to relieve pressure and balance the air pressure. This ensures that the water can circulate among the cold water tank 1, the replenishment tank 2, and the ice-making tank 41, preventing excessive air pressure in these three components from hindering the circulation of water. Therefore, it can prevent leaks or ruptures in the cold water tank 1, the replenishment tank 2, and the ice-making tank 41.
[0046] See Figure 1 In one embodiment, the ice storage box 6 also has a return port connected to the ice storage cavity, and the return port is also connected to the third water inlet of the cold water tank 1, so that the melting water in the ice storage box 6 flows back to the cold water tank 1, thereby reducing the melting rate of the ice in the ice storage box 6. At the same time, it can also cool the water in the cold water tank 1, so that the cold water tank 1 provides the ice making box 4 with water at a lower temperature, thereby improving the ice making efficiency.
[0047] See Figure 1 In one embodiment, the return port is connected to the third inlet of the cold water tank 1 through the second connecting pipe 7. The height of the return port is higher than that of the third inlet of the cold water tank 1, so that the melted ice water in the ice storage box 6 can flow back to the cold water tank 1 under its own gravity. This eliminates the need for a power source on the second connecting pipe 7, simplifies the structure, reduces the cost of the ice maker, and facilitates the promotion and application of the ice maker.
[0048] See Figure 1In one embodiment, the outlet of the water supply tank 2 is connected to the inlet of the ice-making tank 41 through the third connecting pipe 8. The outlet of the water supply tank 2 is at a higher height than the inlet of the ice-making tank 41, so that the water in the water supply tank 2 can flow to the ice-making tank 41 under its own gravity. This eliminates the need for a power source on the third connecting pipe 8, simplifies the structure, reduces the cost of the ice maker, and facilitates the promotion and application of the ice maker.
[0049] See Figure 1 In one embodiment, the ice outlet is connected to the second inlet of the cold water tank 1 via the fourth connecting pipe 9. The height of the ice outlet is higher than that of the second inlet of the cold water tank 1, so that the water in the ice trough 41 can flow back to the cold water tank 1 under its own gravity. This eliminates the need for a power source on the fourth connecting pipe 9, simplifies the structure, reduces the cost of the ice maker, and facilitates the promotion and application of the ice maker.
[0050] See Figure 1 In one embodiment, the ice outlet is located at a higher height than the ice storage chamber, so that the ice output from the ice outlet can slide down into the ice storage chamber under its own gravity, making the ice discharge smoother and improving the ice discharge efficiency.
[0051] See Figure 1 To facilitate ice dispensing, in one embodiment, an ice dispensing chute 10 is provided between the ice-making box 4 and the ice storage box 6. The ice dispensing chute 10 has an ice dispensing groove 101 and a water collection port 102. The ice dispensing groove 101 connects the ice outlet and the ice storage cavity. The ice dispensing groove 101 is used to transport the ice output from the ice outlet to the ice storage cavity, so that the ice output from the ice outlet can slide along the ice dispensing groove 101 towards the ice storage cavity under its own gravity, making the ice dispensing smoother and improving the ice dispensing efficiency. The water collection port 102 is located on the bottom wall of the ice dispensing groove 101. The water collection port 102 is connected to the second water inlet of the cold water tank 1. The water collection port 102 is used to collect the water flowing out of the ice outlet to the second water inlet of the cold water tank 1. That is, the above-mentioned fourth connecting pipe 9 is provided between the water collection port 102 and the second water inlet of the cold water tank 1.
[0052] See Figures 4-5 In one embodiment, the inlet 103 of the ice discharge chute is connected to the ice discharge channel 10 both above and below, and the inlet of the ice discharge channel 10 is located above the ice discharge outlet and connected to the ice discharge outlet.
[0053] The ice discharge chute 10 is also provided with a flow guide 104. The flow guide 104 is arranged around the inlet 103 of the ice discharge chute and is arranged obliquely downward toward the ice discharge chute 101. The flow guide 104 is used to guide the ice and water output from the ice outlet to the ice discharge chute 101, so as to improve the ice discharge efficiency. At the same time, it can also effectively prevent ice and water accumulation near the inlet 103 of the ice discharge chute.
[0054] See Figures 4-5 In one embodiment, the ice discharge chute 10 also has a water collection cavity 105, a drain hole 106 and a baffle 107. The water collection cavity 105 is located below the ice discharge chute 101 and is connected to the second water inlet of the cold water tank 1.
[0055] The drain hole 106 is located on the bottom wall of the ice discharge chute 101. The drain hole 106 connects the ice discharge chute 101 and the water collection chamber 105. The drain hole 106 is used to guide the water in the ice discharge chute 101 to the water collection chamber 105 and prevent ice blocks from falling into the water collection chamber 105.
[0056] The bottom wall of the ice discharge chute 101 is provided with a drainage section 1011 and a non-porous section 1012. The drainage section 1011 and the non-porous section 1012 are arranged sequentially along the width direction of the ice discharge chute 101. The drainage hole 106 and the water collection port 102 are both provided on the drainage section 1011.
