Ice outlet slide way and ice maker
By designing drainage holes and guide sections in the ice chute of the ice maker, the problem of incomplete ice-water separation is solved, achieving effective separation of ice and water, preventing ice from melting, and improving ice production efficiency and ice storage effect.
Patent Information
- Application Number
- CN202423169393.7
- 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 ice-water separation effect in existing ice makers is poor, which causes water to enter the ice storage box, making the ice cubes easy to melt and affecting ice storage.
Design an ice-removing slide, including a drain hole, a water collection port, and a guide section. The guide section directs water to the water collection port and the drain hole directs water to a water storage device, preventing ice from entering the water storage device and achieving ice-water separation.
It improves the ice-water separation effect, reduces water entering the ice storage box, prevents ice from melting, and improves ice dispensing efficiency and ice storage quality.
Smart Images

Figure CN223769102U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of ice-making technology, and in particular to an ice-discharging chute and an ice maker. Background Technology
[0002] An ice maker is a refrigeration machine that cools water through an evaporator using a refrigerant in a refrigeration system to produce ice. It is widely used in various settings such as restaurants, hotels, nightclubs, hospitals, schools, laboratories, and research institutes.
[0003] Currently, ice makers typically use an ice discharge chute to connect the ice outlet of the ice maker with the ice inlet of the ice storage box. To achieve ice-water separation, drainage holes are usually installed on the bottom wall of the ice discharge chute to separate the ice and water passing through it. However, in practical applications, the ice discharge chute has the problem of poor ice-water separation, resulting in more water entering the ice storage box and making the ice in the ice storage box melt more easily, which is not conducive to ice storage. Utility Model Content
[0004] This application provides an ice discharge slide and an ice maker to solve the problem of poor ice-water separation in related technologies. The technical solution is as follows:
[0005] In a first aspect, embodiments of this application provide an ice discharge chute, which is used to connect to an ice maker and includes:
[0006] The base has an ice outlet groove, a drain hole, a water collection port and a first guide part. The ice inlet of the ice outlet groove is used to connect to the ice outlet of the ice maker, and the ice outlet of the ice outlet groove is used to connect to the ice inlet of the ice storage box.
[0007] 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 storage device of the ice maker. The drain hole is used to guide the water in the ice discharge chute to the water storage device and to prevent the ice blocks in the ice discharge chute from falling into the water storage device.
[0008] The water collection port is located on the bottom wall of the ice discharge chute, and the water collection port connects the ice discharge chute and the water storage device;
[0009] The first guide portion is located on the side near the ice inlet of the ice outlet chute, and the first guide portion is used to guide the water output from the ice outlet of the ice maker to the water collection port.
[0010] In one embodiment, the first guide portion is disposed obliquely downward toward the ice discharge chute.
[0011] In one embodiment, 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 width direction of the ice discharge chute is parallel to or inclined to the ice discharge direction of the ice discharge chute, and the drainage hole and the water collection port are both provided on the drainage section.
[0012] The substrate is also provided with a baffle, which is located on the side near the ice inlet of the ice outlet chute. The baffle and the non-perforated part are arranged sequentially along the ice outlet direction of the ice outlet chute. The first side of the baffle is connected to the first sidewall in the width direction of the ice outlet chute, and the second side of the baffle forms an outlet with the second sidewall in the width direction of the ice outlet chute. The outlet and the drain part are arranged sequentially along the ice outlet direction of the ice outlet chute. The outlet allows the ice and water output from the ice inlet of the ice outlet chute to flow to the drain part.
[0013] In one embodiment, the baffle is provided with a second guide portion at one end near the ice inlet of the ice outlet chute. The second guide portion is inclined toward the outlet and is used to guide the ice and water output from the ice inlet of the ice outlet chute to the drain portion.
[0014] In one embodiment, the substrate is further provided with a water-blocking structure, which is arranged around the water collection port. The water-blocking structure and the second sidewall of the ice discharge chute form an opening, which is located between the outlet and the water collection port. The opening allows water discharged from the outlet to flow into the water collection port, and the water-blocking structure is used to restrict the flow of water flowing out of the outlet to the ice storage box.
