Socket and spigot type standardized garbage delivery channel
By using a standardized socket-type waste transportation channel, made of PE hard plastic and with cushioning rubber pads, the problems of unstable connection, heavy weight, and difficult maintenance of existing channels have been solved, achieving efficient, safe, and economical waste transportation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- THE THIRD CONSTR ENG CO LTD OF CHINA CONSTR SECOND ENG BUREAU
- Filing Date
- 2025-03-31
- Publication Date
- 2026-04-21
AI Technical Summary
Existing waste transportation channels for super high-rise buildings suffer from problems such as unstable connections, easy damage, heavy weight, high cost, and inconvenient maintenance after blockage, failing to meet the needs of modern building construction for efficiency, safety, and economy.
The standardized waste transport channel adopts a socket-type design, including a standard section, a feeding section, an unloading section, and a socket-type buffer section. It is made of PE hard plastic and equipped with buffer rubber pads to achieve quick installation and disassembly, adapt to complex construction environments, and reduce the impact of falling waste kinetic energy.
It improves construction efficiency, reduces labor costs, minimizes safety hazards, lowers material costs, adapts to diverse building needs, and enables flexible configuration.
Smart Images

Figure CN224149091U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of building construction, and in particular to a socket-type standardized waste transportation channel. Background Technology
[0002] Currently, corrugated pipe or steel pipe waste chutes are commonly used for transporting waste from super high-rise buildings. Corrugated pipe chutes are prone to damage due to unstable connections and lack of cushioning, posing safety hazards and maintenance difficulties. Steel pipe chutes, on the other hand, are heavy, costly, and difficult to repair after blockages, making them unsuitable for diverse building needs. Both types of chutes have significant shortcomings in installation efficiency, durability, and safety, failing to meet the high-efficiency, safe, and economical requirements of modern building construction. Utility Model Content
[0003] The purpose of this utility model is to provide a socket-type standardized waste transportation channel to solve the above-mentioned problems in the prior art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a socket-type standardized waste transportation channel, comprising an upper operating node, which includes a standard section, a feeding section inserted below the standard section, a feeding port on one side of the feeding section, an unloading section inserted below the feeding section, and a socket-type buffer section inserted below the unloading section; an upper feeding platform, which includes a feeding hopper at the top, a feeding channel fixedly connected below the feeding hopper, and the end of the feeding channel away from the feeding hopper extending into the feeding port; a middle operating node, which includes multiple standard sections and multiple socket-type buffer sections, with the standard sections and socket-type buffer sections spaced apart; and a lower operating node, which includes a standard section, the lower part of which is connected to a discharge hopper, and a discharge channel fixedly connected below the feeding hopper, with the other end of the discharge channel away from the standard section.
[0005] In a preferred embodiment, the four sides of the feed hopper are all sloping, and the lower ends of the four sides of the feed hopper intersect to form a square opening. A square opening is provided at the connection between the feed channel and the feed hopper. The square opening is fixedly connected to the opening of the feed channel, and the area of the square opening is the same as that of the feed channel.
[0006] In a preferred embodiment, a square steel platform is provided below the feeding hopper, and multiple steps are provided on the square steel platform. A concrete floor slab is located below the square steel platform, and an L-shaped angle steel is fixed above the concrete floor slab by anchor bolts. The L-shaped angle steel is located between the upper feeding platform and the unloading section. A rectangular steel plate is fixedly connected above the L-shaped angle steel. Two tie bolt holes are provided on the rectangular steel plate. A connecting block is provided behind the rectangular steel plate. High-strength bolts are inserted into the tie bolt holes of the rectangular steel plate. The rectangular steel plate and the connecting block are fixedly connected by high-strength bolts. The other end of the connecting block extends horizontally into the middle of the outer side of the unloading section, and the other end of the connecting block is fixedly connected to the middle of the outer side of the unloading section.
[0007] In a preferred embodiment, a square steel platform is provided below the discharge hopper, and multiple steps are provided on the square steel platform. The floor below the square steel platform is a concrete floor slab. The four sides inside the discharge hopper are all sloping. The lower ends of the four sides of the discharge hopper intersect to form a square opening. A square opening is provided at the connection between the discharge channel and the discharge hopper. The square opening is fixedly connected to the opening of the discharge channel. The square opening and the opening of the discharge channel have the same area.
[0008] In a preferred embodiment, the feed inlet is rectangular, and two metal doors are respectively provided on the two vertical sides of the feed inlet. The metal doors are arc-shaped, and the two metal doors are connected in the middle of the feed inlet by a safety buckle.
