Ice making module and water purifier
By installing a rolling element on the second side of the ice scraper, which allows it to roll along the inner wall of the ice-receiving trough when the ice-making trough rotates, the problems of uneven movement and easy jamming of the ice scraper are solved, resulting in a smoother movement effect.
Patent Information
- Application Number
- CN202423320236.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2034-12-31
AI Technical Summary
The ice scraper plate of the existing ice-making module has high friction when rotating, making it difficult to move smoothly and easy to get stuck.
Rolling elements are installed on the second side of the ice scraper, so that it rolls along the inner wall of the ice-receiving trough when the ice-making trough rotates, reducing friction and improving smoothness of movement.
The design of the rolling element makes the ice scraper move more smoothly, avoids jamming, and improves ice-making efficiency and reliability.
Smart Images

Figure CN223678026U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to water purifier technical field, especially a kind of ice making module and water purifier. BACKGROUND
[0002] The ice shovel plate of the ice making module on the market currently usually moves along the inner groove wall of ice-accepting groove when rotating, and such moving mode has large friction, so that the movement of the ice shovel plate is not smooth, and the ice shovel plate is easily stuck. UTILITY MODEL CONTENTS
[0003] The utility model discloses an ice making module and water purifier, which aims to improve the smoothness of the movement of the ice shovel plate.
[0004] To achieve the above-mentioned purpose, the ice making module provided by the utility model comprises:
[0005] A shell;
[0006] An ice making groove is rotationally arranged in the shell;
[0007] An ice shovel plate has a first side and a second side arranged oppositely, the first side is rotationally connected with the ice making groove, and the second side is provided with a rolling member; and
[0008] An ice-accepting groove is arranged below the ice making groove, and the ice making groove drives the ice shovel plate to rotate, so that the rolling member rolls along the inner groove wall of the ice-accepting groove.
[0009] In an embodiment, the rolling member at least partially protrudes from the side edge of the second side.
[0010] In an embodiment, the second side is provided with a mounting gap, and the rolling member is mounted in the mounting gap.
[0011] In an embodiment, at least the top wall of the mounting gap is provided in a water guide slope.
[0012] In an embodiment, the bottom side of the ice shovel plate is provided with two mounting lugs arranged at intervals, and the two ends of the rolling member are respectively rotationally connected with the two mounting lugs.
[0013] In an embodiment, the mounting lug is provided with a guide slope on the side close to the ice making groove, and the guide slope gradually inclines to the bottom surface of the ice shovel plate in the direction close to the ice making groove.
[0014] In an embodiment, at least the bottom surface of the second side inclines to the top surface of the second side in the direction away from the ice making groove.
[0015] In an embodiment, a lower limiting structure is arranged between the ice shovel plate and the ice making groove.
[0016] In an embodiment, the lower limit structure includes a limiting rib, which is arranged at the bottom of the first side and used to abut against the wall of the ice making groove.
[0017] In an embodiment, the maximum included angle between the ice shoveling plate and the vertical direction is less than 180°.
[0018] The utility model also provides a pure drinking machine which comprises the ice making module.
[0019] The technical scheme of the utility model discloses a rolling element arranged on the second side of the ice shoveling plate, which can roll along the inner wall of the ice receiving groove when the ice making groove rotates and drives the ice shoveling plate to rotate, compared with the prior art which uses the plate body of the ice shoveling plate to move along the inner wall of the ice receiving groove, the present scheme can make the movement of the ice shoveling plate more smooth and avoid the ice shoveling plate from being stuck. BRIEF DESCRIPTION OF DRAWINGS
[0020] In order to more clearly illustrate the technical scheme in the embodiments of the utility model or the prior art, the drawings needed to be used in the embodiment or the prior art description will be briefly introduced below, and obviously, the drawings in the following description are only some embodiments of the utility model, and for those skilled in the art, other drawings can also be obtained according to the structure shown in the drawings without creative labor.
[0021] Figure 1 The sectional structure schematic view of the water purifier provided by the utility model is shown in an embodiment.
[0022] Figure 2 The structure schematic view of the ice making module provided by the utility model is shown in an embodiment.