[0015] In one embodiment, the ice discharge chute is positioned obliquely downward toward the ice storage box.
[0016] In one embodiment, the number of drainage holes is multiple sets, and the multiple sets of drainage holes are arranged at intervals along the ice discharge direction of the ice discharge chute. The ice discharge direction of the ice discharge chute is parallel to the length direction of the ice discharge chute. Each set of drainage holes is provided with at least one drainage hole, and the length extension direction of the drainage hole is parallel to the width direction of the ice discharge chute.
[0017] In one embodiment, in two adjacent sets of drainage holes, one set has one drainage hole and the other set has at least two drainage holes, and the at least two drainage holes are arranged at intervals along the width direction of the ice discharge chute.
[0018] In one embodiment, the substrate includes:
[0019] The main housing, wherein the main housing is provided with the first guide portion and the positioning groove; and
[0020] The slide plate is disposed in the positioning groove, and the slide plate and the main housing form the ice discharge groove. The slide plate has the drain hole and the water collection port. The slide plate and the main housing are separately configured.
[0021] Secondly, embodiments of this application provide an ice maker, including the aforementioned ice discharge chute.
[0022] The advantages or beneficial effects of the above technical solutions include at least the following:
[0023] The ice discharge chute of this invention features drainage holes, a water collection port, and a first guide section on its base. During the ice discharge process, the first guide section directs the water output from the ice maker's outlet to the water collection port, allowing most of the water flowing with the ice blocks into the ice discharge chute to be discharged to the water storage device through the water collection port. This significantly reduces the amount of water in the ice discharge chute. Simultaneously, the drainage holes guide the water in the ice discharge chute to the water storage device and prevent ice blocks from falling into the water storage device. The drainage holes can filter the ice blocks and a small amount of water in the ice discharge chute, directing the water to the water storage device and transporting the ice blocks to the ice storage box. This effectively separates the ice blocks and water that have passed through the ice discharge chute, preventing water from entering the ice storage box with the ice blocks, improving the ice-water separation effect, and making the ice blocks in the ice storage box less prone to melting.
[0024] 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
[0025] 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.
[0026] Figure 1 This is a three-dimensional structural diagram of the ice-removing slide of this utility model;
[0027] Figure 2 This is a cross-sectional view of the ice-removing slide of this utility model;
[0028] Figure 3 This is an exploded view of the ice-exit slide of this utility model;
[0029] Figure 4 This is a three-dimensional structural diagram of the main shell and the sliding plate assembled together in the ice exit slide of this utility model;
[0030] Figure 5 This is a three-dimensional structural diagram of the main shell in this utility model;
[0031] Figure 6 This is a three-dimensional structural diagram of the skateboard in this utility model.
[0032] Figure Labels
[0033] 1. Base; 11. Main shell; 111. Water guiding cavity; 112. Third guide section; 1121. First guide section; 1122. Second guide section; 113. Water outlet; 115. Baffle; 1151. Second guide section; 116. Outlet; 117. First guide section; 118. Positioning groove; 119. Mounting hole; 1110. Connecting hole; 12. Slide plate; 121. Drain hole; 122. Drain section; 123. Holeless section; 124. Mounting section; 1241. Threaded hole; 13. Cover plate; 14. Ice discharge chute; 141. Ice inlet of ice discharge chute; 142. Ice outlet of ice discharge chute; 15. Water collection port; 16. Water blocking structure; 161. First water blocking section; 162. Second water blocking section. Detailed Implementation
[0034] 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.
[0035] See Figures 1-6 This illustration shows a preferred embodiment of the present invention: an ice discharge slide, used for connection to an ice maker, comprising:
[0036] The base 1 has an ice outlet groove 14, a drain hole 121, a water collection port 15 and a first guide part 117. The ice inlet 141 of the ice outlet groove is used to connect to the ice outlet of the ice maker, and the ice outlet 142 of the ice outlet groove is used to connect to the ice inlet of the ice storage box.
