Die steel structure
By designing a support mechanism and anti-slip pads for the mold steel, the problem of unstable stacking of mold steel was solved, enabling stable stacking and efficient transportation without the need for manual padding with wooden strips, thus improving the overall strength and safety of the mold steel.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BAILE SPECIAL STEEL (NINGBO) CO LTD
- Filing Date
- 2025-06-25
- Publication Date
- 2026-04-21
AI Technical Summary
In the process of stacking mold steel, the existing technology requires manual placement of wooden strips to form gaps, which results in high labor consumption and instability, affecting the stability and efficiency of stacking.
A mold steel structure was designed, including a support mechanism and an anti-slip pad. The support mechanism consists of a first support rod, a second support rod, a third support rod, and a connecting rod. The support rods have the same thickness. The anti-slip pad is provided with anti-slip texture. A baffle is used to prevent the mold steel from moving and to ensure stability.
The elimination of the need for manual wooden padding improves the stability and strength of stacked mold steel, reduces labor consumption, prevents slippage and tipping, and enhances stability and safety during transportation.
Smart Images

Figure CN224150677U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of mold steel technology, and in particular to a mold steel structure. Background Technology
[0002] In modern industrial production, molds are an extremely important type of process equipment, widely used in many fields such as machinery manufacturing, automobiles, electronics, aerospace, and home appliances. The quality, lifespan, and performance of molds directly affect the quality, production efficiency, and cost of products. As a key material for manufacturing molds, mold steel plays a decisive role in the overall performance of molds in terms of its performance and quality.
[0003] With the continuous advancement of technology and the increasing refinement and complexity of industrial production, higher and higher requirements are being placed on the precision, wear resistance, corrosion resistance, and thermal stability of molds. Ordinary steel can no longer meet these stringent conditions, so specialized mold steel has emerged.
[0004] With the development of industry, the market has higher requirements for the efficiency of mold steel processing. In the process of stacking large-volume mold steel, for each mold steel stacked, the operator needs to place at least two wooden strips on the mold steel to form a gap between the two mold steels, so that the mold steel can be lifted from the bottom during subsequent transportation. However, this operation not only consumes manpower and time, but the wooden strips are also prone to relative movement during the stacking process, affecting the stability of the mold steel after stacking. Utility Model Content
[0005] This application provides a mold steel structure.
[0006] The mold steel structure provided in this application adopts the following technical solution:
[0007] A mold steel structure includes a mold steel body and a support mechanism. The support mechanism includes a first support rod, a second support rod, a third support rod, a first connecting rod, and a second connecting rod. The first support rod, the second support rod, and the third support rod have the same thickness. The first connecting rod is connected to the front end of the first support rod, the second support rod, and the third support rod. The second connecting rod is connected to the rear end of the first support rod, the second support rod, and the third support rod. The first support rod is connected to the upper surface of the mold steel body, and the second support rod and the third support rod are connected to the lower surface of the mold steel body and located on opposite sides of the first support rod.
[0008] Preferably, the support mechanism further includes a first buffer pad, a second buffer pad, and a third buffer pad, wherein the first buffer pad, the second buffer pad, and the third buffer pad are respectively disposed on the side of the first support rod, the second support rod, and the third support rod near the mold steel body, and are connected to the mold steel body.
[0009] Preferably, the first support rod is provided with a first anti-slip pad on the side facing away from the mold steel body, and the first anti-slip pad is formed with a first anti-slip pattern; the second support rod is provided with a second anti-slip pad on the side facing away from the mold steel body, and the second anti-slip pad is formed with a second anti-slip pattern; the third support rod is provided with a third anti-slip pad on the side facing away from the mold steel body, and the third anti-slip pad is formed with a third anti-slip pattern.
[0010] Preferably, it further includes a first baffle and a second baffle, the first baffle being slidably connected to the first connecting rod, the second baffle being slidably connected to the second connecting rod, and the first baffle and the second baffle being opposite to each other.