[0023] Figure 3 The sectional structure schematic view of the ice making module is shown in a first perspective view. Figure 2 The sectional structure schematic view of the ice making module is shown in a second perspective view.
[0024] Figure 4 The sectional structure schematic view of the ice making module is shown in a third perspective view. Figure 3 The enlarged view of a part A in the ice making module.
[0025] Figure 5 The enlarged view of a part B in the ice making module. Figure 2 The sectional structure schematic view of the ice making module is shown in a second perspective view.
[0026] Figure 6 The sectional structure schematic view of the ice making module is shown in a third perspective view. Figure 5 The enlarged view of a part B in the ice making module.
[0027] Figure 7 The sectional structure schematic view of the ice making module is shown in a second perspective view. Figure 2 The sectional structure schematic view of the ice making module is shown in a second perspective view.
[0028] Figure 8 For Figure 7 Close-up view at C.
[0029] BRIEF DESCRIPTION OF DRAWINGS
[0030] 10, ice making module; 100, ice making tank; 200, ice shovel; 210, first side; 220, second side; 230, water outlet; 240, reinforcing rib; 250, rotating lug; 260, reinforcing plate; 270, rolling piece; 280, mounting gap; 281, top wall; 290, mounting lug; 291, guide slope; 300, ice receiving tank; 400, ice storage tank; 500, lower limit structure; 510, limiting rib; 600, machine shell.
[0031] The realization, functional features and advantages of the present application will be further described with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION
[0032] The technical solutions in the embodiments of the present application will be clearly and completely described with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0033] It should be noted that if the present application embodiments involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative positional relationship, movement condition, etc. between the components in a certain posture, and if the certain posture changes, the directional indications also change accordingly.
[0034] In addition, if the present application embodiments involve descriptions of "first", "second", etc., the descriptions of "first", "second", etc. are only for description purposes, and cannot be understood as indicating or implying the relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features with "first" and "second" can explicitly or implicitly include at least one of the features. In addition, "and / or" or "and / or" appearing throughout the text means that the three parallel schemes are included, for example, "A and / or B" includes A scheme, or B scheme, or A and B simultaneously satisfy the scheme. In addition, the technical solutions of each embodiment can be combined with each other, but it must be based on the realization of the ordinary skilled in the art, and when the combination of technical solutions appears contradictory or unachievable, it should be considered that the combination of technical solutions does not exist, and is not within the scope of protection required by the present application.
[0035] The ice shovel plate of the ice making module in the market usually moves along the inner groove wall of the ice receiving groove when rotating, and the moving mode has large friction, so that the moving of the ice shovel plate is not smooth and is easily stuck.
[0036] In order to improve the smoothness of the moving of the ice shovel plate 200, the utility model provides an ice making module 10.
[0037] Please refer to Figures 2 to 4 In an embodiment of the utility model, the ice making module 10 includes a shell 600, an ice making groove 100, an ice shovel plate 200 and an ice receiving groove 300, the ice making groove 100 is rotationally arranged on the shell 600, the ice shovel plate 200 has oppositely arranged first side 210 and second side 220, the first side 210 is rotationally connected with the ice making groove 100, the second side 220 is provided with a rolling part 270, the ice receiving groove 300 is arranged below the ice making groove 100, the ice making groove 100 drives the ice shovel plate 200 to rotate to make the rolling part 270 roll along the inner groove wall of the ice receiving groove 300.
[0038] The technical scheme of the utility model sets the rolling part 270 on the second side 220 of the ice shovel plate 200, so that when the ice making groove 100 rotates and drives the ice shovel plate 200 to rotate, the rolling part 270 can roll along the inner groove wall of the ice receiving groove 300, compared with the prior art scheme that the plate body of the ice shovel plate 200 moves along the inner side wall of the ice receiving groove 300, the scheme can make the moving of the ice shovel plate 200 more smooth and avoid the ice shovel plate 200 being stuck.
[0039] It should be noted that in the scheme, the side of the ice making groove 100 provided with the ice shovel plate 200 is the front side, and the side away from the ice shovel plate 200 is the rear side.