[0037] The drain hole 121 is located on the bottom wall of the ice discharge chute 14. The drain hole 121 connects the ice discharge chute 14 and the water storage device of the ice maker. The drain hole 121 is used to guide the water in the ice discharge chute 14 to the water storage device and to prevent the ice blocks in the ice discharge chute 14 from falling into the water storage device.
[0038] The water inlet 15 is located on the bottom wall of the ice discharge chute 14, and the water inlet 15 connects the ice discharge chute 14 and the water storage device.
[0039] The first guide section 117 is located on one side of the ice inlet 141 near the ice outlet chute. The first guide section 117 is used to guide the water output from the ice outlet of the ice maker to the water collection port 15.
[0040] The ice discharge chute of this invention, by providing a drain hole 121, a water collection port 15, and a first guide part 117 on the base 1, allows the first guide part 117 to direct the water output from the ice outlet of the ice maker to the water collection port 15 during the ice discharge process. This ensures that most of the water flowing with the ice blocks into the ice discharge chute 14 is discharged to the water storage device through the water collection port 15, greatly reducing the amount of water in the ice discharge chute 14. At the same time, since the drain hole 121 can direct the water in the ice discharge chute 14 to the water storage device and prevent the ice blocks in the ice discharge chute 14 from falling into the water storage device, the drain hole 121 can be used to filter the ice blocks and a small amount of water in the ice discharge chute 14, directing the water to the water storage device and transporting the ice blocks to the ice storage box. This effectively separates the ice blocks and water that have passed through the ice discharge chute 14, effectively preventing water from entering the ice storage box with the ice blocks, improving the ice-water separation effect, and making the ice blocks in the ice storage box less likely to melt.
[0041] In one embodiment, the first guide portion 117 is obliquely downward toward the ice discharge chute 14 to guide the ice blocks and water output from the ice maker out of the ice discharge chute 14, thereby improving the ice discharge efficiency. At the same time, it can also effectively prevent ice and water accumulation near the ice inlet 141 of the ice discharge chute.
[0042] See Figure 4 In one embodiment, the bottom wall of the ice discharge chute 14 is provided with a draining part 122 and a non-porous part 123. The draining part 122 and the non-porous part 123 are arranged sequentially along the width direction of the ice discharge chute 14. The width direction of the ice discharge chute 14 is parallel to or inclined to the ice discharge direction of the ice discharge chute 14. The draining hole 121 and the water collection port 15 are both provided on the draining part 122.
[0043] The base 1 is also provided with a baffle 115, which is located on the side near the ice inlet 141 of the ice outlet chute. The baffle 115 and the non-perforated part 123 are arranged in sequence along the ice outlet direction of the ice outlet chute 14. The first side of the baffle 115 is connected to the first side wall in the width direction of the ice outlet chute 14, and the second side of the baffle 115 forms an outlet 116 with the second side wall in the width direction of the ice outlet chute 14. The outlet 116 and the drain part 122 are arranged in sequence along the ice outlet direction of the ice outlet chute 14. The outlet 116 supplies the ice and water output from the ice inlet 141 of the ice outlet chute to the drain part 122. Thus, when the ice maker outputs ice cubes, the ice cubes and water pass through the ice inlet 141 of the ice outlet chute. Under the obstruction of the baffle 115, the ice cubes and water can only flow through the outlet 116 to the drain section 122, ensuring that the ice cubes and water are filtered through the drain holes 121 to achieve ice-water separation. At the same time as achieving ice-water separation, the ice cubes slide towards the non-porous section 123 under the mutual squeezing action between the ice cubes. Since the non-porous section 123 has no drain holes 121, the ice cubes can slide smoothly. As the ice cubes slide along the non-porous section 123, they also drive the ice cubes on the drain section 122 to slide, ensuring that the ice cubes can slide smoothly along the ice outlet chute 14 to the ice storage box without clogging, thus improving ice output efficiency.
