A mortar raw material feeding elevator

The self-cleaning turbine lifting assembly solves the problems of low efficiency and insufficient stability of traditional feed elevators, achieving efficient and reliable raw material lifting and adapting to different types and humidity levels of raw materials.

CN224296170UActive Publication Date: 2026-05-29CHONGQING SHUNTAI NEW MATERIAL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
CHONGQING SHUNTAI NEW MATERIAL TECH CO LTD
Filing Date
2025-03-27
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Traditional feed elevators have low lifting efficiency, are prone to raw material spillage and blockage, lack equipment stability and reliability, and are difficult to adapt to different types and humidity levels of raw materials.

Method used

The self-cleaning turbine lifting assembly includes a lifting box, lifting pipe, sealing plate, servo motor, transmission rod, and turbine blades. The servo motor drives the transmission rod and turbine blades to rotate, thereby lifting the raw materials. The cleaning pipe and one-way valve are used for automatic cleaning to prevent blockage and spillage.

Benefits of technology

It improves efficiency, reduces spillage and blockage of raw materials, enhances the stability and reliability of the equipment, and adapts to different types and humidity levels of raw materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to building material processing equipment technical field, concretely relates to a mortar raw material feeding elevator, including self -cleaning turbine lifting assembly, self -cleaning turbine lifting assembly includes lifting box, lifting pipe, sealing plate, servo motor, transmission rod and turbine piece, one end of lifting pipe is fixedly connected with lifting box, the other end of lifting pipe sets up in the oblique top of lifting box, sealing plate is detachably connected with lifting pipe, servo motor is detachably connected with sealing plate, transmission rod passes through sealing plate and is detachably connected with servo motor, turbine piece is fixedly connected with transmission rod, replace the traditional lifting structure modification with self -cleaning turbine lifting assembly by this, will effectively solved the traditional feeding elevator often exists some problems, for example, the low efficiency of lifting, raw material's spillover and the blockage of easy emergence, the stability and reliability of equipment are insufficient, and the problem of difficult to adapt to different kinds and humidity raw material.
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Description

Technical Field

[0001] This utility model relates to the field of building material processing equipment technology, and in particular to a mortar raw material feeding and lifting machine. Background Technology

[0002] In the mortar production process, various raw materials such as cement, sand, and additives need to be lifted to a specific height and then transported to the mixing equipment.

[0003] Traditional feeding elevators often have some problems, such as low lifting efficiency, easy spillage and blockage of raw materials, insufficient stability and reliability of the equipment, and difficulty in adapting to different types and humidity of raw materials.

[0004] To address the aforementioned issues, we propose a mortar raw material feeding and lifting machine. Utility Model Content

[0005] The purpose of this utility model is to provide a mortar raw material feeding elevator, which solves some problems that traditional feeding elevators often have, such as low lifting efficiency, easy spillage and blockage of raw materials, insufficient stability and reliability of the equipment, and difficulty in adapting to different types and moisture of raw materials.

[0006] To achieve the above objectives, this utility model employs a mortar raw material feeding elevator, comprising a self-cleaning turbine lifting assembly. The self-cleaning turbine lifting assembly includes a lifting box, a lifting pipe, a sealing plate, a servo motor, a transmission rod, and turbine blades. One end of the lifting pipe is fixedly connected to the lifting box and located inside the lifting box on one side. The other end of the lifting pipe is positioned diagonally above the lifting box. The sealing plate is detachably connected to the lifting pipe and located at the end of the lifting pipe away from the lifting box. The servo motor is detachably connected to the sealing plate and located on the side of the sealing plate away from the lifting pipe. The transmission rod passes through the sealing plate and is detachably connected to the servo motor, located at the output end of the servo motor, and is positioned inside the lifting pipe. The turbine blades are fixedly connected to the transmission rod and located on the outer surface of the transmission rod, and are positioned inside the lifting pipe.

[0007] The self-cleaning turbine lifting assembly further includes a partition plate, which is fixedly connected to the lifting box and located inside the lifting box. The partition plate is disposed on the outer surface of the lifting pipe near the lifting box.