[0011] Preferably, a first mounting groove is formed on the first connecting rod, a first slot is formed at the top of the first mounting groove, and a first guide rod is provided on the side; the first baffle includes a first snap-fit connector and a first plate body, the first snap-fit connector is connected to the top of the first plate body, the first plate body has a first guide groove along its height direction, the first guide rod passes through the first guide groove, and the first snap-fit connector is fixed by snapping into the first slot.
[0012] Preferably, a second mounting groove is formed on the second connecting rod, a second slot is formed at the top of the second mounting groove, and a second guide rod is provided on the side; the second baffle includes a second snap-fit connector and a second plate body, the second snap-fit connector is connected to the top of the second plate body, the second plate body has a second guide groove along its height direction, the second guide rod passes through the second guide groove, and the second snap-fit connector is fixed by snapping into the second slot.
[0013] In summary, this application includes at least one of the following beneficial technical effects:
[0014] 1. This application, by setting up a support mechanism, allows the second and third support rods of the upper mold steel to press against the upper surface of the lower mold steel when the mold steel bodies are stacked. The first support rod of the lower mold steel abuts against the lower surface of the upper mold steel, forming a gap between the two mold steels. During transportation, the mold steels can be lifted sequentially through the gap. Since the first, second, and third support rods have the same thickness, it is less likely for the two mold steels to be placed unevenly during stacking. Because the second and third support rods are located on opposite sides of the first support rod, the weight of the upper mold steel can be more evenly distributed on the second and third support rods, increasing the strength and stability of the connection structure.
[0015] 2. By setting the first anti-slip pad, the second anti-slip pad, and the third anti-slip pad, the slippage of the mold steel during stacking can be prevented. The differentiated setting of the first anti-slip texture, the second anti-slip texture, and the third anti-slip texture further improves the anti-slip effect.
[0016] 3. By setting the first baffle and the second baffle, which can be set on both sides of the mold steel body, the mold steel is prevented from excessive longitudinal movement after being stacked, which would cause the mold steel to tip over, thus further ensuring the stability of the mold steel after being stacked. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of a preferred embodiment of this application. Figure 1 .
[0018] Figure 2 This is a schematic diagram of the support mechanism in a preferred embodiment of this application.
[0019] Figure 3 This is a schematic diagram of the overall structure of a preferred embodiment of this application. Figure 2 .
[0020] Figure 4 yes Figure 3 Cross-sectional view along AA.
[0021] Figure 5 yes Figure 4 Enlarged view of section A.
[0022] Figure 6 yes Figure 4 Enlarged view of section B.
[0023] Figure 7 This is a usage state diagram of a preferred embodiment of this application.
[0024] Explanation of reference numerals in the attached drawings: 1. Mold steel body; 2. Support mechanism; 21. First support rod; 22. Second support rod; 23. Third support rod; 24. First connecting rod; 241. First mounting groove; 242. First slot; 243. First guide rod; 25. Second connecting rod; 251. Second mounting groove; 252. Second slot; 253. Second guide rod; 26. First buffer pad; 27. Second buffer pad; 28. Third buffer pad; 3. First anti-slip pad; 4. Second anti-slip pad; 5. Third anti-slip pad; 6. First baffle; 61. First snap-fit connector; 62. First plate; 621. First guide groove; 7. Second baffle; 71. Second snap-fit connector; 72. Second plate; 721. Second guide groove. Detailed Implementation
[0025] The present application will be further described in detail below with reference to the accompanying drawings.
[0026] This application provides a mold steel structure, such as Figures 1 to 7 As shown, it includes a mold steel body 1 and a support mechanism 2.
[0027] The mold steel body 1 is a cuboid structure. The support mechanism 2 includes a first support rod 21, a second support rod 22, a third support rod 23, a first connecting rod 24, and a second connecting rod 25, all integrally cast. The first support rod 21, the second support rod 22, and the third support rod 23 have the same thickness, and their front ends and rear ends are flush. The first connecting rod 24 is connected to the front ends of the first support rod 21, the second support rod 22, and the third support rod 23. The second connecting rod 25 is connected to the rear ends of the first support rod 21, the second support rod 22, and the third support rod 23. The first support rod 21 is connected to the upper surface of the mold steel body 1, and the second support rod 22 and the third support rod 23 are connected to the lower surface of the mold steel body 1 and are located on opposite sides of the first support rod 21.
