Stationary device
By introducing a combination of steam delivery mechanism, cooling water tank and heat dissipation components into the curing device, the problem of continuous temperature rise inside the curing chamber is solved, ensuring the safe curing of blocks.
Patent Information
- Application Number
- CN202422987835.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-05
AI Technical Summary
The existing curing system suffers from continuous steam injection, which causes the temperature inside the curing chamber to rise continuously, resulting in damage to the blocks and affecting normal use.
A curing device was designed, comprising a curing chamber, a support structure, a steam delivery mechanism, a three-way valve, a cooling water tank, a booster pump, a water supply pipe, a discharge component, and a heat dissipation component. By controlling the alternating use of steam and cooling water and the coordination of the heat dissipation component, the temperature can be effectively regulated.
This effectively prevents damage to the blocks caused by excessively high temperatures inside the curing chamber, ensuring the normal progress of the curing process.
Smart Images

Figure CN223532693U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of curing kiln technology, and in particular to a curing device. Background Technology
[0002] Blocks are man-made blocks made from concrete, industrial waste (slag, fly ash, etc.) or local materials. They are larger in size than bricks and have the advantages of fast construction speed, which meet the requirements of wall reform in the development of building industrialization. The steam of existing brick curing devices cannot fully cover the bricks.
[0003] The prior art (CN217072809U) discloses a curing device, including a sealed door, a curing chamber, and a placement rack. The curing chamber has sealed doors at both ends. The placement rack is located at the bottom of the inner wall of the curing chamber. A motor is fixedly installed on the top of the curing chamber. The drive end of the motor is fixedly connected to a rotating shaft. The bottom end of the rotating shaft penetrates the inner wall of the curing chamber. The motor drives the engagement between the first gear and the second gear, which facilitates the rotation of the high-temperature steam rack, protects the steam nozzle with the collecting frame, and ensures that the steam fully contacts the surface of the block, thereby allowing the block to cure fully.
[0004] However, using the above method will cause the temperature inside the curing chamber to rise continuously due to the continuous addition of steam, which will damage the blocks inside the curing chamber and affect subsequent normal use. Utility Model Content
[0005] The purpose of this invention is to provide a curing device that addresses the problem that existing curing devices suffer from continuous temperature rises due to the continuous addition of steam, which damages the blocks inside the curing chamber and affects subsequent normal use.
[0006] To achieve the above objectives, this utility model provides a resting device, including a resting box and resting components.
[0007] The static curing assembly includes a door, two shelving structures, a steam delivery mechanism, a three-way valve, a cooling water tank, a booster pump, a water supply pipe, a discharge component, a steam discharge rack, and multiple heat dissipation components.
[0008] The chamber door is rotatably connected to the curing chamber and located on one side of the curing chamber; the two shelving structures are respectively located inside the curing chamber; each shelving structure includes a driving component and a shelving frame, the driving component being disposed inside the curing chamber; the shelving frame is fixedly connected to the driving component and located on one side of the driving component; the three-way valve is connected to the steam conveying mechanism and located on one side of the steam conveying mechanism; the cooling water tank is fixedly connected to the curing chamber and located on one side of the curing chamber; the booster pump is connected to the cooling water tank and located on one side of the cooling water tank; the water supply pipe is connected to the booster pump and the three-way valve respectively, and is located between the booster pump and the three-way valve; the discharge component is disposed on one side of the three-way valve; the two steam discharge racks are respectively connected to the discharge component and are respectively located on one side of the discharge component; multiple heat dissipation components are respectively disposed on one side of the curing chamber.
[0009] The driving component includes an electromechanical box, a geared motor, and a drive rod. The electromechanical box is fixedly connected to the curing box and located outside the curing box. The geared motor is fixedly connected to the electromechanical box and located inside the electromechanical box. The drive rod is fixedly connected to the output end of the geared motor and to the shelf, and is located on one side of the geared motor.
[0010] The steam delivery mechanism includes a steam generator and an air supply pipe. The steam generator is fixedly connected to the curing chamber and located on one side of the curing chamber. The air supply pipe is connected to the steam generator and the three-way valve, and is located on one side of the steam generator.
