Wastewater receiving structure of snow melting machine
By designing the water flow channel structure of the water collection box and wastewater box on the snow melter, the problems of troublesome operation and overflow of condensed water collection in the snow melter are solved, the real-time collection and simplified cleaning of condensed water are achieved, and the pollution of the machine body is avoided.
Patent Information
- Application Number
- CN202423014966.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-06
- Publication Date
- 2025-10-14
- Estimated Expiration
- 2034-12-06
AI Technical Summary
Existing snow melters are difficult to operate when collecting condensed water. If not cleaned in time, the condensed water will overflow into the interior of the machine body. In addition, the water storage status of the water collection box is difficult to observe, and it is easy to miss the opportunity to clean it.
A snow melter wastewater receiving structure was designed, including a barrel, a water collection box and a wastewater box. Condensed water is diverted to the wastewater box in real time through a water flow channel. The water collection box is fixedly configured on the lower side of the barrel and has a drainage hole at the bottom. The wastewater box also serves as a cup holder, simplifying the cleaning operation and promptly handling overflow.
The real-time collection and simplified cleaning of condensed water are achieved, which prevents condensed water from entering the interior of the machine body. The exposed waste water box makes it easy to detect overflow and reduce adverse effects.
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Figure CN223435344U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of snow melting machines for making ice drinks such as snow mud, and particularly relates to a wastewater receiving structure of a snow melting machine. Background Art
[0002] When a snow melter is operating, the evaporator cools the food inside the barrel. The outer wall temperature is generally lower than the ambient temperature, causing condensation to form on the barrel wall and flow downward along the outer wall. Existing snow melters collect this condensation using a drawer-like collection tray beneath the barrel. This tray needs to be removed periodically to clean the collected condensation, which is cumbersome. Failure to do so promptly can cause the condensation to overflow and enter the interior of the machine, causing adverse effects. Furthermore, the drawer-like collection tray is hidden, making it difficult to observe the amount of water stored, which can lead to delays in cleaning the condensation. Utility Model Content
[0003] The technical problem to be solved and the technical task proposed by the present invention is to overcome the defects of the existing snow melt machine in that it is troublesome to operate when collecting condensed water, and that condensed water may overflow if not cleaned in time. A snow melt machine wastewater receiving structure is provided, which aims to automatically guide the condensed water to the wastewater box, reduce the operation of cleaning the condensed water, and even if it is not cleaned in time, it can prevent the condensed water from entering the internal space of the machine body and causing adverse effects.
[0004] To achieve the above-mentioned purpose, the snow melter wastewater receiving structure of the present invention includes:
[0005] a barrel having a discharge port;
[0006] The water collecting box is fixedly arranged and located at the lower side of the barrel, and has a drainage hole at the bottom;
[0007] The waste water box is movable and also serves as a cup holder, which is located below the discharge port;
[0008] A water flow channel connects the drain hole and the waste water box.
[0009] Accordingly, the condensed water formed on the outer wall of the barrel will be collected in real time by the fixed water collection box and discharged into the wastewater box through the drainage hole and the water flow channel, and cleaned together with the other wastewater collected by the wastewater box. This structure does not require the water collection box to be pulled out every once in a while to clean the collected condensed water, which simplifies the operation of cleaning the condensed water. Moreover, even if the wastewater in the wastewater box is not cleaned in time and causes overflow, it will not enter the internal space of the machine body and cause adverse effects. Furthermore, the wastewater box is usually exposed, and when the water in the wastewater box overflows, it is easy to detect and deal with the wastewater in a timely manner.
[0010] Preferably, the inner surface of the water collecting box and the bottom surface of the material cylinder keep a gap. The condensed water on the outer wall of the material cylinder flows to the bottom of the water collecting box, avoiding the condensed water on the outer wall of the material cylinder flowing along the outer wall of the water collecting box to the body of the snow melting machine.