[0008] The self-cleaning turbine lifting assembly further includes an inlet and an outlet pipe. The inlet is fixedly connected to the lifting pipe and is located inside the end of the lifting pipe near the lifting box. The outlet pipe is detachably connected to the lifting pipe and is located at the end of the lifting pipe away from the lifting box. The outlet pipe is perpendicular to the sealing plate.

[0009] The self-cleaning turbine lifting assembly further includes a cleaning pipe and a one-way valve. The cleaning pipe is detachably connected to the lifting pipe and is located above the end of the lifting pipe away from the lifting box. The cleaning pipe is perpendicular to the sealing plate and also perpendicular to the discharge pipe. The one-way valve is fixedly connected to the cleaning pipe and is located at the internal center of the cleaning pipe. The one-way valve is located above the lifting pipe.

[0010] The self-cleaning turbine lifting assembly further includes a drain outlet and a sealing block. The drain outlet is fixedly connected to the lifting box and located inside the lifting box on the side away from the lifting pipe. The sealing block is detachably connected to the lifting box and located inside the lifting box, and the sealing block is disposed inside the drain outlet.

[0011] This utility model discloses a mortar raw material feeding elevator, comprising a self-cleaning turbine lifting assembly. The self-cleaning turbine lifting assembly includes a lifting box, a lifting pipe, a sealing plate, a servo motor, a transmission rod, and turbine blades. One end of the lifting pipe is fixedly connected to the lifting box and located inside the lifting box. The other end of the lifting pipe is positioned diagonally above the lifting box. The sealing plate is detachably connected to the lifting pipe and located at the end of the lifting pipe away from the lifting box. The servo motor is detachably connected to the sealing plate and located on the side of the sealing plate away from the lifting pipe. The transmission rod passes through the sealing plate and is detachably connected to the servo motor, located at the output end of the servo motor, and is positioned inside the lifting pipe. The turbine blades are fixedly connected to the transmission rod and located on the outer surface of the transmission rod, and are positioned inside the lifting pipe. By replacing the traditional lifting structure with a self-cleaning turbine lifting assembly, this effectively solves some problems often found in traditional feeding elevators, such as low lifting efficiency, easy spillage and blockage of raw materials, insufficient stability and reliability of the equipment, and difficulty in adapting to different types and moisture levels of raw materials. Attached Figure Description

[0012] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0014] Figure 2 This is a top view of the entire utility model.

[0015] Figure 3 This is a utility model Figure 2 A cross-sectional view of the AA line structure.

[0016] 101-Lifting box, 102-Lifting pipe, 103-Baffle plate, 104-Sealing plate, 105-Servo motor, 106-Transmission rod, 107-Turbine blade, 108-Feed inlet, 109-Discharge pipe, 110-Cleaning pipe, 111-One-way valve, 112-Drain outlet, 113-Sealing block. Detailed Implementation

[0017] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.

[0018] Please see Figures 1-3 , Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a top view of the entire utility model. Figure 3 This is a utility model Figure 2 A cross-sectional view of the AA line structure.

[0019] This utility model provides a mortar raw material feeding elevator, including a self-cleaning turbine lifting assembly. The self-cleaning turbine lifting assembly includes a lifting box 101, a lifting pipe 102, a sealing plate 104, a servo motor 105, a transmission rod 106, turbine blades 107, a partition plate 103, a feed inlet 108, a discharge pipe 109, a cleaning pipe 110, a one-way valve 111, a drain outlet 112, and a sealing block 113. This solution addresses some problems often found in traditional feeding elevators, such as low lifting efficiency and the tendency for raw materials to spill and clog. The equipment suffers from insufficient stability and reliability, making it difficult to adapt to raw materials of different types and humidity levels. Understandably, the aforementioned solution could transfer the mortar raw material to the lifting box 101 during the lifting and feeding process, then be started by the servo motor 105, which would drive the transmission rod 106 and the turbine blade 107. The raw material would then enter the lifting pipe 102 from the lifting box 101 through the feed inlet 108. The transmission rod 106 and turbine blade 107 would then continuously rotate, thus propelling the raw material through the lifting... When pipe 102 reaches the designated height, the material is discharged through discharge pipe 109, thus achieving the purpose of lifting the raw material. When a certain amount of raw material remains in the lifting pipe 102, workers will connect a water source to the cleaning pipe 110. Due to the presence of the one-way valve 111, clean water will enter the lifting pipe 102 through the one-way valve 111 and the cleaning pipe 110, while the raw material will not be able to be transferred through the one-way valve 111 into the cleaning pipe 110. Then, the servo motor 105 reverses, and the transmission rod 106... The turbine blades 107 will also be flipped, thereby cleaning the inner wall of the lifting pipe 102. After cleaning, the sealing block 113 will be removed from the drain outlet 112 by the staff, and the residual material in the lifting box 101 will flow out with the water flow, keeping the overall cleanliness. This effectively solves some problems that traditional feeding elevators often have, such as low lifting efficiency, easy spillage and blockage of raw materials, insufficient stability and reliability of the equipment, and difficulty in adapting to different types and humidity of raw materials.

