Autoclaved lightweight aerated concrete block
By designing an adjustable length and width skeleton structure, the problem of cumbersome skeleton preparation in the production process of autoclaved lightweight aerated concrete blocks was solved, achieving efficient and stable production of blocks of various specifications and reducing production costs.
Patent Information
- Application Number
- CN202423132809.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-18
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2034-12-18
AI Technical Summary
The current production process of autoclaved lightweight aerated concrete blocks requires the preparation and placement of steel reinforcement cages of different specifications and sizes, which makes the production process cumbersome and reduces the practicality of the blocks.
Design a skeleton structure including a main rod, a sliding rod, an upright rod, and a connecting block. The length and width of the skeleton can be adjusted by sliding to adapt to molds of different sizes. Concrete is fixed through holes No. 1, No. 2, No. 3, and No. 4 to ensure the stability of the skeleton structure and reduce the use of steel.
It enables flexible production of concrete blocks of different specifications, improves the stability and durability of the frame structure, and reduces production costs.
Smart Images

Figure CN223558704U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of concrete block production, particularly relates to a steam pressure light aerated concrete block. BACKGROUND
[0002] The steam pressure light aerated concrete block, referred to as aerated concrete block, is a kind of light, porous building wall material, and the volume density is low, but the strength is high, which can reduce the self weight of building, reduce the foundation bearing pressure, improve the safety performance of building, and is widely applied to various construction engineering.
[0003] In the production of aerated concrete block, generally, appropriate size mold is selected, and then appropriate size steel reinforcement framework is placed in the mold, and concrete is injected into the mold, and then the steam pressure means is used to treat it, so that small and numerous bubbles appear in the concrete, and after solidification, the aerated concrete block is formed, but in actual production, different specifications of concrete blocks need to be produced, so different specifications and sizes of steel reinforcement frameworks need to be prepared and placed, which makes the production process more complicated and reduces the practicality of the concrete block.
[0004] Therefore, the utility model provides a steam pressure light aerated concrete block to meet the needs. UTILITY MODEL CONTENTS
[0005] The utility model aims at providing a steam pressure light aerated concrete block to solve the problems in the background art.
[0006] To achieve the above object, the utility model provides the following technical scheme: a steam pressure light aerated concrete block, which comprises a concrete block, the inner side of the concrete block is fixedly connected with a main rod around, the both ends of the main rod are provided with a sliding cavity, the both ends of the main rod are slidably connected with a sliding rod through the sliding cavity, a plurality of first holes are formed on the outer side of the sliding cavity of the main rod, the side, away from the corresponding main rod, of the sliding rod is fixedly connected with a connecting block, a vertical rod is fixedly connected between the connecting blocks on the top and the bottom of the same end of the concrete block, the vertical rod comprises an edge rod slidably connected between the top end and the bottom end, a connecting rod is fixedly connected between the connecting blocks on the same end of the two sides of the concrete block, a plurality of second holes are formed on the inner side of the vertical rod, a first reinforcing bar is fixedly connected between the two main rods on the same end, a longitudinal rod is fixedly connected between the two first reinforcing bars, a second reinforcing bar is fixedly connected between the two vertical rods on the same side, and a transverse rod is fixedly connected between the two second reinforcing bars.
[0007] As a preferred embodiment, the number of the main rods and the vertical rods is four, the number of the connecting blocks is eight, the four main rods are respectively located at the two ends of the top and the bottom of the concrete block, and the four vertical rods are respectively located at the two ends of the two sides of the concrete block.
[0008] As a preferred implementation, the first hole is annularly distributed on the outer side of the main rod, and the second hole is annularly distributed on the outer side of the vertical rod.
[0009] As a preferred implementation, the number of the connecting rods is four, which are respectively arranged at the upper and lower ends of the two sides of the concrete block, and the main rod, the sliding rod, the vertical rod and the connecting rods are connected through the connecting blocks to form a rectangular structure.
[0010] As a preferred implementation, the connecting rod is designed as a hollow structure, and a plurality of fourth holes are arranged at the top end and the bottom end of the connecting rod.
[0011] As a preferred implementation, the longitudinal rod comprises an upper rod which is slidably connected at the top end and the bottom end, and the transverse rod comprises a side rod which is slidably connected at the two ends.
[0012] As a preferred implementation, a plurality of third holes are arranged on the outer side of the longitudinal rod and the transverse rod, the longitudinal rod and the transverse rod are fixedly connected at the middle part, and the longitudinal rod and the transverse rod are in a cross shape.
[0013] Compared with the prior art, the utility model has the advantages of:
[0014] The utility model discloses a skeleton structure for producing concrete block, which comprises a main rod, a sliding rod, a vertical rod and a side rod.
[0015] The utility model discloses a skeleton structure for producing concrete block, which comprises a main rod, a sliding rod, a vertical rod and a side rod. BRIEF DESCRIPTION OF DRAWINGS
[0016] Figure 1 It is a sectional structure schematic diagram of a steam pressure light aerated concrete block.