[0011] Preferably, the inner surface of the water collecting box and the bottom surface of the material cylinder are both arc surfaces. The condensed water is easily guided to the bottom of the water collecting box.
[0012] Preferably, the inner surface of the water collecting box is higher at the front end and lower at the rear end, and the drain hole is located at the front part of the inner surface of the water collecting box. The condensed water is easily guided to the drain hole and discharged into the waste water box through the water flow channel.
[0013] Preferably, the end of the water collecting box is provided with a water retaining edge. The condensed water is prevented from overflowing from the end of the water collecting box.
[0014] Preferably, the water flow channel comprises a fixed upper connector, a fixed lower connector and a water pipe connected between the upper connector and the lower connector. In this way, the product is easy to assemble. After the upper connector and the lower connector are fixedly installed, the water pipe is connected to the upper connector and the lower connector. Moreover, the water pipe is easy to disassemble, which is beneficial to dredging the water flow channel.
[0015] Preferably, the upper connector extends downward from the drain hole, and the lower connector extends upward from the bottom shell of the body. This is beneficial to connecting the water pipe and avoiding the water pipe being excessively bent in a local part and being easily blocked.
[0016] Preferably, the lower connector extends a pipe opening downward from the bottom shell of the body. The pipe opening can guide the condensed water to flow into the waste water box, avoiding the condensed water spreading around along the lower surface of the bottom shell of the body.
[0017] Preferably, the bottom shell of the body has a raised part, the lower connector is located at the raised part, the waste water box has a water receiving opening, and the water receiving opening is located at the lower side of the raised part. This makes the structure compact and is easy to remove the waste water box for cleaning waste water.
[0018] Preferably, the water receiving opening of the waste water box is located at the lower side of the lower end of the lower connector. This is used for receiving the condensed water completely and without omission, avoiding the condensed water flowing out of the waste water box.
[0019] The water collecting box is fixedly arranged and located below the material cylinder, the drain hole is arranged at the bottom of the water collecting box, the drain hole and the waste water box which also serves as a cup holder are connected through the water flow channel. When the snow melting machine is working, the condensed water formed on the outer wall of the material cylinder is collected by the fixed water collecting box in real time, and is discharged into the waste water box through the drain hole and the water flow channel, and is cleaned together with other waste water collected by the waste water box. This structure does not need to remove the water collecting box every certain period of time to clean the collected condensed water, which simplifies the operation of cleaning the condensed water. Moreover, even if the waste water in the waste water box is not cleaned in time and the waste water overflows, it will not enter the internal space of the body and cause adverse effects. Furthermore, the waste water box is usually exposed, and when the waste water in the waste water box overflows, it is easy to find and clean the waste water in time. BRIEF DESCRIPTION OF DRAWINGS
[0020] Figure 1 is a schematic view of the snow melting machine of the present application;
[0021] Figure 2 is Figure 1 is a schematic view of the snow melting machine after the removal of the barrel;
[0022] Figure 3 is a schematic view of the water flow channel connecting the drainage hole and the waste water box of the present application;
[0023] Figure 4 is Figure 3 is an enlarged view of part A in the figure;
[0024] Figure 5 is a schematic view of the removal of the waste water box of the present application;
[0025] Mark explanation in the figure:
[0026] 100 body, 101 bottom shell, 102 raised portion;
[0027] 200 barrel, 201 discharge port, 202 bottom surface;
[0028] 300 water collecting box, 301 drainage hole, 302 inner surface, 303 water retaining edge;
[0029] 400 waste water box, 401 water receiving port;
[0030] 500 water flow channel, 501 upper connecting pipe, 502 lower connecting pipe, 503 water pipe, 504 pipe opening;
[0031] 600 gap;
[0032] 700 valve, 701 handle. DETAILED DESCRIPTION
[0033] In order to make the purpose, technical scheme and advantages of the present application clearer, the technical scheme in the embodiments of the present application will be described clearly and completely below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0034] The terms "comprising" and "having" and any variations thereof in the DETAILED DESCRIPTION and the CLAIMS are intended to cover both the inclusive and exclusive aspects of the terms, such as, for example, a method or product that includes a list of technical features, without being limited to only those technical features that are clearly recited.