[0040] Specifically, the ice making groove 100 is rotationally arranged on the shell 600 to make the ice making groove 100 have an ice making state and an ice pouring state.When the ice making groove 100 is in the ice making state, the groove opening of the ice making groove 100 faces upward, at this time, the ice making column of the evaporator of the ice making module 10 is located in the ice making groove 100, when the ice making groove 100 is in the ice pouring state, the groove opening of the ice making groove 100 faces forward to make the ice blocks fall from the ice making groove 100 and fall on the ice shovel plate 200 and in the ice receiving groove 300.When the ice making groove 100 runs from the ice pouring state to the ice making state, the ice making groove 100 drives the ice shovel plate 200 to rotate and at the same time the ice shovel plate 200 moves forward, at this time, the rolling part 270 rolls along the inner groove wall of the ice receiving groove 300 and moves forward to shovel the ice blocks from the ice receiving groove 300, when the ice making groove 100 runs from the ice making state to the ice pouring state, the ice making groove 100 drives the ice shovel plate 200 to rotate and at the same time the ice shovel plate 200 moves backward, at this time, the rolling part 270 rolls along the inner groove wall of the ice receiving groove 300 and moves backward.
[0041] Further, when the ice making tank 100 is in the ice making state, the angle between the ice shovel plate 200 and the vertical direction axis is greater than 90°, so that even if there are ice blocks remaining on the ice shovel plate 200 after the ice shoveling, the remaining ice blocks can be guided to fall down by the inclined ice shovel plate 200.
[0042] Further, in the present embodiment, the front side of the ice receiving tank 300 protrudes from the front side of the ice making tank 100 in the vertical direction, so that the ice receiving tank 300 can better receive the falling ice blocks. Of course, the present solution is not limited thereto, and in other embodiments, the front side of the ice receiving tank 300 can also be flush with the front side of the ice making tank 100 in the vertical direction.
[0043] Optionally, in the present embodiment, when the ice making tank 100 is in the ice making state, the front side of the ice shovel plate 200 protrudes from the front side of the ice receiving tank 300 in the vertical direction, so as to guide the ice blocks falling from the ice shovel plate 200 out of the ice receiving tank 300, avoiding the ice blocks falling into the ice receiving tank 300 again. Of course, the present solution is not limited thereto, and in other embodiments, the front side of the ice shovel plate 200 can also be flush with the front side of the ice receiving tank 300 in the vertical direction when the ice making tank 100 is in the ice making state.
[0044] Optionally, the rolling member 270 at least partially protrudes from the side edge of the second side 220, that is, the side of the rolling member 270 away from the ice making tank 100 at least partially protrudes from the edge of the side of the second side 220 away from the ice making tank 100, so that when the ice shovel plate 200 moves forward, the side of the rolling member 270 away from the ice making tank 100 can also move along the inner tank wall of the ice receiving tank 300, so that the movement of the ice shovel plate 200 can be further smoother. Of course, the present solution is not limited thereto, and in other embodiments, the bottom side and the front side of the rolling member 270 both protrude from the ice shovel plate 200.
[0045] Referring to Figure 5 and Figure 6 Further, the second side 220 is provided with a mounting gap 280, and the rolling member 270 is arranged in the mounting gap 280. Compared with the solution of directly arranging the rolling member 270 on the front side of the ice shovel plate 200, the present solution arranges the rolling member 270 in the mounting gap 280, so that the structure of the ice shovel plate 200 can be more compact. Of course, the present solution is not limited thereto, and in other embodiments, the mounting gap 280 can not be arranged, and two spaced-apart lugs can be arranged on the front side of the ice shovel plate 200, and the two ends of the rolling member 270 are respectively rotatably arranged on the two lugs.
[0046] Optionally, the top wall 281 of at least the installation gap 280 is provided with a water guide slope; in this way, water on the top surface of the ice shovel 200 can be guided out of the ice shovel 200. Of course, the present solution is not limited thereto, and in other embodiments, the mouth wall of the installation gap 280 can also be provided with a water guide slope as a whole.
