Low-energy-consumption autoclaved curing device for aerated bricks and plates

By designing a low-energy consumption autoclave maintenance device for aerated bricks and sheets, including an autoclave forming box, an autoclave press, a steam pipe, a steam box, a mold, a waste heat exhaust pipe and an energy-saving adjustment mechanism, the shortcomings of the existing devices in taking out concrete blocks and recycling water sources are solved, and efficient energy utilization and operation convenience are achieved.

CN222972445UActive Publication Date: 2025-06-13SICHUAN BINSHUI SHANGJIN GREEN BUILDING MATERIALS CO LTD
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Patent Information

Application Number
CN202421932599.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2025-06-13
Estimated Expiration
2034-08-09

AI Technical Summary

Technical Problem

The existing low-energy consumption autoclave maintenance devices for aerated bricks and sheets have poor effects in removing concrete blocks and recycling the water source after flash evaporation, resulting in waste of energy and inefficiency.

Method used

A low-energy consumption autoclave maintenance device including an autoclave molding box, an autoclave press, a steam pipe, a steam box, a mold, a waste heat exhaust pipe and an energy-saving adjustment mechanism is designed. The low-pressure condensate after flashing is recycled and utilized through the energy-saving adjustment mechanism, and the efficient utilization of heat energy is achieved through the waste heat exhaust pipe.

Benefits of technology

This device can greatly reduce the steam consumption per unit product, realize the recycling of water and steam, ensure that there is no accumulated water in the kettle during the autoclave, improve the efficiency of heat energy utilization, and simplify the process of taking out concrete blocks, and improve the convenience and efficiency of operation.

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Abstract

The utility model relates to a low-energy-consumption autoclaved curing device for aerated bricks and plates, which belongs to the technical field of aerated bricks and plates and comprises an autoclaved forming box, an autoclave, a steam delivery pipe, a steam box, a mold and a waste heat exhaust pipe. One end of the waste heat exhaust pipe penetrates through the autoclaving forming box and extends into the steam box to be fixedly connected with the steam box, and the other end of the waste heat exhaust pipe can be connected with a precuring room standing chamber and supplies heat. According to the low-energy-consumption autoclaved curing device for the aerated bricks and the plates, low-pressure condensed water obtained after flash evaporation can be recycled for the second time, cyclic utilization is achieved after purification treatment, it is guaranteed that no accumulated water exists in the kettle at any time period in the autoclaving process, meanwhile, produced concrete blocks can be conveniently taken out, and the production efficiency is improved. And therefore, the produced concrete blocks can be conveniently taken out, and the water source after flash evaporation can be recycled.
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Description

Technical Field

[0001] The utility model relates to the technical field of aerated bricks and plates, in particular to a low-energy consumption autoclaved curing device. Background Technique

[0002] In the production of autoclaved aerated concrete, high-pressure steam curing of concrete is required. Currently, autoclaves are used for high-pressure steam curing work. At present, aerated concrete is transported into the autoclave, and high-pressure steam is introduced into the autoclave, and high-pressure steam curing of aerated concrete is carried out through the high-pressure steam.

[0003] Existing low-energy consumption autoclaved curing devices for aerated bricks and plates generally aim at the problem that after the current autoclave finishes its work, it is necessary to open the large door to transport the aerated concrete out. During the process of opening the door to transport it out and then transporting it in again, almost all of the high-pressure steam in the autoclave is dissipated. After the next batch of goods comes in, steam needs to be recharged, and the process of recharging steam wastes a lot of time, affects the work efficiency, and causes energy waste. For example, a steam curing device for autoclaved aerated concrete disclosed in the authorized Chinese patent CN219837965U can improve the steam filling efficiency and reduce heat waste through the cooperation of structures such as the main body, feed door, rear cover, frame, connecting cover, counterweight, fixed rod, transmission, door-opening motor, mounting frame, pressure relief valve, pressure relief pipe, air valve, inlet pipe, air storage chamber, sealing plate, slideway, exhaust hole, drain hole, track, drain trough, planetary reduction structure, rotating plate, air storage motor and fixing plate.