[0035] The utility model will be introduced in detail below in combination with specific embodiments and drawings.
[0036] Figure 1 A snow melting machine is shown, which includes a machine body 100 and a material cylinder 200. Generally, the material cylinder 200 can be removed from the machine body 100 for cleaning.
[0037] The snow melting machine wastewater receiving structure is shown in detail in 2-5, which includes the material cylinder 200, a water collecting box 300, a wastewater box 400 and a water flowing channel 500.
[0038] The material cylinder 200 has a discharge port 201, and a valve 700 with a handle 701 is arranged at the discharge port 201. The valve 700 blocks the discharge port 201 in the normal state, and the handle can be operated to open the discharge port 201.
[0039] The water collecting box 300 is located at the lower side of the material cylinder 200 and is fixed to a support. The bottom of the water collecting box 300 is provided with a drain hole 301.
[0040] The wastewater box 400 is movably arranged for collecting and cleaning wastewater. The wastewater box 400 is located below the discharge port 201 and also serves as a cup holder, and is also used to collect food dripping from the discharge port.
[0041] The water flowing channel 500 connects the drain hole 301 and the wastewater box 400.
[0042] Accordingly, the condensed water formed on the outer wall of the material cylinder 200 is collected in real time by the fixed water collecting box 300 and is discharged into the wastewater box 400 through the drain hole 301 and the water flowing channel 500, and is cleaned together with other wastewater collected by the wastewater box. This structure does not need to remove the water collecting box to clean the collected condensed water every certain period of time, simplifying the operation of cleaning the condensed water. Moreover, even if the wastewater in the wastewater box is not cleaned in time and overflows, it will not enter the internal space of the machine body to cause adverse effects. Furthermore, the wastewater box is usually exposed, and when the wastewater in the wastewater box overflows, it is easy to discover and clean the wastewater in time.
[0043] In the structure shown in the drawings, a gap 600 is maintained between the inner surface 302 of the water collecting box 300 and the bottom surface 202 of the material cylinder 200. The gap 600 is provided for the condensed water on the outer wall of the material cylinder to flow to the bottom of the water collecting box, avoiding the inner surface of the water collecting box and the bottom surface of the material cylinder from being in contact to prevent the condensed water on the outer wall of the material cylinder from flowing along the outer wall of the water collecting box to the machine body of the snow melting machine.
[0044] In the illustrated structure, the inner surface 302 of the water collecting box 300 and the bottom surface 202 of the material cylinder 200 are both arc surfaces. This facilitates the collection and timely discharge of condensed water to the bottom of the water collecting box.
[0045] In the illustrated structure, the inner surface 302 of the water collecting box 300 is lower at the front end and higher at the rear end, and the drain hole 301 is located at the front of the inner surface 302 of the water collecting box. This facilitates the guidance of condensed water to the drain hole and the discharge of the condensed water into the waste water box through the water flow channel.
[0046] In the illustrated structure, the end of the water collecting box 300 is provided with a water retaining edge 303. This prevents the condensed water from overflowing from the end of the water collecting box.
[0047] In the illustrated structure, the water flow channel 500 includes a fixed upper connector 501, a lower connector 502, and a water pipe 503 connected between the upper connector and the lower connector. In this way, the product is easy to assemble, and after the upper connector and the lower connector are fixedly installed, the water pipe can be connected to the upper connector and the lower connector. Moreover, the water pipe is easy to disassemble, which facilitates the dredging of the water flow channel.
[0048] In the illustrated structure, the upper connector 501 extends downward from the drain hole 301, and the lower connector 502 extends upward from the bottom shell 101 of the machine body. This facilitates the connection of the water pipe and prevents the water pipe from being excessively bent in a local area and being easily blocked.