[0020] In this specific embodiment, one end of the lifting tube 102 is fixedly connected to the lifting box 101 and located inside the lifting box 101. The other end of the lifting tube 102 is located diagonally above the lifting box 101. The sealing plate 104 is detachably connected to the lifting tube 102 and located at the end of the lifting tube 102 away from the lifting box 101. The servo motor 105 is detachably connected to the sealing plate 104 and located on the side of the sealing plate 104 away from the lifting tube 102. The transmission rod 106 passes through the sealing plate 104 and is detachably connected to the servo motor 105, located at the output end of the servo motor 105. The transmission rod 106 is located inside the lifting tube 102. The turbine blade 107 is fixedly connected to the transmission rod 106 and located on the outer surface of the transmission rod 106. The turbine blade 107 is disposed inside the lifting pipe 102. When the mortar raw material is lifted and fed, the raw material is transferred to the lifting box 101, and then started by the servo motor 105, which drives the transmission rod 106 and the turbine blade 107. As a result, the raw material enters the lifting pipe 102 from the lifting box 101 through the feed port 108. Then, the transmission rod 106 and the turbine blade 107 rotate continuously, thereby lifting the raw material through the lifting pipe 102 to a specified height, and then discharging it through the discharge pipe 109, thus achieving the purpose of lifting the raw material.

[0021] The partition 103 is fixedly connected to the lifting box 101 and located inside the lifting box 101. The partition 103 is disposed on the outer surface of the lifting pipe 102 near the lifting box 101. Since the lifting pipe 102 and the lifting box 101 are inclined, the partition 103 effectively prevents raw materials from entering the dead corner between the lifting box 101 and the lifting pipe 102, thus preventing unnecessary waste.

[0022] Secondly, the feed inlet 108 is fixedly connected to the lifting pipe 102 and is located inside the end of the lifting pipe 102 near the lifting box 101. The discharge pipe 109 is detachably connected to the lifting pipe 102 and is located at the end of the lifting pipe 102 away from the lifting box 101. The discharge pipe 109 is perpendicular to the sealing plate 104. The feed inlet 108 and the discharge pipe 109 will be the channels through which the raw materials pass in the lifting pipe 102.

[0023] Simultaneously, the cleaning pipe 110 is detachably connected to the lifting pipe 102 and is located above the end of the lifting pipe 102 away from the lifting box 101. The cleaning pipe 110 is perpendicular to the sealing plate 104 and also perpendicular to the discharge pipe 109. The one-way valve 111 is fixedly connected to the cleaning pipe 110 and located at the internal center of the cleaning pipe 110. The one-way valve 111 is positioned above the lifting pipe 102. When a certain amount of raw material remains, the staff will connect the water source to the cleaning pipe 110. Due to the presence of the one-way valve 111, clean water will enter the riser pipe 102 through the one-way valve 111 and the cleaning pipe 110. The raw material will not be able to be transmitted into the cleaning pipe 110 through the one-way valve 111. Then the servo motor 105 will reverse, and the transmission rod 106 and the turbine blade 107 will also rotate, thereby cleaning the inner wall of the riser pipe 102.

[0024] In addition, the drain outlet 112 is fixedly connected to the lifting box 101 and is located inside the lifting box 101 on the side away from the lifting pipe 102. The sealing block 113 is detachably connected to the lifting box 101 and is located inside the lifting box 101. The sealing block 113 is located inside the drain outlet 112. After the inner wall of the lifting pipe 102 is cleaned, the sealing block 113 will be removed from the drain outlet 112 by the staff. The residue remaining in the lifting box 101 will flow out with the water flow, keeping the overall cleanliness.