[0017] Figure 2 It is a sectional structure schematic diagram of a steam pressure light aerated concrete block.
[0018] Figure 3 It is a sectional structure schematic diagram of a steam pressure light aerated concrete block.
[0019] Figure 4 It is a sectional structure schematic diagram of a steam pressure light aerated concrete block.
[0020] Fig. 1, concrete block; 2, main rod; 3, sliding cavity; 4, sliding rod; 5, No. 1 hole; 6, connecting block; 7, vertical rod; 8, edge rod; 9, No. 2 hole; 10, No. 1 rib; 11, No. 2 rib; 12, longitudinal rod; 13, upper rod; 14, transverse rod; 15, side rod; 16, No. 3 hole; 17, connecting rod; 18, No. 4 hole. DETAILED DESCRIPTION
[0021] The utility model will be further described below in combination with examples.
[0022] The following examples are used to illustrate the utility model, but cannot be used to limit the protection scope of the utility model. The conditions in the examples can be further adjusted according to specific conditions, and simple improvements of the method of the utility model under the concept of the utility model all belong to the range required to be protected by the utility model.
[0023] Please refer to Figures 1-4 The utility model provides a kind of autoclaved aerated concrete block, including concrete block 1, the inside of concrete block 1 is all fixedly connected with main rod 2 around, the both ends of main rod 2 are all provided with sliding cavity 3, the both ends of main rod 2 are all slidably connected with sliding rod 4 by sliding cavity 3, main rod 2 is provided with several No. 1 holes 5 outside sliding cavity 3, the side of sliding rod 4 away from corresponding main rod 2 is fixedly connected with connecting block 6, between the two connecting blocks 6 of the same end top and bottom of concrete block 1, vertical rod 7 is fixedly connected, vertical rod 7 includes edge rod 8 slidably connected with top end and bottom end, between the two connecting blocks 6 of the same end of both sides of concrete block 1, connecting rod 17 is fixedly connected, the number of main rod 2 and vertical rod 7 is four, the number of connecting block 6 is eight, four main rods 2 are respectively located at the both ends of the top and bottom of concrete block 1, four vertical rods 7 are respectively located at the both ends of both sides of concrete block 1, the number of connecting rod 17 is four, is respectively located at the upper and lower ends of both sides of concrete block 1, main rod 2, sliding rod 4, vertical rod 7 and connecting rod 17 are made into rectangle structure by connecting block 6.
[0024] Pull vertical rod 7 to both sides, so that sliding rod 4 slides in sliding cavity 3, until the distance between two vertical rods 7 reaches appropriate length, then pull main rod 2 up and down, so that the distance between both ends of main rod 2 reaches appropriate width.
[0025] Main rod 2 is the cornerstone of framework, provides solid support for the whole structure, and the design of sliding rod 4 ingeniously utilizes the mechanism of sliding cavity 3, allows sliding rod 4 to slide, so as to adjust the length of framework structure, the introduction of vertical rod 7 and edge rod 8 further realizes the width adjustability of structure, this design makes the block can adapt to different size molds, meets the demand of diversified concrete block specifications, also makes production process more flexible and efficient, greatly widens its application range.
[0026] Please refer to Figures 1-4 , the inside of the vertical rod 7 is provided with a plurality of No. 2 holes 9, the same end of the two main rods 2 is fixedly connected with a No. 1 rib 10, the two No. 1 ribs 10 are fixedly connected with a longitudinal rod 12, the same side of the two vertical rods 7 is fixedly connected with a No. 2 rib 11, the two No. 2 ribs 11 are fixedly connected with a transverse rod 14, the No. 1 hole 5 is annularly distributed on the outside of the main rod 2, the No. 2 hole 9 is annularly distributed on the outside of the vertical rod 7, the inside of the connecting rod 17 is designed as a hollow, and a plurality of No. 4 holes 18 are formed at the top and bottom ends, the longitudinal rod 12 comprises an upper rod 13 which is slidingly connected at the top and bottom ends, the transverse rod 14 comprises a side rod 15 which is slidingly connected at the two ends, a plurality of No. 3 holes 16 are formed on the outside of the longitudinal rod 12 and the transverse rod 14, the middle part of the longitudinal rod 12 and the transverse rod 14 is fixedly connected and has a cross-shaped structure.
[0027] When pulling, the upper rod 13 slides in the longitudinal rod 12, and the side rod 15 slides in the transverse rod 14, ensuring that the framework structure reaches the appropriate size, and is placed in the external mold, and the concrete is poured, which enters the mold, also passes through the No. 1 hole 5 and the No. 2 hole 9, enters the sliding cavity 3 and the vertical rod 7, so that the main rod 2 and the sliding rod 4 and the vertical rod 7 and the side rod 8 are fixed, and the concrete also passes through the No. 3 hole 16 and the No. 4 hole 18, enters the longitudinal rod 12, the transverse rod 14 and the connecting rod 17, until the mold is filled, and after solidification, the concrete block 1 is formed.