[0011] The discharge component includes a delivery pipe and a diversion pipe. The delivery pipe is connected to the three-way valve and is located on one side of the three-way valve. The diversion pipe is connected to the delivery pipe and to the steam discharge rack, and is located on one side of the delivery pipe.
[0012] The heat dissipation component includes a heat dissipation frame and a heat dissipation fan. The heat dissipation frame is fixedly connected to the curing chamber and is located on one side of the curing chamber. The heat dissipation fan is fixedly connected to the heat dissipation frame and is located inside the heat dissipation frame.
[0013] This utility model discloses a curing device. During the curing process of building blocks, the blocks are placed on a shelf, the chamber door is closed, and the steam delivery mechanism is opened. Hot steam is delivered to the steam discharge rack via a three-way valve and the discharge component. Multiple atomizing nozzles on the steam discharge rack spray the hot steam onto the blocks on the shelf for aeration and curing. A drive mechanism drives the shelf to ensure better contact between the blocks and the steam. When the temperature inside the curing chamber rises after a period of steam spraying and cooling is required, the steam delivery mechanism is closed to stop production. Hot steam is used to pump cooling water from the cooling water tank through the water pipe to the three-way valve. The three-way valve then delivers the cooling water through the discharge device to the steam discharge rack. The cooling water is then atomized and sprayed onto the blocks on the shelf through multiple atomizing nozzles on the steam discharge rack for cooling. At the same time, multiple heat dissipation components provide airflow cooling to the blocks on the shelf. This solves the problem in existing curing devices where the continuous addition of steam causes the temperature inside the curing chamber to rise continuously, leading to damage to the blocks and affecting subsequent normal use. Attached Figure Description
[0014] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0016] Figure 2 This is a structural schematic diagram of the entire utility model from another angle.
[0017] Figure 3 This is a front view of the entire utility model.
[0018] Figure 4 This is a cross-sectional view of the entire utility model.
[0019] 101-Incubation chamber, 102-Chamber door, 103-Shelving structure, 104-Steam conveying mechanism, 105-Three-way valve, 106-Cooling water tank, 107-Booster pump, 108-Water supply pipe, 109-Discharge component, 110-Steam discharge rack, 111-Heat dissipation component, 112-Drive component, 113-Shelving rack, 114-Electrical and mechanical box, 115-Gear motor, 116-Drive rod, 117-Steam generator, 118-Air supply pipe, 119-Transfer pipe, 120-Diverter pipe, 121-Heat dissipation frame, 122-Cooling fan. Detailed Implementation
[0020] The embodiments of the present invention are described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, but should not be construed as limiting the present invention.
[0021] Please see Figures 1-4 ,in, Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a structural schematic diagram of the entire utility model from another angle. Figure 3 This is a front view of the entire utility model. Figure 4 This is a cross-sectional view of the entire utility model.
[0022] This utility model discloses a curing device, comprising a curing chamber 101 and a curing assembly. The curing assembly includes a chamber door 102, two support structures 103, a steam conveying mechanism 104, a three-way valve 105, a cooling water tank 106, a booster pump 107, a water supply pipe 108, a discharge component 109, two steam discharge racks 110, and multiple heat dissipation components 111. The support structure 103 includes a drive component 112 and a support rack 113. The drive component 112 includes an electromechanical box 114 and a reduction gear. The steam conveying mechanism 104 includes a steam generator 117 and a steam supply pipe 118, the discharge component 109 includes a conveying pipe 119 and a diversion pipe 120, and the heat dissipation component 111 includes a heat dissipation frame 121 and a heat dissipation fan 122. The aforementioned solution solves the problem that in existing curing devices, the continuous addition of steam causes the temperature inside the curing chamber 101 to rise continuously, resulting in damage to the blocks inside the curing chamber 101 and affecting subsequent normal use.
[0023] In this specific embodiment, the curing chamber 101 is used in conjunction with the curing components to produce aerated blocks.