[0004] However, the steam curing device for autoclaved aerated concrete in the above-cited document (equivalent to the "low-energy consumption autoclaved curing device for aerated bricks and plates" in the present application) is relatively troublesome to take out the manufactured concrete blocks during use. When the concrete blocks are attached to the mold groove, they cannot be directly taken out. At the same time, the low-pressure condensate water after flash evaporation cannot be purified after heat exchange and cooling, and recycling cannot be achieved. Therefore, a low-energy consumption autoclaved curing device for aerated bricks and plates is proposed to solve the above problems. Content of the Utility Model

[0005] Aiming at the deficiencies of the prior art, the utility model provides a low-energy consumption autoclaved curing device for aerated bricks and plates, which has the advantages of being able to conveniently take out the produced concrete blocks and recycling the water source after flash evaporation, and solves the problem of poor use effect of the existing low-energy consumption autoclaved curing device.

[0006] In summary, the present utility model provides the following technical solution: A low-energy autoclave curing device for aerated bricks and plates, comprising an autoclave forming box, an autoclave, a steam delivery pipe, a steam box, a mold, and a waste heat exhaust pipe. One end of the steam delivery pipe is fixedly connected to one side of the autoclave, and the other end passes through the autoclave forming box and is fixedly connected inside the steam box. One end of the waste heat exhaust pipe passes through the autoclave forming box and extends into the steam box to be fixedly connected to the steam box, and the other end can be connected to a pre-curing room static rest room for heating. A mold evenly distributed is fixedly installed on one side of the steam box close to the ground, and an energy-saving adjustment mechanism is installed inside the autoclave forming box;

[0007] The energy-saving adjustment mechanism includes a driving component installed inside the autoclave forming box and a diversion partition fixedly connected inside the autoclave forming box and located above the driving component. The diversion partition is inclined to guide water. Rotating components are connected to both sides of the driving component, and a rotating push component connected inside the rotating component and passing through the diversion partition. A lifting and moving component is connected between the sides of the two rotating push components away from the diversion partition. A pressing plate is installed on the side of the lifting and moving component away from the ground. The driving component drives the rotating component to rotate, so as to drive the rotating push component to rotate and push the lifting and moving component to move. The pressing plate moves accordingly. Drainage holes for steam to pass through and evenly distributed are provided on one side of the pressing plate;

[0008] The energy-saving adjustment mechanism further includes a recycling component installed on one side of the autoclave forming box and a water supply component passing through and connected inside the recycling component. The other side of the water supply component passes through the autoclave forming box and is connected into the steam box.

[0009] Furthermore, the driving component includes a double-shaft servo motor, a rotating rod, and a bearing support. One side of the double-shaft servo motor is fixedly installed on the inner side wall of the autoclave forming box. One end of the rotating rod is fixedly connected to the output shaft of the double-shaft servo motor, and the other end passes through the bearing support and is connected to the rotating component. The outer side of the rotating rod is rotationally connected to the inner side of the bearing support through a bearing, and one side of the bearing support is fixedly installed on the inner side wall of the autoclave forming box through bolts.

[0010] By adopting the above technical solution, the rotating component can be driven to rotate more stably under the combined action of the double-shaft servo motor, the rotating rod, and the bearing support.

[0011] Furthermore, the rotating component includes a worm and a worm gear. One end of the worm is fixedly connected to the end of the rotating rod away from the output shaft of the double-shaft servo motor, and the other end is rotationally connected to the inner side wall of the autoclave forming box through a bearing;

[0012] The worm is connected to the dual-axis servo motor through the rotating rod, and the dual-axis servo motor drives the rotating rod to rotate, so as to drive the worm gear meshed on the worm to rotate.

[0013] By adopting the above technical solution, the rotation driving assembly can be driven to rotate under the cooperation of the worm and the worm gear.