[0025] When using this invention to lift and feed mortar raw materials, the raw materials are transferred to the lifting box 101, and then started by the servo motor 105, which drives the transmission rod 106 and the turbine blade 107. The raw materials then enter the lifting pipe 102 from the lifting box 101 through the feed inlet 108. The transmission rod 106 and the turbine blade 107 continuously rotate, thus lifting the raw materials to a designated height through the lifting pipe 102, and then discharging them through the discharge pipe 109. This achieves the purpose of lifting the raw materials. When a certain amount of raw materials remains in the lifting pipe 102, workers connect a water source to the cleaning pipe 110. Due to the presence of the one-way valve 111, clean water will pass through the one-way valve 111 and... The cleaning pipe 110 enters the lifting pipe 102, and the raw material will not be able to be transmitted into the cleaning pipe 110 through the one-way valve 111. Then the servo motor 105 reverses, and the transmission rod 106 and the turbine blade 107 will also rotate, thereby cleaning the inner wall of the lifting pipe 102. After cleaning, the sealing block 113 will be removed from the drain outlet 112 by the operator, and the residual material in the lifting box 101 will flow out with the water flow, keeping the overall cleanliness. This effectively solves some problems that traditional feeding elevators often have, such as low lifting efficiency, easy spillage and blockage of raw materials, insufficient stability and reliability of the equipment, and difficulty in adapting to different types and humidity of raw materials.

[0026] The above-disclosed embodiments are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of the present utility model. Those skilled in the art can understand that implementing all or part of the above-described embodiments and making equivalent changes in accordance with the claims of the present utility model are still within the scope of the utility model.

Claims

1. A mortar raw material feeding elevator, characterized in that, The invention includes a self-cleaning turbine lift assembly, comprising a lift box, a lift pipe, a sealing plate, a servo motor, a transmission rod, and turbine blades. One end of the lift pipe is fixedly connected to the lift box and located inside the lift box on one side. The other end of the lift pipe is located diagonally above the lift box. The sealing plate is detachably connected to the lift pipe and located at the end of the lift pipe away from the lift box. The servo motor is detachably connected to the sealing plate and located on the side of the sealing plate away from the lift pipe. The transmission rod passes through the sealing plate and is detachably connected to the servo motor, located at the output end of the servo motor, and is located inside the lift pipe. The turbine blades are fixedly connected to the transmission rod and located on the outer surface of the transmission rod, and are located inside the lift pipe.

2. The mortar raw material feeding elevator as described in claim 1, characterized in that, The self-cleaning turbine lifting assembly also includes a partition plate, which is fixedly connected to the lifting box and located inside the lifting box. The partition plate is disposed on the outer surface of the lifting pipe near the lifting box.

3. The mortar raw material feeding elevator as described in claim 2, characterized in that, The self-cleaning turbine lifting assembly also includes an inlet and an outlet pipe. The inlet is fixedly connected to the lifting pipe and is located inside the end of the lifting pipe near the lifting box. The outlet pipe is detachably connected to the lifting pipe and is located at the end of the lifting pipe away from the lifting box. The outlet pipe is perpendicular to the sealing plate.

4. The mortar raw material feeding elevator as described in claim 3, characterized in that, The self-cleaning turbine lifting assembly also includes a cleaning pipe and a one-way valve. The cleaning pipe is detachably connected to the lifting pipe and is located above the end of the lifting pipe away from the lifting box. The cleaning pipe is perpendicular to the sealing plate and also perpendicular to the discharge pipe. The one-way valve is fixedly connected to the cleaning pipe and is located at the internal center of the cleaning pipe. The one-way valve is located above the lifting pipe.

5. The mortar raw material feeding elevator as described in claim 4, characterized in that, The self-cleaning turbine lifting assembly also includes a drain outlet and a sealing block. The drain outlet is fixedly connected to the lifting box and located inside the lifting box on the side away from the lifting pipe. The sealing block is detachably connected to the lifting box and located inside the lifting box, and the sealing block is disposed inside the drain outlet.