[0024] The chamber door 102 is rotatably connected to the curing chamber 101 and located on one side of the curing chamber 101; the two shelving structures 103 are respectively located inside the curing chamber 101; the driving component 112 is disposed inside the curing chamber 101; the shelving frame 113 is fixedly connected to the driving component 112 and located on one side of the driving component 112; the three-way valve 105 is connected to the steam conveying mechanism 104 and located on one side of the steam conveying mechanism 104; the cooling water tank 106 is fixedly connected to the curing chamber 101 and located on one side of the curing chamber 101; the booster pump 107 is connected to the cooling water tank 106. A water tank 106 is connected and located on one side of the cooling water tank 106; a water supply pipe 108 is connected to the booster pump 107 and the three-way valve 105 respectively, and is located between the booster pump 107 and the three-way valve 105; a discharge component 109 is located on one side of the three-way valve 105; two steam discharge racks 110 are connected to the discharge component 109 respectively, and are located on one side of the discharge component 109 respectively; multiple heat dissipation components 111 are respectively located on one side of the curing box 101. When performing curing treatment on the blocks, the blocks are placed on the shelf 113, then the box door 102 is closed, and the steam supply pipe is opened. The delivery mechanism 104 delivers hot steam to the steam discharge rack 110 via the three-way valve 105 and the discharge component 109. The hot steam is then sprayed onto the blocks on the shelf 113 through multiple atomizing nozzles on the steam discharge rack 110 for aeration and curing. The drive component 112 drives the shelf 113 to ensure better contact between the blocks and the steam. When the temperature inside the curing chamber 101 rises after a period of hot steam spraying and cooling is required, the steam delivery mechanism 104 is shut off to stop generating hot steam, and the booster pump 107 is turned on to pump cooling water from the cooling water tank 106. The water is supplied through the water pipe 108 to the three-way valve 105, and the cooling water is then supplied through the discharge device 109 to the steam discharge rack 110. The cooling water is then atomized and sprayed onto the blocks on the shelf 113 through multiple atomizing nozzles on the steam discharge rack 110 for cooling. At the same time, multiple heat dissipation devices 111 provide airflow cooling to the blocks on the shelf 113, thereby solving the problem that in existing curing devices, the temperature inside the curing chamber 101 continuously rises due to the continuous addition of steam, which can damage the blocks inside the curing chamber 101 and affect subsequent normal use.
[0025] Secondly, the electromechanical box 114 is fixedly connected to the curing chamber 101 and located outside the curing chamber 101; the geared motor 115 is fixedly connected to the electromechanical box 114 and located inside the electromechanical box 114; the drive rod 116 is fixedly connected to the output end of the geared motor 115 and to the shelf 113, and is located on one side of the geared motor 115. The electromechanical box 114 is used to support the assembly of the geared motor 115 and control the operation of the geared motor 115 to make the drive rod 116 rotate. The drive rod 116 drives the shelf 113 to rotate continuously, so that the blocks on the shelf 113 can better contact the steam.
[0026] Furthermore, the steam generator 117 is fixedly connected to the curing chamber 101 and is located on one side of the curing chamber 101; the air supply pipe 118 is connected to the steam generator 117 and the three-way valve 105, and is located on one side of the steam generator 117. The steam generator 117 is used to generate hot steam and deliver it to the three-way valve 105 through the air supply pipe 118.
[0027] In addition, the delivery pipe 119 is connected to the three-way valve 105 and is located on one side of the three-way valve 105; the diversion pipe 120 is connected to the delivery pipe 119 and the steam discharge rack 110 and is located on one side of the delivery pipe 119. The delivery pipe 119 is used to receive the mist or liquid transmitted from the three-way valve 105 and then divert it to the two steam discharge racks 110 through the diversion pipe 120.
[0028] Furthermore, the heat dissipation frame 121 is fixedly connected to the curing chamber 101 and located on one side of the curing chamber 101; the cooling fan 122 is fixedly connected to the heat dissipation frame 121 and located inside the heat dissipation frame 121. The heat dissipation frame 121 is used to support the assembly of the cooling fan 122, and the cooling fan 122 is used to draw external airflow into the curing chamber 101 to assist in cooling the blocks on the shelf 113.