[0014] Further, the rotation driving assembly includes a threaded sleeve, a threaded rod and a rotary seal ring; one end of the threaded sleeve penetrates through the flow guide partition plate and extends to the inner side wall of the autoclave molding box and is rotatably connected to the autoclave molding box through a bearing. The inner side of the threaded sleeve is threadedly connected to the outer side of the threaded rod. The rotary seal ring is fixedly installed between the inner side of the threaded sleeve and the outer side of the threaded rod. One ends of the two threaded rods are connected to one side of the lifting and moving assembly.

[0015] By adopting the above technical solution, the lifting and moving assembly can be pushed to move up and down under the cooperation of the threaded sleeve, the threaded rod and the rotary seal ring.

[0016] Further, the lifting and moving assembly includes a push plate and adjusting blocks; the opposite sides of the two adjusting blocks are respectively fixedly connected to both sides of the push plate. One side of the push plate is fixedly connected between the ends of the two threaded rods far from the ground, and the other side is fixedly installed with the pressing plate through bolts. The push plate moves along with the threaded rod.

[0017] By adopting the above technical solution, the pressing plate can be driven to move under the cooperation of the push plate and the adjusting blocks.

[0018] Further, an adjusting groove for the adjusting block to fit and slide is formed on the inner side wall of the autoclave molding box.

[0019] By adopting the above technical solution, it is to limit the movement of the push plate while improving the movement stability of the push plate.

[0020] Further, the recycling assembly includes a recycling box, a filter plate and a water receiving pipe; one end of the water receiving pipe penetrates through and extends into the autoclave molding box and is located above the flow guide partition plate, and the other end penetrates through and extends into the recycling box. The outer side of the filter plate is fixedly installed in the recycling box through bolts.

[0021] By adopting the above technical solution, the low-pressure condensed water after flash evaporation can be recycled secondarily under the cooperation of the recycling box, the filter plate and the water receiving pipe under the guiding action of the flow guide partition plate.

[0022] Furthermore, the water supply assembly includes a water pump, a water suction pipe, and a water delivery pipe; one side of the water pump is fixedly installed on one side of the recovery tank, one end of the water suction pipe is fixedly connected to the water pump, and the other end sequentially penetrates through the recovery tank and the filter plate and extends above the inner wall of the recovery tank. One end of the water delivery pipe is fixedly connected to one side of the water pump, and the other end sequentially penetrates through the autoclave forming tank and the steam tank and extends into the steam tank.

[0023] By adopting the above technical solution, under the combined action of the water pump, the water suction pipe, and the water delivery pipe, the water for secondary recycling can be discharged into the steam tank through the recovery tank via the water suction pipe and the water delivery pipe.

[0024] Compared with the prior art, the present utility model provides a low-energy-consumption autoclave curing device for aerated bricks and plates, which has the following beneficial effects:

[0025] The low-energy-consumption autoclave curing device for aerated bricks and plates can recycle the low-pressure condensate water after flash evaporation through the mutual cooperation of the autoclave on the autoclave forming tank, the steam delivery pipe, the steam tank, the mold, the waste heat exhaust pipe, and the energy-saving adjustment mechanism. After purification treatment, it is collected and recycled, which can not only greatly reduce the steam consumption per unit product, but also ensure that there is no direct external discharge of water and steam, and ensure that there is no accumulated water in the autoclave at any time during the autoclave process, making the heat energy utilization in the autoclave process more efficient. At the same time, the produced concrete blocks can be conveniently taken out, which is convenient to use, time-saving and labor-saving, thus facilitating the convenient taking out of the produced concrete blocks and the recycling of the water source after flash evaporation. Description of the Drawings

[0026] Figure 1 is a schematic structural diagram of the present utility model;

[0027] Figure 2 is Figure 1 a partial enlarged schematic view of part A in

[0028] Figure 3 is Figure 1 a partial enlarged schematic view of part B in

[0029] Figure 4 is Figure 1 a three-dimensional schematic view of the threaded sleeve connection structure in

[0030] Description of the Reference Numerals:

[0031] 1. Autoclaved forming box; 2. Autoclave press; 3. Steam delivery pipe; 4. Steam box; 5. Mold; 6. Waste heat exhaust pipe; 700. Energy-saving adjustment mechanism; 7011. Biaxial servo motor; 7012. Rotating rod; 7013. Bearing support; 702. Flow guiding partition; 7031. Worm; 7032. Worm gear; 7041. Threaded sleeve; 7042. Threaded rod; 7043. Rotary sealing ring; 7051. Push plate; 7052. Adjusting block; 706. Adjusting groove; 707. Pressing plate; 7081. Recycling box; 7082. Filter plate; 7083. Water connection pipe; 7091. Water pump; 7092. Water suction pipe; 7093. Water delivery pipe. Detailed implementation manners

[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0033] Please refer to Figures 1-4 , the present invention provides a technical solution: a low-energy autoclave curing device for aerated bricks and plates, including an autoclaved forming box 1, an autoclave press 2, a steam delivery pipe 3, a steam box 4, a mold 5 and a waste heat exhaust pipe 6. One end of the steam delivery pipe 3 is fixedly connected to one side of the autoclave press 2, and the other end passes through the autoclaved forming box 1 and is fixedly connected inside the steam box 4. One end of the waste heat exhaust pipe 6 passes through the autoclaved forming box 1 and extends into the steam box 4 to be fixedly connected to the steam box 4, and the other end can be connected to the pre-curing static rest room and supply heat. A mold 5 evenly distributed is fixedly installed on one side of the steam box 4 close to the ground; an energy-saving adjustment mechanism 700 is installed inside the autoclaved forming box 1;

[0034] Through the mutual cooperation of the autoclave press 2, the steam delivery pipe 3, the steam box 4, the mold 5, the waste heat exhaust pipe 6 and the energy-saving adjustment mechanism 700 on the autoclaved forming box 1, the low-pressure condensate water after flash evaporation can be recycled for the second time. After purification treatment, it is collected and recycled, which can not only greatly reduce the steam consumption per unit product, but also ensure that there is no direct external discharge of water and steam, and ensure that there is no accumulated water in the autoclave at any time during the autoclaving process. The heat energy utilization during the autoclaving process is more efficient. At the same time, the produced concrete blocks can be conveniently taken out, which is convenient to use, time-saving and labor-saving, so as to facilitate the taking out of the produced concrete blocks and the recycling of the water source after flash evaporation.

[0035] In this embodiment, the energy-saving adjustment mechanism 700 is a structure for recycling the low-pressure condensate water after flash evaporation for the second time and conveniently taking out the produced concrete blocks.

[0036] As Figure 1 , Figure 2 , Figure 3 and Figure 4 shown, the energy-saving adjustment mechanism 700 includes a driving component installed in the autoclave forming box 1 and a diversion partition plate 702 fixedly connected in the autoclave forming box 1 and located above the driving component. The diversion partition plate 702 is inclined to divert the water source. Rotating components are connected to both sides of the driving component, and a rotating push component connected in the rotating component and passing through the diversion partition plate 702. A lifting and moving component is connected between the sides of the two rotating push components away from the diversion partition plate 702. A pressing plate 707 is installed on the side of the lifting and moving component away from the ground. The driving component drives the rotating component to rotate, so as to drive the rotating push component to rotate and push the lifting and moving component to move, and the pressing plate 707 moves accordingly. Drainage holes for steam to pass through and evenly distributed are formed on one side of the pressing plate 707;

[0037] The energy-saving adjustment mechanism 700 further includes a recovery component installed on one side of the autoclave forming box 1 and a water supply component passing through and connected in the recovery component. The other side of the water supply component passes through the autoclave forming box 1 and is connected to the steam box 4.

[0038] It should be noted that the driving component includes a double-shaft servo motor 7011, a rotating rod 7012 and a bearing support 7013. One side of the double-shaft servo motor 7011 is fixedly installed on the inner side wall of the autoclave forming box 1. One end of the rotating rod 7012 is fixedly connected to the output shaft of the double-shaft servo motor 7011, and the other end passes through the bearing support 7013 and is connected to the rotating component. The outer side of the rotating rod 7012 is rotationally connected to the inner side of the bearing support 7013 through a bearing, and one side of the bearing support 7013 is fixedly installed on the inner side wall of the autoclave forming box 1 by bolts, so as to drive the rotating component to rotate more stably.