[0044] See Figure 4 In one embodiment, a second guide portion 1151 is provided at one end of the baffle 115 near the ice inlet 141 of the ice discharge chute. The second guide portion 1151 is inclined toward the outlet 116 and is used to guide the ice and water output from the ice inlet 141 of the ice discharge chute to the drain portion 122, so that the ice discharge is smoother.
[0045] See Figure 4 In one embodiment, the base 1 is further provided with a water-blocking structure 16, which is arranged around the water inlet 15. The water-blocking structure 16 and the second side wall of the ice outlet chute 14 form an opening, which is located between the outlet 116 and the water inlet 15. The opening allows the water discharged from the outlet 116 to flow into the water inlet 15. The water-blocking structure 16 is used to restrict the water flowing from the outlet 116 to the ice storage box, so as to reduce the amount of water flowing to the ice storage box along the ice outlet chute 14.
[0046] See Figure 4 In one embodiment, the ice dispensing chute 14 is angled downward toward the ice storage box to quickly guide the ice blocks to the ice storage box, making the ice dispensing smoother and more efficient.
[0047] See Figure 4In one embodiment, the number of drainage holes 121 is multiple sets, and the multiple sets of drainage holes 121 are arranged at intervals along the ice discharge direction of the ice discharge chute 14. The ice discharge direction of the ice discharge chute 14 is parallel to the length direction of the ice discharge chute 14. Each set of drainage holes 121 is provided with at least one drainage hole 121, and the length extension direction of the drainage hole 121 is parallel to the width direction of the ice discharge chute 14. This ensures that ice and water can be separated while effectively preventing ice from getting stuck in the drainage section 122.
[0048] See Figure 4 In one embodiment, in two adjacent sets of drainage holes 121, one set has one drainage hole 121 and the other set has at least two drainage holes 121. The at least two drainage holes 121 are arranged at intervals along the width direction of the ice discharge groove 14. 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 122.
[0049] In one embodiment, the base 1 also has a water guiding cavity 111, which is located below the ice dispensing chute 14. The water guiding cavity 111 connects the drain hole 121 and the water collection port 15, and is also connected to the water storage device (such as a cold water tank) of the ice maker. The water guiding cavity 111 is used to guide the water flowing down from the drain hole 121 and the water collection port 15 to the water storage device. That is, the water guiding cavity 111 plays the role of guiding water, while the water storage device plays the role of storing water, thus separating the guiding and storing of water. Since the guiding cavity only needs to play the role of guiding water, the volume of the water guiding cavity 111 can be made relatively small. Therefore, the overall structure of the ice dispensing chute can be made more compact and occupy less space. At the same time, by connecting the water guiding cavity 111 to the cold water tank, the ice dispensing chute is not limited to being located directly above the cold water tank. It is convenient to install the ice dispensing chute in other suitable positions inside the ice maker, thereby improving the internal space utilization of the ice maker and making the overall structure of the ice maker more compact and smaller in size.
[0050] See Figures 3-5 In one embodiment, the substrate 1 also has a water outlet 113, which connects the water guiding cavity 111 and the water storage device of the ice maker.
[0051] The water guiding cavity 111 is provided with a third guide part 112, which is used to guide the water flowing out of the drain hole 121 to the water outlet hole 113, thereby playing a guiding role and realizing the rapid guidance of the water flowing out of the drain hole 121 to the water outlet hole 113, making the water flow smoother and more efficient.