[0047] In the present embodiment, only the bottom wall of the installation gap 280 facing the opening is provided with a water guide slope. In other embodiments, the installation gap 280 can also be provided with an upwardly flared mouth as a whole.
[0048] Further, the bottom side of the ice shovel 200 is provided with two installation lugs 290 arranged at intervals, and the two ends of the rolling member 270 are respectively rotationally connected to the two installation lugs 290; the installation lugs 290 are arranged to facilitate increasing the fixing area of the rolling member 270, thereby facilitating the installation of the rolling member 270 and being conducive to improving the installation efficiency of the rolling member 270 and increasing the stability of the rolling member 270. Of course, the present solution is not limited thereto, and in other embodiments, two oppositely arranged installation grooves can also be arranged in the plate body of the ice shovel 200, that is, one installation groove is arranged on each of the two side walls opposite to the installation gap 280, and the two ends of the rolling member 270 are respectively rotationally arranged in the two installation grooves.
[0049] Further, the installation lug 290 is provided with a guide slope 291 on the side close to the ice making tank 100, and the guide slope 291 gradually inclines toward the bottom surface of the ice shovel 200 in the direction close to the ice making tank 100; it can be understood that when the ice making tank 100 is in the ice making state, the ice shovel 200 is located above the ice receiving tank 300, and when the ice making tank 100 is in the ice making state and runs to the ice pouring state, the guide slope 291 gradually guides the abutment position of the tank wall of the ice receiving tank 300 to gradually transition from the bottom surface of the ice shovel 200 to the rolling member 270, thereby making the operation of the ice shovel 200 more stable. Of course, the present solution is not limited thereto, and in other embodiments, the rolling member 270 can also protrude from the side edge of the installation lug 290 as a whole, in which case the side edge of the rolling member 270 can be used to guide the movement of the ice shovel 200.
[0050] Further, the rolling member 270 can be in the shape of a roller, a disc, or a ball, and the specific shape of the rolling member 270 is not limited herein as long as it can roll along the inner tank wall of the ice receiving tank 300.
[0051] Further, in the present embodiment, the rolling member 270 is in the shape of a roller and is arranged close to the middle of the length direction of the ice shovel 200, in which case the movement of the ice shovel 200 can be better guided.
[0052] Further, in the embodiment, the length of the rolling member 270 ranges from 1 / 15 of the length of the ice shovel 200 to 1 / 20 of the length of the ice shovel 200; of course, the present solution is not limited thereto, and in other embodiments, the length of the rolling member 270 can be comparable to the length of the ice shovel 200.
[0053] With reference to Figure 7 and Figure 8 Further, in the embodiment, the thickness of the plate body of at least the second side 220 gradually decreases in the direction away from the ice making tank 100, which facilitates ice shoveling of the ice shovel 200. Of course, the present solution is not limited thereto, and in other embodiments, the thickness of the plate body of the ice shovel 200 can also gradually decrease in the direction away from the ice making tank 100 as a whole.
[0054] Further, in the embodiment, the bottom surface of at least the second side 220 gradually inclines toward the top surface of the second side 220 in the direction away from the ice making tank 100, which facilitates ice shoveling. Of course, the present solution is not limited thereto, and in other embodiments, the bottom surface and the top surface of the plate body of at least the second side 220 gradually incline toward each other in the direction away from the ice making tank 100.
[0055] Optionally, a lower limit structure 500 is arranged between the ice shovel 200 and the ice making tank 100, which can limit the maximum rotating position of the ice shovel 200, so that the ice shovel 200 can be given a certain support force when the ice shovel 200 is in operation, facilitating ice shoveling, and the lower limit structure 500 can also avoid excessive rotation of the ice shovel 200, i.e., avoid the ice shovel 200 from being flipped to the rear side of the rotating position of the ice shovel 200 and the ice making tank 100, and the ice making tank 100 cannot drive the ice shovel 200 to return to the position on the upper side of the ice receiving tank 300.