[0028] Thus, when the main body 1 of the mold steel is stacked, the second support rod 22 of the upper mold steel presses against the upper surface of the lower mold steel, and the first support rod 21 of the lower mold steel abuts against the lower surface of the upper mold steel, forming a gap between the two mold steels. During transportation, the mold steels can be lifted sequentially through the gap using lifting equipment. Since the first support rod 21, the second support rod 22, and the third support rod 23 have the same thickness, it is not easy for the two mold steels to be placed unevenly during stacking. Since the second support rod 22 and the third support rod 23 are located on opposite sides of the first support rod 21, the weight of the upper mold steel can be more evenly distributed on the second support rod 22 and the third support rod 23, increasing the strength and stability of the connection structure.
[0029] Compared with the prior art, the mold steel structure of this application does not require operators to continuously place wooden strips during the process of stacking mold steel, saving manpower and time, while strengthening the strength of the mold steel and the strength and stability of the connection structure between the stacked mold steel.
[0030] like Figure 2 As shown, the support mechanism 2 also includes a first buffer pad 26, a second buffer pad 27, and a third buffer pad 28. The first buffer pad 26, the second buffer pad 27, and the third buffer pad 28 are respectively disposed on the side of the first support rod 21, the second support rod 22, and the third support rod 23 near the mold steel body 1, and are connected to the mold steel body 1. The first buffer pad 26, the second buffer pad 27, and the third buffer pad 28 can buffer the pressure on the mold steel body 1 during the stacking process, effectively protect the mold steel body 1, increase the overall strength of the mold steel, and make it less likely to be damaged during the stacking process.
[0031] like Figure 2 As shown, a first anti-slip pad 3 is provided on the side of the first support rod 21 facing away from the mold steel body 1, and the first anti-slip pad 3 has a first anti-slip texture. A second anti-slip pad 4 is provided on the side of the second support rod 22 facing away from the mold steel body 1, and the second anti-slip pad 4 has a second anti-slip texture. A third anti-slip pad 5 is provided on the side of the third support rod 23 facing away from the mold steel body 1, and the third anti-slip pad 5 has a third anti-slip texture. The shapes of the first anti-slip texture, the second anti-slip texture, and the third anti-slip texture are different. In this way, the first anti-slip pad 3, the second anti-slip pad 4, and the third anti-slip pad 5 can prevent the mold steel from slipping during the stacking process. The differentiated setting of the first anti-slip texture, the second anti-slip texture, and the third anti-slip texture further improves the anti-slip effect.
[0032] like Figures 3 to 7 As shown, a mold steel structure of this application also includes a first baffle 6 and a second baffle 7. The first baffle 6 is slidably connected to the first connecting rod 24, and the second baffle 7 is slidably connected to the second connecting rod 25. The first baffle 6 and the second baffle 7 are opposite to each other.
[0033] Specifically, the first baffle 6 includes a first snap-fit connector 61 and a first plate 62. The first snap-fit connector 61 is connected to the top of the first plate 62, and the first plate 62 has a first guide groove 621 along its height direction. The second baffle 7 includes a second snap-fit connector 71 and a second plate 72. The second snap-fit connector 71 is connected to the top of the second plate 72, and the second plate 72 has a second guide groove 721 along its height direction.
[0034] A first mounting groove 241 is formed on the first connecting rod 24, a first slot 242 is formed at the top of the first mounting groove 241, and a first guide rod 243 is provided on the side. The first guide rod 243 passes through the first guide groove 621, and the first snap-fit connector 61 is fixed by snapping into the first slot 242. A second mounting groove 251 is formed on the second connecting rod 25, a second slot 252 is formed at the top of the second mounting groove 251, and a second guide rod 253 is provided on the side. The second guide rod 253 passes through the second guide groove 721, and the second snap-fit connector 71 is fixed by snapping into the second slot 252.