[0028] The longitudinal rod 12 and the transverse rod 14 are connected with the main rod 2 and the vertical rod 7 through the No. 1 rib 10 and the No. 2 rib 11, forming a closely connected, stable and reliable framework network, which not only improves the bearing capacity of the block, but also ensures the stability and durability of the block under various environmental conditions.
[0029] The No. 1 hole 5 not only provides a smooth inflow channel for the concrete, but also ensures that the concrete can smoothly enter the inside of the sliding cavity 3, thereby effectively fixing the position of the sliding rod 4, not only enhancing the connection strength between the sliding rod 4 and the main rod 2, but also making the entire framework structure have excellent stability in the length direction, the No. 2 hole 9 constitutes a channel for the concrete to flow into the inside of the vertical rod 7, thereby ensuring the stability of the framework structure in the width direction, which not only improves the overall structural strength of the block, but also makes it maintain excellent stability and durability under various environmental conditions, in combination with the No. 3 hole 16 and the No. 4 hole 18, not only strengthening the stability of the framework structure, but also optimizing the amount of steel used while maintaining sufficient strength, which can more efficiently utilize materials and significantly reduce production costs.
[0030] The working principle and use flow of the utility model: pull the vertical rod 7 to the two sides, make the slide rod 4 slide in the sliding cavity 3, until the distance between the two vertical rods 7 reaches the proper length, then pull the main rod 2 up and down, make the distance between the two ends of the main rod 2 reach the proper width, slide the upper rod 13 in the longitudinal rod 12 and the side rod 15 in the transverse rod 14 at the same time, ensure the framework structure reaches the proper size, put it into the external mold, pour the concrete, when it enters the mold, it also passes through the first hole 5 and the second hole 9, enters the sliding cavity 3 and the vertical rod 7, make the main rod 2 and the slide rod 4 and the vertical rod 7 and the side rod 8 fixed, the concrete will also pass through the third hole 16 and the fourth hole 18, enter the longitudinal rod 12, the transverse rod 14 and the connecting rod 17, until fill the mold, after solidification, the concrete block 1 is formed.
[0031] Although the embodiments of the utility model have been shown and described, it is to be understood that various changes, modifications, substitutions and variations can be made thereto without departing from the principles of the utility model, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An autoclaved lightweight aerated concrete block, comprising a concrete block (1), characterized in that, The concrete block (1) is fixedly connected to a main rod (2) on all four sides of its inner side. A sliding cavity (3) is provided at both ends of the main rod (2). A sliding rod (4) is slidably connected to both ends of the main rod (2) through the sliding cavity (3). Several holes (5) are provided on the outside of the sliding cavity (3) of the main rod (2). A connecting block (6) is fixedly connected to the side of the sliding rod (4) away from the corresponding main rod (2). A vertical rod (7) is fixedly connected between two connecting blocks (6) at the top and bottom of the same end of the concrete block (1). The rod (7) includes a side rod (8) that is slidably connected at the top and bottom. A connecting rod (17) is fixedly connected between two connecting blocks (6) at the same end on both sides of the concrete block (1). Several No. 2 holes (9) are opened on the inner side of the upright (7). A No. 1 rib (10) is fixedly connected between two main rods (2) at the same end. A longitudinal rod (12) is fixedly connected between two No. 1 ribs (10). A No. 2 rib (11) is fixedly connected between two uprights (7) on the same side. A transverse rod (14) is fixedly connected between two No. 2 ribs (11).
2. The autoclaved lightweight aerated concrete block according to claim 1, characterized in that, The number of main rods (2) and uprights (7) is four, the number of connecting blocks (6) is eight, the four main rods (2) are located at the top and bottom ends of the concrete block (1) respectively, and the four uprights (7) are located at the two ends of both sides of the concrete block (1) respectively.
3. The autoclaved lightweight aerated concrete block according to claim 1, characterized in that, The first hole (5) is distributed in a ring on the outside of the main rod (2), and the second hole (9) is distributed in a ring on the outside of the upright rod (7).
4. The autoclaved lightweight aerated concrete block according to claim 1, characterized in that, The number of connecting rods (17) is four, located at the upper and lower ends on both sides of the concrete block (1). The main rod (2), sliding rod (4), upright rod (7) and connecting rod (17) form a rectangular structure through connecting block (6).
5. The autoclaved lightweight aerated concrete block according to claim 4, characterized in that, The connecting rod (17) is hollow inside, and has several No. 4 holes (18) at the top and bottom.
6. The autoclaved lightweight aerated concrete block according to claim 1, characterized in that, The longitudinal rod (12) includes an upper rod (13) that is slidably connected at the top and bottom, and the transverse rod (14) includes a side rod (15) that is slidably connected at both ends.
7. The autoclaved lightweight aerated concrete block according to claim 1, characterized in that, The longitudinal rod (12) and the transverse rod (14) are provided with several No. 3 holes (16) on their outer sides. The middle part of the longitudinal rod (12) and the transverse rod (14) are fixedly connected and have a cross-shaped structure.