[0056] Further, in the embodiment, the lower limit structure 500 includes a limiting rib 510 arranged at the bottom of the first side 210, which is used to abut against the tank wall of the ice making tank 100; such a limiting structure is simple and can use the tank wall of the ice making tank 100 for limiting, thereby reducing the arrangement of the limiting structure components, and further facilitating reduction of the process steps for manufacturing and improvement of production efficiency. Of course, the present solution is not limited thereto, and in other embodiments, the lower limit structure 500 can also include an abutting protrusion arranged on the ice shovel 200 and a limiting protrusion arranged on the ice making tank 100, the abutting protrusion being used to abut against the limiting protrusion, thereby limiting the maximum rotating angle of the ice shovel 200.
[0057] The maximum included angle between the ice shoveling plate 200 and the vertical direction axis is less than 180°, that is, when the ice making tank 100 is in the maximum ice dumping state, the included angle between the ice shoveling plate 200 and the vertical direction axis is less than 180°, so that when the ice making tank 100 is running from the ice dumping state to the ice making state, the ice making tank 100 cannot drive the ice shoveling plate 200 to return to the position on the upper side of the ice holding tank 300, that is, the ice block cannot be shoveled out of the ice holding tank 300.
[0058] Referring to Figure 2 , Figure 4 and Figure 6 , the ice making module 10 further comprises a reinforcing rib 240, the ice shoveling plate 200 is provided with a water leakage hole 230 near the plate body of the first side 210, the water leakage hole 230 extends along the length direction of the ice shoveling plate 200, and the two ends of the reinforcing rib 240 are connected with the two sides of the water leakage hole 230 distributed along the width direction.
[0059] It can be understood that the lower side of the ice holding tank 300 is provided with an ice storage tank 400, the ice shoveling plate 200 shovels the ice block from the ice holding tank 300 into the ice storage tank 400, and the ice block falls into the ice storage tank 400 from the front side of the ice holding tank 300. The technical scheme of the utility model sets the water leakage hole 230 on the ice shoveling plate 200, so that the water on the ice shoveling plate 200 flows out of the ice shoveling plate 200, thereby reducing the probability that the water on the ice shoveling plate 200 falls into the ice storage tank 400 along with the ice block, and the water leakage hole is arranged on the plate body of the ice shoveling plate 200 close to the first side 210, that is, the water leakage hole 230 is arranged on the side of the ice shoveling plate 200 away from the front side edge of the ice holding tank 300, so that when the ice shoveling plate 200 shovels the ice, the water flow can fall from the side of the ice shoveling plate 200 away from the front side edge of the ice holding tank 300, so that the falling water is as far away from the front side edge of the ice holding tank 300 as possible, thereby reducing the probability that the water flow falling from the water leakage hole 230 falls into the ice storage tank 400 or the probability that the water falling from the water leakage hole 230 and falling on the ice holding tank 300 splashes into the ice storage tank 400. Therefore, the present scheme can reduce the probability of water falling into the ice storage tank 400, thereby reducing the probability of ice blocks in the ice storage tank 400 sticking together.
[0060] Secondly, the reinforcing rib 240 is connected with the two sides of the water leakage hole 230 distributed along the width direction, so that the strength of the position where the ice shoveling plate 200 is provided with the water leakage hole 230 is increased, and the probability of the ice shoveling plate 200 being broken is reduced.
[0061] Optionally, the first side 210 is provided with rotating lugs 250, and the ice shovel 200 is rotatably connected with the ice making tank 100 through the rotating lugs 250, so that the rotating mode is simple in structure and convenient to install. Of course, the present solution is not limited thereto, and in other embodiments, the first side 210 can also be rotatably connected with the ice making tank 100 through a hinge.