[0009] In a preferred embodiment, both the upper and lower ends of the socket buffer section are provided with constriction structures. The socket buffer section is inserted into the standard section through the constriction structure at the upper end, and the socket buffer section is inserted into the standard section through the constriction structure at the lower end. Both the upper and lower ends of the feed section are provided with constriction structures. The feed section is inserted into the standard section through the constriction structure at the upper end, and the feed section is inserted into the unloading section through the constriction structure at the lower end.
[0010] In a preferred embodiment, a 20mm thick buffer rubber pad is provided inside the upper end of the socket buffer section, and a cross-shaped opening is provided in the middle of the buffer rubber pad.
[0011] In a preferred embodiment, the standard section, unloading section, feeding section, and socket buffer section are all cylindrical structures with equal diameters, and their outer skin is made of PE hard plastic with a thickness of 20 mm.
[0012] In a preferred embodiment, lifting lugs are provided on both sides above the standard section and the unloading section.
[0013] In a preferred embodiment, a fixing hoop is fitted onto the standard section, and the other side of the fixing hoop is fixedly connected to the wall by a through bolt.
[0014] Compared with the prior art, this utility model has the following features and beneficial effects:
[0015] 1. The standard section, unloading section, feeding section, and socket buffer section of this utility model adopt standardized interfaces to achieve rapid installation and disassembly, improve construction efficiency, reduce labor costs, and can be flexibly configured according to building height and waste type to adapt to complex construction environments.
[0016] 2. The upper end of the socket buffer section of this utility model is provided with a 20mm thick buffer rubber pad, which effectively absorbs the kinetic energy of falling garbage, reduces the impact on the underlying structure, and reduces safety hazards.
[0017] 3. The standard section, unloading section, feeding section, and socket buffer section of this utility model are made of 20mm thick PE hard plastic, which is lightweight, high-strength, corrosion-resistant, and reusable, reducing material costs and resource waste. Attached Figure Description
[0018] The present invention will now be described in further detail with reference to the accompanying drawings.
[0019] Figure 1 This is a schematic diagram of the upper working node and the upper feeding platform of this utility model;
[0020] Figure 2 This is a schematic diagram of the middle operation node of this utility model;
[0021] Figure 3 This is a schematic diagram of the lower working node of this utility model;
[0022] Figure 4 This is a schematic diagram showing the connection between the unloading section of this utility model and the concrete floor slab;
[0023] Figure 5 This is a schematic diagram of the feeding section of this utility model;
[0024] Figure 6 This is a top view of the upper feeding platform of this utility model;
[0025] Figure 7 This is a schematic diagram of the fixing hoop of this utility model.
[0026] Figure labels: 1-Standard section, 2-Feeding section, 3-Feeding port, 4-Unloading section, 5-Socket buffer section, 6-Feeding bin, 7-Feeding channel, 8-Discharge bin, 9-Discharge channel, 10-L-shaped angle steel, 11-Rectangular steel plate, 12-Tie bolt hole, 13-Connecting block, 14-Sheet metal door, 15-Buffer rubber pad, 16-Lifting lug, 17-Fixing hoop. Detailed Implementation
[0027] The technical solutions in the embodiments of this utility model will be clearly and completely described below. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0028] Example 1:
[0029] See the examples. Figures 1 to 7As shown, this utility model discloses a socket-type standardized waste transportation channel, which includes an upper working node. The upper working node includes a standard section 1, and a feeding section 2 is inserted below the standard section 1. A feeding port 3 is opened on one side of the feeding section 2. The feeding port 3 is a rectangular opening. Two iron sheet doors 14 are respectively set on the two vertical sides of the feeding port 3. The iron sheet doors 14 are arc-shaped, and the two iron sheet doors 14 are connected in the middle of the feeding port 3 by a safety buckle.
[0030] Both the upper and lower ends of the feeding section 2 are equipped with constriction structures. The feeding section 2 is inserted into the standard section 1 through the upper constriction structure and into the unloading section 4 through the lower constriction structure. The unloading section 4 is inserted into the bottom of the socket buffer section 5. The upper end of the socket buffer section 5 is equipped with a 20mm thick buffer rubber pad 15. The buffer rubber pad 15 has a cross-shaped opening in the middle. Both the upper and lower ends of the socket buffer section 5 are equipped with constriction structures. The socket buffer section 5 is inserted into the standard section 1 through the upper constriction structure and into the standard section 1 through the lower constriction structure.