[0035] During the handling of mold steel, the first clamping connector 61 and the second clamping connector 71 are respectively engaged in the first clamping slot 242 and the second clamping slot 252. After the mold steel is stacked, except for the mold steel stacked on the ground, the other mold steel is moved by moving the first baffle 6 in a direction away from the first clamping slot 242, thus moving the first plate 62 out of the first mounting slot 241 until the first guide rod 243 abuts against the top of the first mounting slot 241. Then the second baffle 7 is moved in a similar manner. Figure 7 As shown, the first baffle 6 and the second baffle 7 can be set on both sides of the mold steel body 1 to prevent the mold steel from moving too far longitudinally after being stacked, which would cause the mold steel to tip over, and further ensure the stability of the mold steel after being stacked.
[0036] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A mold steel structure, characterized in that: The device includes a mold steel body (1) and a support mechanism (2). The support mechanism (2) includes a first support rod (21), a second support rod (22), a third support rod (23), a first connecting rod (24), and a second connecting rod (25). The first support rod (21), the second support rod (22), and the third support rod (23) have the same thickness. The first connecting rod (24) is connected to the front end of the first support rod (21), the second support rod (22), and the third support rod (23). The second connecting rod (25) is connected to the rear end of the first support rod (21), the second support rod (22), and the third support rod (23). The first support rod (21) is connected to the upper surface of the mold steel body (1). The second support rod (22) and the third support rod (23) are connected to the lower surface of the mold steel body (1) and are located on opposite sides of the first support rod (21).
2. The mold steel structure according to claim 1, characterized in that... The support mechanism (2) further includes a first buffer pad (26), a second buffer pad (27), and a third buffer pad (28). The first buffer pad (26), the second buffer pad (27), and the third buffer pad (28) are respectively disposed on the side of the first support rod (21), the second support rod (22), and the third support rod (23) near the mold steel body (1) and connected to the mold steel body (1).
3. The mold steel structure according to claim 1, characterized in that: The first support rod (21) is provided with a first anti-slip pad (3) on the side facing away from the mold steel body (1), and the first anti-slip pad (3) is formed with a first anti-slip texture; The second support rod (22) is provided with a second anti-slip pad (4) on the side facing away from the mold steel body (1), and the second anti-slip pad (4) is formed with a second anti-slip texture; The third support rod (23) is provided with a third anti-slip pad (5) on the side facing away from the mold steel body (1), and the third anti-slip pad (5) has a third anti-slip texture.
4. A mold steel structure according to claim 1, characterized in that: It also includes a first baffle (6) and a second baffle (7), the first baffle (6) being slidably connected to the first connecting rod (24), and the second baffle (7) being slidably connected to the second connecting rod (25), with the first baffle (6) and the second baffle (7) facing each other.
5. A mold steel structure according to claim 4, characterized in that: The first connecting rod (24) has a first mounting groove (241) formed on its top, a first slot (242) formed on its top, and a first guide rod (243) provided on its side. The first baffle (6) includes a first snap-fit connector (61) and a first plate (62). The first snap-fit connector (61) is connected to the top of the first plate (62). The first plate (62) has a first guide groove (621) along its height direction. The first guide rod (243) passes through the first guide groove (621). The first snap-fit connector (61) is fixed by snapping into the first snap-fit groove (242).
6. A mold steel structure according to claim 4, characterized in that: A second mounting groove (251) is formed on the second connecting rod (25), a second slot (252) is formed at the top of the second mounting groove (251), and a second guide rod (253) is provided on the side; The second baffle (7) includes a second snap connector (71) and a second plate (72). The second snap connector (71) is connected to the top of the second plate (72). The second plate (72) has a second guide groove (721) along its height direction. The second guide rod (253) passes through the second guide groove (721). The second snap connector (71) is fixed by snapping into the second snap groove (252).