[0062] Further, in the present embodiment, the first side 210 is provided with four rotating lugs 250, two rotating lugs 250 form a group, and the outer side of the ice making tank 100 is provided with a rotating protrusion corresponding to the rotating lugs 250, and a rotating rod sequentially passes through a rotating lug 250, the rotating protrusion and a rotating lug 250, of course, rotating protrusions can also be provided on both sides of the rotating protrusion corresponding to the rotating holes of the rotating lugs 250, and the rotating protrusions are rotatably arranged in the rotating holes, so as to rotatably install the ice shovel 200 on the ice making tank 100. Such rotating structure is simple and convenient to install, and the two groups of rotating lugs 250 can better support the ice shovel 200 and increase the strength of the rotating position of the ice shovel 200 and the ice making tank 100. Of course, the present solution is not limited thereto, and in other embodiments, the first side 210 can also be provided with two rotating lugs 250 which are spaced apart, and the ice making tank 100 is provided with a rotating protrusion corresponding to the rotating lugs 250, and a rotating rod sequentially passes through the rotating lugs 250, the rotating protrusion and the rotating lugs 250, so as to rotatably install the ice shovel 200 on the ice making tank 100.
[0063] Optionally, in an embodiment, the reinforcing ribs 240 are provided in plurality, and at least part of the reinforcing ribs 240 are provided corresponding to the rotating lugs 250; it can be understood that when the ice shovel 200 is used to shovel ice, the position of the ice shovel 200 corresponding to the rotating lugs 250 is subjected to greater stress, and the reinforcing ribs 240 are provided at the position of the drain opening 230 corresponding to the rotating lugs 250, so that the ice shovel 200 can withstand greater pressure and torque, thereby improving the strength of the ice shovel 200. Of course, the present solution is not limited thereto, and in other embodiments, the reinforcing ribs 240 are provided in plurality, and the plurality of reinforcing ribs 240 are spaced apart in the drain opening 230.
[0064] It should be noted that "corresponding" in the "corresponding to the rotating lugs 250" in which at least part of the reinforcing ribs 240 are provided first refers to the matching or corresponding in position. That is, the position of the reinforcing ribs 240 needs to be matched with the position of the rotating lugs 250 of the ice shovel 200, that is, the reinforcing ribs 240 should be installed on the areas of the ice shovel 200 which are likely to be subjected to greater stress or deformation due to rotation.
[0065] Further, the width of at least one of the reinforcing ribs 240 arranged corresponding to the rotating lug 250 is greater than the width of the reinforcing ribs 240 arranged away from the rotating lug 250. It can be understood that when the ice shovel 200 is used to shovel ice, the position corresponding to the rotating lug 250 of the ice shovel 200 bears greater force. The present scheme makes the width of at least one of the reinforcing ribs 240 arranged corresponding to the rotating lug 250 greater than the width of the reinforcing ribs 240 arranged away from the rotating lug 250, so that the ice shovel 200 can bear greater pressure and torque, and further improve the strength of the ice shovel 200 while reducing the total width of the reinforcing ribs 240, i.e., reducing the water leakage area of the water leakage port 230 occupied by the reinforcing ribs 240. Of course, the present scheme is not limited to this, and in other embodiments, the width of all the reinforcing ribs 240 arranged corresponding to the rotating lug 250 is greater than the width of the reinforcing ribs 240 arranged away from the rotating lug 250.
[0066] With reference to Figure 6 The width of the reinforcing rib 240 is denoted as W.
[0067] Further, in the present embodiment, the present scheme is arranged with a plurality of reinforcing ribs 240 corresponding to each group of rotating lugs 250. The width of the reinforcing ribs 240 near the length direction of the ice shovel 200 is greater than the width of the reinforcing ribs 240 arranged corresponding to the remaining rotating lugs 250. In this way, the ice shovel 200 can bear greater pressure and torque, and further reduce the total width of the reinforcing ribs 240, i.e., reduce the water leakage area of the water leakage port 230 occupied by the reinforcing ribs 240 while further improving the strength of the ice shovel 200.