[0057] Baffle 107 is located on one side near the inlet 103 of the ice discharge chute. Baffle 107 and the non-perforated part 1012 are arranged sequentially along the ice discharge direction of the ice discharge chute 101. The ice discharge direction of the ice discharge chute 101 is perpendicular to or inclined to the width direction of the ice discharge chute 101. The first side of baffle 107 is connected to the first sidewall in the width direction of the ice discharge chute 101. The second side of baffle 107 and the second sidewall in the width direction of the ice discharge chute 101 form an outlet 108. The outlet 108 and the drain part 1011 are arranged sequentially along the ice discharge direction of the ice discharge chute 101. The ice and water output from the inlet 103 of the ice discharge chute are supplied to the drain part 1011 through the outlet 108. Thus, during the ice removal process, the guide section 104 directs the water output from the ice outlet to the water collection port 102, allowing most of the water flowing with the ice blocks to the ice removal chute 101 to be output through the water collection port 102 to the water collection chamber 105. This significantly reduces the amount of water in the ice removal chute 101. Simultaneously, the drain hole 106 directs the water in the ice removal chute 101 to the water collection chamber 105 and restricts the ice blocks from falling into the water collection chamber 105. The drain hole 106 can filter the ice blocks and a small amount of water in the ice removal chute 101, directing the water to the water collection chamber 105 and allowing the ice blocks to be output to the ice storage box 6. This effectively separates the ice blocks and water that have passed through the ice removal chute 101, preventing water from entering the ice storage box 6 with the ice blocks and improving the ice removal efficiency. The water separation effect makes the ice in the ice storage box 6 less likely to melt. At the same time, when ice is discharged from the ice outlet, the ice and water pass through the inlet 103 of the ice discharge chute. Under the obstruction of the baffle 107, the ice and water can only flow through the outlet 108 to the drain section 1011, ensuring that the ice and water are filtered through the drain hole 106 to achieve ice-water separation. While achieving ice-water separation, the ice blocks slide towards the non-porous section 1012 under the mutual compression between the ice blocks. Since the non-porous section 1012 has no drain hole 106, the ice blocks can slide smoothly. As the ice blocks slide along the non-porous section 1012, they also drive the ice blocks on the drain section 1011 to slide, ensuring that the ice blocks can slide smoothly along the ice discharge chute 101 to the ice storage box 6 without clogging, thus improving the ice discharge efficiency.
[0058] See Figure 5 In one embodiment, the baffle 107 is provided with a guide portion 1071 at one end near the inlet 103 of the ice discharge chute. The guide portion 1071 is inclined toward the outlet 108. The guide portion 1071 is used to guide the ice and water output from the inlet 103 of the ice discharge chute to the drain portion 1011, so that the ice discharge is smoother.
[0059] See Figure 5In one embodiment, the number of drainage holes 106 is multiple sets, and the multiple sets of drainage holes 106 are arranged at intervals along the ice discharge direction of the ice discharge chute 101. The ice discharge direction of the ice discharge chute 101 is parallel to the length direction of the ice discharge chute 101. Each set of drainage holes 106 is provided with at least one drainage hole 106, and the length extension direction of the drainage hole 106 is parallel to the width direction of the ice discharge chute 101. This ensures that ice and water can be separated while effectively preventing ice from getting stuck in the drainage section 1011.
[0060] In one embodiment, in two adjacent sets of drainage holes 106, one set has one drainage hole 106 and the other set has at least two drainage holes 106. The at least two drainage holes 106 are arranged at intervals along the width direction of the ice discharge groove 101. In this way, it is ensured that ice and water can be separated, and ice can be effectively prevented from getting stuck in the drainage section 1011.
[0061] It is understood that the diameter of the water inlet 102 is larger than the outer diameter of the ice block, so as to allow some ice blocks to fall into the cold water tank 1 and cool the water in the cold water tank 1. In order to limit a large number of ice blocks from entering the water inlet 102, the water inlet 102 is located on the side of the second side wall near the ice outlet chute 101.
[0062] A preferred embodiment of this utility model provides an ice maker, including the aforementioned leak-proof ice-making module.
[0063] The ice maker of this utility model, by adopting the aforementioned ice-making module, is based on the following: cold water tank 1 is connected to water replenishment tank 2, water replenishment tank 2 is connected to ice-making tank 41, ice-making tank 41 is connected to cold water tank 1, ice storage chamber, and ice storage chamber is connected to the outside atmosphere. In the event of a malfunction of the water pump 3, the gas in cold water tank 1 flows to water replenishment tank 2 under the push of water, and the gas in water replenishment tank 2 flows to ice-making tank 41 under the push of water. The gas in ice-making tank 41 is released to the outside through the ice storage chamber, which plays a role in balancing the air pressure and ensuring that the liquid can circulate among cold water tank 1, water replenishment tank 2, and ice-making tank 41. This avoids the obstruction of the circulation of liquid among cold water tank 1, water replenishment tank 2, and ice-making tank 41 due to excessive air pressure in these three parts, and can prevent leakage or rupture of cold water tank 1, water replenishment tank 2, and ice-making tank 41.