[0029] When using this invention, the blocks are placed on the shelf 113, and the box door 102 is closed. The steam generator 117 is turned on to generate hot steam, which is then delivered to the three-way valve 105 via the air supply pipe 118. The hot steam is then directed through the three-way valve 105 via the delivery pipe 119 and diverted to the two steam discharge racks 110 via the diversion pipe 120 on the delivery pipe 119. The hot steam is sprayed onto the blocks on the shelf 113 through multiple atomizing nozzles on the steam discharge racks 110 for aeration and curing. The reduction motor 115 is controlled to operate, causing the drive rod 116 to rotate. The drive rod 116 drives the shelf 113 to rotate continuously, allowing the blocks on the shelf 113 to have better contact with the steam. After the hot steam has been sprayed for a period of time, the temperature inside the curing box 101 reaches a certain level. When the temperature rises and cooling is required, the steam delivery mechanism 104 is shut off to stop generating hot steam. The booster pump 107 is turned on to deliver cooling water from the cooling water tank 106 to the three-way valve 105 through the water supply pipe 108. The three-way valve 105 then delivers the cooling water through the delivery pipe 119 and the branch pipe 120 to the steam discharge rack 110. The cooling water is then atomized and sprayed onto the blocks on the shelf 113 through multiple atomizing nozzles on the steam discharge rack 110 for cooling. At the same time, the cooling fans 122 in the multiple heat dissipation frames 121 provide auxiliary cooling for the blocks on the shelf 113. This solves the problem that in existing curing devices, the continuous addition of steam causes the temperature inside the curing chamber 101 to rise continuously, leading to damage to the blocks inside the curing chamber 101 and affecting subsequent normal use.
[0030] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that all or part of the processes for implementing the above embodiments and equivalent changes made in accordance with the claims of this application still fall within the scope of this application.
Claims
1. A resting device, comprising a resting chamber, characterized in that, It also includes a restorative component. The static curing assembly includes a door, two shelving structures, a steam delivery mechanism, a three-way valve, a cooling water tank, a booster pump, a water supply pipe, a discharge component, two steam discharge racks, and multiple heat dissipation components. The chamber door is rotatably connected to the curing chamber and located on one side of the curing chamber; the two shelving structures are respectively located inside the curing chamber; each shelving structure includes a driving component and a shelving frame, the driving component being disposed inside the curing chamber; the shelving frame is fixedly connected to the driving component and located on one side of the driving component; the three-way valve is connected to the steam conveying mechanism and located on one side of the steam conveying mechanism; the cooling water tank is fixedly connected to the curing chamber and located on one side of the curing chamber; the booster pump is connected to the cooling water tank and located on one side of the cooling water tank; the water supply pipe is connected to the booster pump and the three-way valve respectively, and is located between the booster pump and the three-way valve; the discharge component is disposed on one side of the three-way valve; the two steam discharge racks are respectively connected to the discharge component and are respectively located on one side of the discharge component; multiple heat dissipation components are respectively disposed on one side of the curing chamber.
2. The restorative device as described in claim 1, characterized in that, The driving component includes an electromechanical box, a geared motor, and a drive rod. The electromechanical box is fixedly connected to the curing box and located outside the curing box. The geared motor is fixedly connected to the electromechanical box and located inside the electromechanical box. The drive rod is fixedly connected to the output end of the geared motor and to the shelf, and is located on one side of the geared motor.
3. The restorative device as described in claim 2, characterized in that, The steam delivery mechanism includes a steam generator and an air supply pipe. The steam generator is fixedly connected to the curing chamber and is located on one side of the curing chamber. The air supply pipe is connected to the steam generator and the three-way valve, and is located on one side of the steam generator.
4. The restorative device as described in claim 3, characterized in that, The discharge component includes a delivery pipe and a diversion pipe. The delivery pipe is connected to the three-way valve and is located on one side of the three-way valve. The diversion pipe is connected to the delivery pipe and to the steam discharge rack, and is located on one side of the delivery pipe.
5. A resting device as described in claim 4, characterized in that, The heat dissipation component includes a heat dissipation frame and a heat dissipation fan. The heat dissipation frame is fixedly connected to the curing chamber and is located on one side of the curing chamber. The heat dissipation fan is fixedly connected to the heat dissipation frame and is located inside the heat dissipation frame.
Citation Information
Patent Citations
Solidification device for steam pressurized concrete block production
CN217072809U