[0068] In the embodiment, the first side 210 is provided with two groups of rotating lugs 250, and the ice shovel 200 is provided with only three reinforcing ribs 240 corresponding to each group of rotating lugs 250, and the width of the reinforcing rib 240 close to the side edge of the length direction of the ice shovel 200 is greater than that of the other two reinforcing ribs 240, because when the ice shovel 200 is used to shovel ice, most of the force is concentrated on the position close to the rotating lug 250 on both sides of the length direction of the ice shovel 200, and the reinforcing rib 240 with a greater width is arranged at the position close to the side edge of the length direction of the ice shovel 200 among the three reinforcing ribs 240, so that the ice shovel 200 can bear greater pressure and torque, and the total width of the reinforcing rib 240 is further reduced, that is, the reinforcing rib 240 occupies the water leakage area of the water leakage port 230, and the strength of the ice shovel 200 is further improved. Of course, the present scheme is not limited to this, and in other embodiments, the first side 210 can also be provided with a group of rotating lugs 250, and the ice shovel 200 is provided with a plurality of reinforcing ribs 240 corresponding to the rotating lug 250, and the width of the two reinforcing ribs 240 located on both sides of the length direction is greater than that of the reinforcing rib 240 located in the middle. The specific number of reinforcing ribs 240 is not limited, as long as the thickness of the reinforcing rib 240 is thickened at the corresponding position of the rotating lug 250, which should be included in the protection scope of the present scheme.
[0069] Optionally, the bottom of the water leakage port 230 on both sides in the width direction is provided with a reinforcing plate 260, and the reinforcing rib 240 corresponding to the rotating lug 250 is connected to the two reinforcing plates 260, so that the supporting strength of the reinforcing rib 240 is increased, thereby increasing the strength of the ice shovel 200. Of course, the present scheme is not limited to this, and in other embodiments, the reinforcing plate 260 can also not be provided.
[0070] Optionally, in the embodiment, at least the water leakage port 230 is provided with a reinforcing rib 240 in the middle in the length direction, so that the strength of the ice shovel 200 at the position of the water leakage port 230 is increased.
[0071] Referring to Figure 1 The utility model also proposes a pure drinking machine, the pure drinking machine includes ice making module, the specific structure of ice making module refers to the above-mentioned embodiment, because the present pure drinking machine adopts all the technical schemes of the above-mentioned embodiments, at least has all the beneficial effects brought by the technical scheme of the above-mentioned embodiment, here is not repeated.
[0072] The above-mentioned is only the exemplary implementation of the utility model, and does not limit the patent scope of the utility model, and all equivalent structural transformations made by using the utility model specification and the contents of the drawings, or direct / indirect application in other related technical fields are included in the patent protection scope of the utility model.
Claims
1. An ice-making module, characterized by, The ice maker comprises: a casing; an ice making groove rotatably arranged in the casing; a scraping plate having a first side and a second side oppositely arranged, the first side being rotatably connected with the ice making groove, and the second side being provided with a rolling member; and an ice receiving groove arranged below the ice making groove, the ice making groove driving the scraping plate to rotate so that the rolling member rolls along an inner groove wall of the ice receiving groove.
2. The ice-making module of claim 1, wherein, The rolling member at least partially protrudes from a side edge of the second side.
3. The ice-making module of claim 2, wherein, The second side is provided with a mounting gap, and the rolling member is mounted in the mounting gap.
4. The ice-making module of claim 3, wherein, A top wall of at least the mounting gap is provided with a water guide inclined surface.
5. The ice-making module of claim 1, wherein, A bottom side of the scraping plate is provided with two mounting lugs arranged at intervals, and two ends of the rolling member are respectively rotatably connected with the two mounting lugs.
6. The ice-making module of claim 5, wherein, A guide inclined surface is arranged on a side of the mounting lug close to the ice making groove, and the guide inclined surface gradually inclines towards a bottom surface of the scraping plate in a direction close to the ice making groove.
7. The ice-making module of claim 1, wherein, At least a bottom surface of the second side inclines towards a top surface of the second side in a direction away from the ice making groove.
8. The ice-making module of any one of claims 1 to 7, wherein, A lower limiting structure is arranged between the scraping plate and the ice making groove.
9. The ice-making module of claim 8, wherein, The lower limiting structure comprises a limiting rib arranged at a bottom of the first side, and the limiting rib is used to abut against a groove wall of the ice making groove.
10. The ice-making module of claim 8, wherein, A maximum included angle between the scraping plate and a vertical direction axis is less than 180°.
11. A water purification machine characterized by The ice maker comprises the ice making module according to any one of claims 1 to 10.