[0052] See Figure 3 and Figure 5In one embodiment, the third guide section 112 includes a first guide section 1121 and a second guide section 1122. The first guide section 1121 and the second guide section 1122 are arranged sequentially along the ice discharge direction of the ice discharge chute 14, that is, the first guide section 1121 and the second guide section 1122 are arranged sequentially along the length direction of the ice discharge chute 14. The height of the first guide section 1121 is higher than the height of the second guide section 1122. Both the first guide section 1121 and the second guide section 1122 are arranged obliquely downward toward the water outlet 113. The water outlet 113 is located at the first guide section 1121. Between the first guide section 121 and the second guide section 1122, the water flowing out of the drain hole 121 can be guided to the water outlet hole 113 by the first guide section 1121 and the second guide section 1122, making the water flow smoother and more efficient. At the same time, since the height of the first guide section 1121 is higher than the height of the second guide section 1122, the bottom wall of the base 1 located below the first guide section 1121 can be set higher than the bottom wall of the base 1 located below the second guide section 1122, thereby reducing the volume of the base 1, making the overall structure of the ice slide more compact, occupying less space, and more convenient for installation.
[0053] See Figures 1-5 In one embodiment, the substrate 1 includes:
[0054] Main housing 11, the main housing 11 is provided with a first guide portion 117 and a positioning groove 118; and
[0055] The slide plate 12 is located within the positioning groove 118. The slide plate 12 and the main housing 11 form an ice-discharging groove 14. The slide plate 12 has a drain hole 121 and a water collection port 15. The slide plate 12 and the main housing 11 are separately configured. By configuring the slide plate 12 and the main housing 11 separately, the slide plate 12 and the main housing 11 can be processed separately and then assembled to form the base 1, which can reduce the processing difficulty of the base 1. At the same time, since the main housing 11 has a positioning groove 118, and the slide plate 12 is located within the positioning groove 118, the positioning groove 118 can be used to position the slide plate 12 during installation, making the installation of the slide plate 12 more convenient and efficient.
[0056] See Figures 4-6 In one embodiment, the bottom wall of the slide plate 12 is provided with a mounting portion 124, and the mounting portion 124 has a threaded hole 1241;
[0057] The bottom wall of the positioning groove 118 has a mounting hole 119, which is adapted to the mounting part 124 to improve the connection stability of the slide plate 12 and the main housing 11. The bottom wall of the mounting hole 119 has a connection hole 1110.
[0058] The base 1 also includes a fastener (not shown in the figure), the head of the fastener abuts against the bottom of the base 1, the shank of the fastener passes through the connecting hole 1110, and the shank of the fastener is screwed into the threaded hole 1241 to reliably fix the slide plate 12 and the main housing 11 together.
[0059] In one embodiment, the substrate 1 further includes:
[0060] The cover plate 13 is placed on the main housing 11. The cover plate 13 has an open state and a closed state. In the open state, the top opening of the ice discharge chute 14 is open, and in the closed state, the top opening of the ice discharge chute 14 is closed, so as to seal the top opening of the ice discharge chute 14.
[0061] See Figure 4 In one embodiment, the water-blocking structure 16 includes:
[0062] A first water-blocking part 161 is disposed on the main housing 11, and a first end of the first water-blocking part 161 is connected to the second side wall of the ice slide 14, and a second end of the first water-blocking part 161 extends toward the first side wall of the ice slide 14; and
[0063] The second water-blocking part 162 is provided on the slide plate 12. The second water-blocking part 162 extends along the ice discharge direction of the ice discharge groove 14 and abuts against the second end of the first water-blocking part 161.
[0064] A preferred embodiment of this utility model provides an ice maker, including the ice discharge chute described above.
[0065] The ice maker of this utility model, by adopting the aforementioned ice discharge chute, also features a drain hole 121, a water collection port 15, and a first guide part 117 on the base 1. During the ice discharge process, the first guide part 117 directs the water output from the ice maker's outlet to the water collection port 15, allowing most of the water flowing with the ice to the ice discharge chute 14 to be discharged to the water storage device through the water collection port 15. This significantly reduces the amount of water in the ice discharge chute 14. Simultaneously, since the drain hole 121 directs the water in the ice discharge chute 14 to the water storage device and restricts the ice from falling into the water storage device, the drain hole 121 can filter the ice and a small amount of water in the ice discharge chute 14, directing the water to the water storage device and transporting the ice to the ice storage box. This effectively separates the ice and water that have passed through the ice discharge chute 14, preventing water from entering the ice storage box with the ice, improving the ice-water separation effect, and making the ice in the ice storage box less prone to melting.