[0039] It can be understood that the rotating component includes a worm 7031 and a worm gear 7032. One end of the worm 7031 is fixedly connected to the end of the rotating rod 7012 away from the output shaft of the double-shaft servo motor 7011, and the other end is rotationally connected to the inner side wall of the autoclave forming box 1 through a bearing;

[0040] The worm 7031 is connected to the double-shaft servo motor 7011 through the rotating rod 7012. The double-shaft servo motor 7011 drives the rotating rod 7012 to rotate, so as to drive the worm gear 7032 meshed with the worm 7031 to rotate, so as to drive the rotating push component to rotate.

[0041] In addition, the rotation driving assembly includes a threaded sleeve 7041, a threaded rod 7042, and a rotary sealing ring 7043. One end of the threaded sleeve 7041 penetrates through the flow guiding partition 702 and extends to the inner side wall of the autoclave forming box 1, where it is rotationally connected to the autoclave forming box 1 through a bearing. The inner side of the threaded sleeve 7041 is in threaded connection with the outer side of the threaded rod 7042. The rotary sealing ring 7043 is fixedly installed between the inner side of the threaded sleeve 7041 and the outer side of the threaded rod 7042. One ends of the two threaded rods 7042 are connected to one side of the lifting and moving assembly to push the lifting and moving assembly to perform lifting and moving.

[0042] In this embodiment, the lifting and moving assembly includes a push plate 7051 and adjusting blocks 7052. The opposite sides of the two adjusting blocks 7052 are respectively fixedly connected to both sides of the push plate 7051. One side of the push plate 7051 is fixedly connected between the ends of the two threaded rods 7042 away from the ground, and the other side is fixedly installed with the pressing plate 707 through bolts. The push plate 7051 moves along with the threaded rod 7042.

[0043] It should also be noted that adjusting grooves 706 for the adjusting blocks 7052 to fit and slide are provided on the inner side wall of the autoclave forming box 1 to limit the movement of the push plate 7051 while improving the movement stability of the push plate 7051.

[0044] It should be further noted that the recycling assembly includes a recycling box 7081, a filter plate 7082, and a water connection pipe 7083. One end of the water connection pipe 7083 penetrates and extends into the autoclave forming box 1 and is located above the flow guiding partition 702, and the other end penetrates and extends into the recycling box 7081. The outer side of the filter plate 7082 is fixedly installed in the recycling box 7081 to perform secondary recycling of the low-pressure condensed water after flash evaporation under the guiding action of the flow guiding partition 702.

[0045] In addition, it should be noted that the water supply assembly includes a water pump 7091, a water suction pipe 7092, and a water delivery pipe 7093. One side of the water pump 7091 is fixedly installed on one side of the recycling box 7081. One end of the water suction pipe 7092 is fixedly connected to the water pump 7091, and the other end sequentially penetrates through the recycling box 7081 and the filter plate 7082 and extends above the inner wall of the recycling box 7081. One end of the water delivery pipe 7093 is fixedly connected to one side of the water pump 7091, and the other end sequentially penetrates through the autoclave forming box 1 and the steam box 4 and extends into the steam box 4 to facilitate discharging the water recycled for the second time through the recycling box 7081 into the steam box 4 via the water suction pipe 7092 and the water delivery pipe 7093.

[0046] The working principle of the above embodiment is as follows:

[0047] In use, first add concrete into the mold 5, start the steam press 2 to pressurize the steam box 4 through the steam pipe 3. When the pressure reaches a certain level, stop pressurizing. Then start the water pump 7091 to transport the water source in the recovery tank 7081 to the steam box 4 through the water suction pipe 7092 and the water delivery pipe 7093, so that the feed water temperature can be raised from normal temperature to the boiling point state. This not only saves fuel consumption, but also the high temperature of the feed water can increase the steam production speed. The steam generated in this way is used to autoclave the concrete in the mold 5. The low-pressure condensate water after flash evaporation falls onto the diversion partition plate 702 through the drain holes on the pressing plate 707. Since the diversion partition plate 702 is inclined, under the influence of gravity, it is diverted into the water connection pipe 7083 and flows into the recovery tank 7081. After being filtered by the filter plate 7082, it can be reused. This not only greatly reduces the steam consumption per unit product, but also ensures that there is no direct external discharge of water and steam, and there is no accumulated water in the autoclave at any time during the autoclaving process, making the heat energy utilization in the autoclaving process more efficient. When the concrete block needs to be demolded after being manufactured, start the double-axis servo motor 7011. Under the rotational support of the bearing, drive the rotating rod 7012 to rotate, so as to drive the worm gear 7032 engaged with the worm 7031 to rotate. Under the rotational connection of the bearing, drive the threaded sleeve 7041 to rotate. The threaded rod 7042 moves inside the threaded sleeve 7041 under the thrust of the internal thread rotation, and under the sliding connection and cooperation of the adjusting block 7052 and the adjusting groove 706, push the push plate 7051 to move, and the pressing plate 707 moves accordingly, so that the prepared concrete block can be extracted, saving time.

[0048] Compared with the prior art: This low-energy autoclave curing device for aerated bricks and plates, through the mutual cooperation of the steam press 2, the steam pipe 3, the steam box 4, the mold 5, the waste heat exhaust pipe 6 and the energy-saving adjustment mechanism 700 on the autoclave forming box 1, can recycle the low-pressure condensate water after flash evaporation. After purification treatment, it is collected for recycling. This not only greatly reduces the steam consumption per unit product, but also ensures that there is no direct external discharge of water and steam, and there is no accumulated water in the autoclave at any time during the autoclaving process, making the heat energy utilization in the autoclaving process more efficient. At the same time, it can also conveniently take out the produced concrete blocks, which is convenient to use, time-saving and labor-saving. Therefore, it is beneficial to conveniently take out the produced concrete blocks and recycle the water source after flash evaporation, solving the problem of poor use effect of the existing low-energy autoclave curing device.

[0049] The electrical components mentioned in the text are all electrically connected to the main controller and the power supply. The main controller can be a conventional known device such as a computer for control, and the existing publicly disclosed electrical connection technology and power supply provision also belong to the common knowledge in this field. Therefore, this application will not elaborate in detail.

Claims

1. A low-energy consumption autoclave curing device for aerated bricks and plates, comprising an autoclave (1), an autoclave (2), a steam pipe (3), a steam box (4), a mold (5) and a waste heat exhaust pipe (6), wherein one end of the steam pipe (3) is fixedly connected to one side of the autoclave (2), and the other end passes through the autoclave (1) and is fixedly connected to the steam box (4); one end of the waste heat exhaust pipe (6) passes through the autoclave (1) and extends into the steam box (4) and is fixedly connected to the steam box (4), and the other end can be connected to a pre-curing room and provide heating; molds (5) are fixedly installed on one side of the steam box (4) close to the ground, and the device is characterized in that: An energy-saving adjustment mechanism (700) is installed in the autoclave molding box (1); The energy-saving adjustment mechanism (700) comprises a driving component installed in the steam-pressing box (1) and a guide baffle (702) fixedly connected to the steam-pressing box (1) and located above the driving component, and the guide baffle (702) is inclined to guide the water source, and the two sides of the driving component are connected to a rotating component and a rotating pushing component connected to the rotating component and passing through the guide baffle (702), and a lifting and moving component is connected between the two groups of the rotating pushing components on the side away from the guide baffle (702), and a pressing plate (707) is installed on the side of the lifting and moving component away from the ground; the driving component drives the rotating component to rotate, so as to drive the rotating pushing component to rotate and push the lifting and moving component to move, and the pressing plate (707) moves accordingly, and one side of the pressing plate (707) is provided with drainage holes for steam to pass through and are evenly distributed; The energy-saving adjustment mechanism (700) further comprises a recovery component installed on one side of the autoclave box (1) and a water supply component penetrating and connected to the recovery component, the other side of the water supply component penetrating the autoclave box (1) and connected to the steam box (4).