[0049] In the illustrated structure, the lower connector 502 extends a pipe opening 504 downward from the bottom shell 501 of the machine body. The pipe opening 504 can guide the condensed water to flow into the waste water box, preventing the condensed water from spreading around along the lower surface of the bottom shell of the machine body.
[0050] In the illustrated structure, the bottom shell 101 of the machine body has a raised portion 102, the lower connector 502 is located at the raised portion 102, and the waste water box 400 has a water receiving opening 401 located at the lower side of the raised portion 102. This makes the structure compact and facilitates the removal of the waste water box for cleaning.
[0051] In the illustrated structure, the water receiving opening 401 of the waste water box 400 is located at the lower side of the lower end of the lower connector 502. This is used to fully and without omission receive the condensed water, preventing the condensed water from flowing out of the waste water box.
[0052] The above-described waste water receiving structure of the snow melting machine can collect the condensed water formed on the outer wall of the material cylinder 200 during the operation of the snow melting machine in real time through the fixed water collecting box 300, and discharge the condensed water into the waste water box 400 through the drain hole 301 and the water flow channel 500. Every certain period of time, such as Figure 5The waste water box 400 can be removed and cleaned, and then put back. Therefore, the water collecting box does not need to be pulled out to clean the collected condensed water, and the operation of cleaning the condensed water is simplified. Moreover, even if the waste water in the waste water box is not cleaned in time and overflows, it will not enter the internal space of the machine body and cause adverse effects. Furthermore, the waste water box is usually exposed, and when the waste water in the waste water box overflows, it is easy to discover and clean the waste water in time.
Claims
1. Snow melt machine wastewater receiving structure, which is characterized by include: A barrel (200) having a discharge port (201); A water collecting box (300) is fixedly arranged and located on the lower side of the barrel (200), and has a drainage hole (301) at its bottom; A waste water box (400) that is movably configured and also serves as a cup holder and is located below the discharge port (201); The water flow channel (500) connects the drainage hole (301) and the waste water box (400).
2. The snow melter wastewater receiving structure according to claim 1, characterized in that: A gap (600) is maintained between the inner surface (302) of the water collecting box (300) and the bottom surface (202) of the barrel (200).
3. The snow melter wastewater receiving structure according to claim 1 or 2, characterized in that: The inner surface (302) of the water collecting box (300) and the bottom surface (202) of the barrel (200) are both arc surfaces.
4. The snow melter wastewater receiving structure according to claim 3, characterized in that: The inner surface (302) of the water collecting box (300) has a low front end and a high rear end, and the drainage hole (301) is located at the front of the inner surface (302) of the water collecting box.
5. The snowmelt machine wastewater receiving structure according to claim 4 is characterized by: The end of the water collecting box (300) is provided with a water retaining edge (303).
6. The snow melter wastewater receiving structure according to claim 1, characterized in that: The water flow channel (500) comprises an upper pipe (501) fixed in position, a lower pipe (502), and a water pipe (503) connected between the upper pipe and the lower pipe.
7. The snow melter wastewater receiving structure according to claim 6, characterized in that: The upper connecting pipe (501) extends downward from the drainage hole (301), and the lower connecting pipe (502) extends upward from the bottom shell (101) of the fuselage.
8. The snowmelt machine wastewater receiving structure according to claim 7, characterized in that: The lower connecting pipe (502) extends to form a pipe opening (504) on the lower side of the bottom shell (101) of the fuselage.
9. The snow melter wastewater receiving structure according to claim 7, characterized in that: The bottom shell (101) of the machine body has a raised portion (102), the lower connecting pipe (502) is located on the raised portion (102), and the waste water box (400) has a water inlet (401), which is located on the lower side of the raised portion (102).
10. The snow melter wastewater receiving structure according to any one of claims 6 to 9, characterized in that: The water inlet (401) of the waste water box (400) is located at the lower side of the lower end of the lower connecting pipe (502).