[0066] 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.
[0067] 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.
[0068] 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 ice slide for connection with an ice maker, the ice slide comprising: The base body comprises: a base body, which has an ice outlet chute, a water draining hole, a water collecting port and a first guide part, an ice inlet of the ice outlet chute is used for being connected with an ice outlet of an ice maker, an ice outlet of the ice outlet chute is used for being connected with an ice inlet of an ice storage box; the water draining hole is arranged on a bottom wall of the ice outlet chute, the water draining hole is connected with the ice outlet chute and a water storage device of the ice maker, and the water draining hole is used for guiding water in the ice outlet chute to the water storage device and limiting ice in the ice outlet chute from falling into the water storage device; the water collecting port is arranged on the bottom wall of the ice outlet chute, and the water collecting port is connected with the ice outlet chute and the water storage device; the first guide part is arranged on a side close to the ice inlet of the ice outlet chute, and the first guide part is used for guiding water output by the ice outlet of the ice maker to the water collecting port.
2. The ice slide of claim 1, wherein, The first guide part is arranged obliquely downward toward the ice outlet chute.
3. The ice slide of claim 1, wherein, The bottom wall of the ice outlet chute is provided with a water draining part and a non-hole part, the water draining part and the non-hole part are arranged in sequence along a width direction of the ice outlet chute, the width direction of the ice outlet chute is parallel to or inclined to an ice outlet direction of the ice outlet chute, the water draining hole and the water collecting port are arranged on the water draining part; the base body is further provided with a baffle, the baffle is arranged on a side close to the ice inlet of the ice outlet chute, the baffle and the non-hole part are arranged in sequence along the ice outlet direction of the ice outlet chute, a first side of the baffle is connected with a first side wall of the width direction of the ice outlet chute, a second side of the baffle forms an outlet with a second side wall of the width direction of the ice outlet chute, the outlet and the water draining part are arranged in sequence along the ice outlet direction of the ice outlet chute, and the outlet is used for guiding ice and water output by the ice inlet of the ice outlet chute to the water draining part.
4. A slide according to claim 3, wherein, An end of the baffle close to the ice inlet of the ice outlet chute is provided with a second guide part, the second guide part is arranged obliquely toward the outlet, and the second guide part is used for guiding ice and water output by the ice inlet of the ice outlet chute to the water draining part.
5. The ice slide of claim 3, wherein, The base body is further provided with a water blocking structure, the water blocking structure is arranged around the water collecting port, the water blocking structure and a second side wall of the ice outlet chute form an opening, the opening is located between the outlet and the water collecting port, the opening is used for guiding water output by the outlet to flow into the water collecting port, and the water blocking structure is used for limiting water flowing from the outlet to flow to the ice storage box.
6. The ice slide of claim 1, wherein, The ice outlet chute is arranged obliquely downward toward the ice storage box.
7. The ice slide of claim 1, wherein, The number of the water draining holes is multiple groups, the multiple groups of the water draining holes are arranged in sequence along an ice outlet direction of the ice outlet chute, the ice outlet direction of the ice outlet chute is parallel to a length direction of the ice outlet chute, each group of the water draining holes is provided with at least one water draining hole, and a length extension direction of the water draining hole is parallel to a width direction of the ice outlet chute.
8. A slide according to claim 7, wherein, In adjacent two groups of the water draining holes, one group is provided with one water draining hole, and the other group is provided with at least two water draining holes, and the at least two water draining holes are arranged in sequence along the width direction of the ice outlet chute.
9. The ice slide of claim 1, wherein, The base body comprises: a main shell, which is provided with the first guide part and a positioning groove; and A slide plate is provided in the positioning groove, the slide plate and the main shell form the ice-out chute, the slide plate has the water draining hole and the water collecting port, and the slide plate and the main shell are provided in a split mode.
10. An ice maker characterized by, The ice-out chute according to any one of claims 1-9.