[0064] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of those different embodiments or examples.
[0065] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "a plurality of" means two or more, unless otherwise explicitly specified.
[0066] The above are merely specific embodiments of this application, but the scope of protection of this application is not limited thereto. Any person skilled in the art can easily conceive of various variations or substitutions within the technical scope disclosed in this application, and these should all be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. A water-leakage preventable ice mold set, characterized by comprising: The application relates to an ice making device, which comprises: a cold water tank, a first water inlet of which is used for communicating with a pure water tank of an ice maker; a water supplement tank, a water inlet of which is communicated with a first water outlet of the cold water tank; a water pump, which is arranged on a first communication pipeline between the water supplement tank and the cold water tank, and is used for pumping water in the cold water tank to the water supplement tank; an ice making box, which has an ice making groove and an ice outlet communicated with the ice making groove, a water inlet of the ice making groove is communicated with a water outlet of the water supplement tank, and the ice outlet is further communicated with a second water inlet of the cold water tank; an ice maker, which is arranged in the ice making groove and is used for making ice in the ice making groove; and an ice storage box, which has an ice storage cavity, the ice storage cavity is communicated with the ice outlet, and the ice storage cavity is further communicated with the atmosphere.
2. The water-leak preventable ice mold set according to claim 1, wherein The ice storage box further has a backflow port communicated with the ice storage cavity, and the backflow port is further communicated with a third water inlet of the cold water tank.
3. The water-leak-preventable ice mold set according to claim 2, wherein The height of the backflow port is higher than that of the third water inlet of the cold water tank.
4. The water-leak preventable ice mold set according to claim 1, wherein The height of the water outlet of the water supplement tank is higher than that of the water inlet of the ice making groove.
5. The water-leak-preventable ice mold set according to claim 1, wherein The height of the ice outlet is higher than that of the second water inlet of the cold water tank.
6. The water-leak-preventable ice mold set according to claim 1, wherein The height of the ice outlet is higher than that of the ice storage cavity.
7. The water-leakable ice cube mold set according to claim 6, wherein An ice outlet slide is arranged between the ice making box and the ice storage box, the ice outlet slide has an ice outlet slide groove and a water collecting port, the ice outlet slide groove is communicated with the ice outlet and the ice storage cavity, and is used for conveying ice output by the ice outlet to the ice storage cavity; the water collecting port is arranged on a bottom wall of the ice outlet slide groove, is communicated with the second water inlet of the cold water tank, and is used for collecting water flowing out of the ice outlet to the second water inlet of the cold water tank.
8. The water-leakable ice cube mold set according to claim 7, wherein An inlet of the ice outlet slide groove is vertically penetrated through the ice outlet slide, and the inlet of the ice outlet slide groove is arranged above the ice outlet and is communicated with the ice outlet. The ice outlet slide further has a flow guiding part, the flow guiding part is arranged around the inlet of the ice outlet slide groove, is arranged obliquely downward towards the ice outlet slide groove, and is used for guiding ice and water output by the ice outlet to the ice outlet slide groove.
9. The water-leakable ice cube mold set according to claim 8, wherein The ice outlet slide further has a water collecting cavity, a water draining hole and a baffle, the water collecting cavity is arranged below the ice outlet slide groove, and is communicated with the second water inlet of the cold water tank. The water draining hole is arranged on a bottom wall of the ice outlet slide groove, is communicated with the ice outlet slide groove and the water collecting cavity, and is used for guiding water in the ice outlet slide groove to the water collecting cavity and preventing ice from falling into the water collecting cavity. The bottom wall of the ice outlet slide groove has a water draining part and a non-hole part, the water draining part and the non-hole part are arranged in sequence along the width direction of the ice outlet slide groove, and the water draining hole and the water collecting port are arranged on the water draining part. The baffle is located on a side close to the entrance of the ice discharge chute, the baffle and the non-porous part are sequentially arranged along the ice discharge direction of the ice discharge chute, the ice discharge direction of the ice discharge chute is perpendicular to or inclined to the width direction of the ice discharge chute, the first side of the baffle is connected with the first side wall of the width direction of the ice discharge chute, the second side of the baffle forms an outlet with the second side wall of the width direction of the ice discharge chute, the outlet and the water draining part are sequentially arranged along the ice discharge direction of the ice discharge chute, and the outlet is used for guiding the ice and water output from the entrance of the ice discharge chute to the water draining part.
10. An ice maker characterized by, The ice mold group capable of preventing water leakage comprises the ice mold group capable of preventing water leakage according to any one of claims 1-9.