[0031] Standard section 1, unloading section 4, feeding section 2, and socket buffer section 5 are all cylindrical structures with equal diameters. The outer skin is made of PE hard plastic with a thickness of 20 mm. Lifting lugs 16 are provided on both sides above standard section 1 and unloading section 4. A fixing hoop 17 is fitted on standard section 1. The other side of the fixing hoop 17 is fixedly connected to the wall by through bolts.
[0032] The central working node includes multiple standard sections 1 and multiple socket buffer sections 5, with standard sections 1 and socket buffer sections 5 spaced apart.
[0033] The upper feeding platform includes a feeding bin 6 at the top, and a feeding channel 7 is fixedly connected below the feeding bin 6. The end of the feeding channel 7 away from the feeding bin 6 extends into the feeding port 3. The four sides inside the feeding bin 6 are all sloping. The lower ends of the four sides of the feeding bin 6 intersect to form a square opening. A square opening is provided at the connection between the feeding channel 7 and the feeding bin 6. The square opening is fixedly connected to the opening of the feeding channel 7. The area of the square opening is the same as that of the feeding channel 7.
[0034] A square steel platform is installed below the feeding hopper 6. The square steel platform has multiple steps. Below the square steel platform is a concrete floor slab. An L-shaped angle steel 10 is fixed above the concrete floor slab by anchor bolts. The L-shaped angle steel 10 is located between the upper feeding platform and the unloading section 4. A rectangular steel plate 11 is fixedly connected above the L-shaped angle steel 10. Two tie bolt holes 12 are opened on the rectangular steel plate 11. A connecting block 13 is installed behind the rectangular steel plate 11. High-strength bolts are inserted into the tie bolt holes 12 of the rectangular steel plate 11. The rectangular steel plate 11 and the connecting block 13 are fixedly connected by high-strength bolts. The other end of the connecting block 13 extends horizontally into the middle of the outer side of the unloading section 4. The other end of the connecting block 13 is fixedly connected to the middle of the outer side of the unloading section 4.
[0035] The lower working node includes standard section 1, which is connected to the discharge bin 8 below. The discharge channel 9 is fixedly connected to the lower part of the feed bin 6. The other end of the discharge channel 9 is away from the standard section 1. A square steel platform is set below the discharge bin 8. The square steel platform has multiple steps. The concrete floor slab is below the square steel platform. The four sides of the discharge bin 8 are all sloping. The lower ends of the four sides of the discharge bin 8 intersect to form a square opening. A square opening is provided at the connection between the discharge channel 9 and the discharge bin 8. The square opening is fixedly connected to the opening of the discharge channel 9. The area of the square opening and the opening of the discharge channel 9 are the same.
[0036] Example 2:
[0037] Construction steps of this utility model:
[0038] Step 1: Install the matching square steel platform at the predetermined location on the upper floors of the building, and install the matching square steel platform at the predetermined location on the ground floor of the building.
[0039] Step 2: Hoist the unloading section 4 to the designated position using the lifting lugs 16 on it, and fix it to the concrete structure using the connecting block 13, angle steel and concrete. Insert the feeding section 2 above the unloading section 4, insert the standard section 1 above the feeding section 2, insert the socket buffer section 5 below the unloading section 4, insert the standard section 1 below the socket buffer section 5, and insert the socket buffer section 5 below the standard section 1. The standard section 1 and the socket buffer section 5 are inserted alternately, with the standard section 1 being the bottom layer. Connect the standard section 1 to the discharge hopper 8 set above the bottom square steel platform. The discharge channel 9 is fixedly connected below the feeding hopper 6. The other end of the discharge channel 9 is away from the standard section 1 to ensure that the garbage is discharged to the collection area in a directional manner.
[0040] Step 3: Install a feeding hopper 6 above the square steel platform on the upper floor, and fix a feeding channel 7 below the feeding hopper 6. The end of the feeding channel 7 away from the feeding hopper 6 extends into the feeding port 3.
[0041] Step 4: Secure the other side of the fixing hoop 17 fitted on standard section 1 to the wall using through bolts;
[0042] Step 5: Check the sealing and fixing status of each interface, simulate the operation stability of the waste transportation test channel, and adjust the position of the socket buffer section 5 to optimize the shock absorption effect.