2. The low energy consumption autoclave curing device for aerated bricks and plates according to claim 1 is characterized in that: The driving assembly comprises a dual-axis servo motor (7011), a rotating rod (7012) and a bearing support (7013); one side of the dual-axis servo motor (7011) is fixedly mounted on the inner wall of the autoclave molding box (1); one end of the rotating rod (7012) is fixedly connected to the output shaft of the dual-axis servo motor (7011); the other end passes through the bearing support (7013) and is connected to the rotating assembly; the outer side of the rotating rod (7012) is rotatably connected to the inner side of the bearing support (7013) via a bearing; and one side of the bearing support (7013) is fixedly mounted on the inner wall of the autoclave molding box (1) via bolts.

3. The low energy consumption autoclave curing device for aerated bricks and plates according to claim 2 is characterized in that: The rotating assembly comprises a worm (7031) and a worm wheel (7032); one end of the worm (7031) is fixedly connected to one end of the rotating rod (7012) away from the output shaft of the dual-axis servo motor (7011), and the other end is rotatably connected to the inner wall of the autoclave molding box (1) via a bearing; The worm (7031) is connected to the dual-axis servo motor (7011) via the rotating rod (7012), and the dual-axis servo motor (7011) drives the rotating rod (7012) to rotate, thereby driving the worm wheel (7032) meshed with the worm (7031) to rotate.

4. The low energy consumption autoclave curing device for aerated bricks and plates according to claim 1 is characterized in that: The rotary pushing assembly comprises a threaded sleeve (7041), a threaded rod (7042) and a rotary sealing ring (7043); one end of the threaded sleeve (7041) passes through the guide baffle (702) and extends to the inner wall of the steam pressing box (1) and is rotatably connected to the steam pressing box (1) via a bearing; the inner side of the threaded sleeve (7041) and the outer side of the threaded rod (7042) are threadedly connected; the rotary sealing ring (7043) is fixedly installed between the inner side of the threaded sleeve (7041) and the outer side of the threaded rod (7042); one end of the two threaded rods (7042) are connected to one side of the lifting and moving assembly.

5. The low energy consumption autoclave curing device for aerated bricks and plates according to claim 4 is characterized in that: The lifting and moving assembly comprises a push plate (7051) and an adjusting block (7052); opposite sides of the two adjusting blocks (7052) are fixedly connected to the two sides of the push plate (7051), one side of the push plate (7051) is fixedly connected between the ends of the two threaded rods (7042) away from the ground, and the other side is fixedly installed with the pressing plate (707) by bolts, and the push plate (7051) moves following the threaded rods (7042).

6. The low energy consumption autoclave curing device for aerated bricks and plates according to claim 5 is characterized in that: An adjustment groove (706) for the adjustment block (7052) to slide in contact with is provided on the inner side wall of the steam-pressed molding box (1).

7. The low energy consumption autoclave curing device for aerated bricks and plates according to claim 1 is characterized in that: The recovery component comprises a recovery box (7081), a filter plate (7082) and a water receiving pipe (7083); one end of the water receiving pipe (7083) penetrates and extends into the autoclave box (1) and is located above the guide baffle (702), and the other end penetrates and extends into the recovery box (7081); the outer side of the filter plate (7082) is fixedly mounted in the recovery box (7081) by bolts.

8. The low energy consumption autoclave curing device for aerated bricks and plates according to claim 7 is characterized in that: The water supply assembly comprises a water pump (7091), a water suction pipe (7092) and a water delivery pipe (7093); one side of the water pump (7091) is fixedly mounted on one side of the recovery box (7081); one end of the water suction pipe (7092) is fixedly connected to the water pump (7091), and the other end of the water suction pipe (7092) sequentially passes through the recovery box (7081) and the filter plate (7082) and extends to the top of the inner wall of the recovery box (7081); one end of the water delivery pipe (7093) is fixedly connected to one side of the water pump (7091), and the other end of the water suction pipe (7092) sequentially passes through the autoclave box (1) and the steam box (4) and extends into the steam box (4).

Citation Information

Patent Citations

  • Steam curing equipment for autoclaved aerated concrete production

    CN219837965U