[0043] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A socket-type standardized waste transportation channel, characterized in that: include: The upper working node includes a standard section (1), a feeding section (2) is inserted below the standard section (1), a feeding port (3) is opened on one side of the feeding section (2), an unloading section (4) is inserted below the feeding section (2), and a socket buffer section (5) is inserted below the unloading section (4). The upper feeding platform includes a feeding bin (6) set at the top layer, and a feeding channel (7) is fixedly connected below the feeding bin (6). The end of the feeding channel (7) away from the feeding bin (6) extends into the feeding port (3). The central working node includes multiple standard sections (1) and multiple socket buffer sections (5), wherein the standard sections (1) and socket buffer sections (5) are spaced apart. The lower working node includes a standard section (1), which is connected to the discharge bin (8) below. The discharge channel (9) is fixedly connected to the lower part of the feed bin (6), and the other end of the discharge channel (9) is away from the standard section (1).
2. A bell and spigot standardized waste evacuation channel according to claim 1, characterized in that: The four sides inside the feed hopper (6) are all sloping. The lower ends of the four sides of the feed hopper (6) intersect to form a square opening. The feed channel (7) is provided with a square opening at the connection with the feed hopper (6). The square opening is fixedly connected to the opening of the feed channel (7). The square opening and the feed channel (7) have the same area.
3. A bell and spigot standardized waste evacuation channel according to claim 1, characterized in that: A square steel platform is provided below the feeding hopper (6). The square steel platform is provided with multiple steps. The square steel platform is below a concrete floor slab. An L-shaped angle steel (10) is fixed above the concrete floor slab by anchor bolts. The L-shaped angle steel (10) is located between the upper feeding platform and the unloading section (4). A rectangular steel plate (11) is fixedly connected above the L-shaped angle steel (10). Two tie bolt holes (12) are opened on the rectangular steel plate (11). A connecting block (13) is provided behind the rectangular steel plate (11). High-strength bolts are inserted into the tie bolt holes (12) of the rectangular steel plate (11). The rectangular steel plate (11) and the connecting block (13) are fixedly connected by high-strength bolts. The other end of the connecting block (13) extends horizontally into the middle of the outer side of the unloading section (4). The other end of the connecting block (13) is fixedly connected to the middle of the outer side of the unloading section (4).
4. The bell and spigot standardized waste evacuation channel of claim 3, wherein, A square steel platform is provided below the discharge hopper (8). The square steel platform is provided with multiple steps. The square steel platform is below a concrete floor slab. The four sides of the discharge hopper (8) are all sloping. The lower ends of the four sides of the discharge hopper (8) intersect to form a square opening. A square opening is provided at the connection between the discharge channel (9) and the discharge hopper (8). The square opening is fixedly connected to the opening of the discharge channel (9). The square opening and the opening of the discharge channel (9) have the same area.
5. The bell and spigot standardized waste evacuation channel of claim 4, wherein, The feed inlet (3) is a rectangular opening. The two vertical sides of the feed inlet (3) are respectively provided with sheet metal doors (14). The sheet metal doors (14) are arc-shaped, and the two sheet metal doors (14) are connected in the middle of the feed inlet (3) by a safety buckle.
6. The bell and spigot standardized waste evacuation channel of claim 5, wherein, The upper and lower ends of the socket buffer section (5) are provided with a closing structure. The socket buffer section (5) is inserted into the standard section (1) through the closing structure at the upper end, and the socket buffer section (5) is inserted into the standard section (1) through the closing structure at the lower end. The upper and lower ends of the feeding section (2) are provided with a closing structure. The feeding section (2) is inserted into the standard section (1) through the closing structure at the upper end, and the feeding section (2) is inserted into the unloading section (4) through the closing structure at the lower end.
7. The bell and spigot standardized waste evacuation channel of claim 6, wherein, The upper end of the socket buffer section (5) is provided with a 20mm thick buffer rubber pad (15), and the buffer rubber pad (15) has a cross-shaped opening in the middle.
8. The bell and spigot standardized waste evacuation channel of claim 7, wherein, The standard section (1), unloading section (4), feeding section (2), and socket buffer section (5) are all cylindrical structures with equal diameters and an outer skin of 20 mm thick PE hard plastic.
9. The bell and spigot standardized waste evacuation channel of claim 8, wherein, Lifting lugs (16) are provided on both sides above the standard section (1) and the unloading section (4).
10. The bell and spigot standardized waste evacuation channel of claim 9, wherein, A fixing hoop (17) is fitted onto the standard section (1), and the other side of the fixing hoop (17) is fixedly connected to the wall by a through bolt.