Energy-saving glass blowing forming machine
Through the linkage control of the guide component and the regulating and picking component, the problems of asynchronous mold movement and glass parts slipping during demoulding in glass blowing molding equipment are solved, and the stability and safety of glass molding are improved. It is suitable for the production of precision or large-sized glass parts.
Patent Information
- Application Number
- CN202510912755.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-03
- Publication Date
- 2025-09-26
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing glass blowing molding equipment lacks a reliable support or clamping structure during the mold separation and demolding process, which causes high-temperature glass parts to easily slip and break. This is especially true for thin-walled, large-sized or complex-structured glass products, affecting product qualification and safety. In addition, the equipment is not equipped with an adjustable clamping mechanism and cannot effectively control the glass parts, limiting the production and application of precision or large-sized glass parts.
The synchronous sliding structure of the guide assembly and the guide screw is adopted, combined with the adjustment of the material removal assembly and the locking assembly to achieve stable closing and separation of the opening and closing molds. During the demoulding stage, the glass parts are clamped by the adjustment plate to ensure that they do not slip, thereby improving safety and product qualification rate.
Through the linkage control of the guide component and the adjusting and picking component, the problems of asynchronous mold movement and glass parts slipping during demoulding are solved, and the stability, safety and product qualification rate of glass molding are improved. It is particularly suitable for the production of precision or large-sized glass parts.
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Figure CN120698685A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the field of glass processing, and in particular relates to an energy-saving glass blowing molding machine. Background Art
[0002] In existing glass blowing processes, symmetrically arranged opening and closing molds are typically used to coat, inflate, and shape high-temperature glass material. These devices are typically equipped with sliding mechanisms, drive devices, and guide components, enabling the molds to open and close automatically or semi-automatically. During the blowing process, molten glass is injected between the molds and then expanded to the mold cavity walls by airflow, forming a glass piece of a specific shape. Once the glass piece is formed, the mold opens, and gravity or an external mechanism removes the glass piece for cooling or subsequent processing.
[0003] However, during the process of mold separation and demolding, since the high-temperature glass has not yet completely cooled and is fragile, if there is a lack of a reliable support or clamping structure, the glass pieces can easily slip suddenly due to their own weight, resulting in breakage, edge defects or direct scrap. This problem is particularly prominent in thin-walled, large-sized or complex-structured glass molded products, which not only affects the product qualification rate, but also increases operational risks and material waste. In addition, most existing equipment is not equipped with an adjustable clamping mechanism, and cannot effectively control and protect the glass pieces during the demolding process, resulting in poor molding stability and safety, limiting the application of the equipment in the production of precision or large-sized glass pieces. Summary of the Invention
[0004] The purpose of the present invention is to address the problem raised in the above-mentioned background technology that during the process of demolding by separating the mold, since the high-temperature glass has not yet completely cooled and is fragile, if there is a lack of a reliable support or clamping structure, the glass piece is very likely to suddenly slide down due to its own weight, resulting in breakage, edge defects or direct scrap. This problem is particularly prominent in thin-walled, large-sized or complex-structured glass molded products, which not only affects the product qualification rate, but also increases operational risks and material waste. In addition, most existing equipment is not equipped with an adjustable clamping mechanism, and cannot effectively control and protect the glass pieces during the demolding process, resulting in poor molding stability and safety, which limits the application of the equipment in the production of precision or large-sized glass pieces. An energy-saving glass blowing molding machine is provided.
[0005] To achieve the above-mentioned objectives, the present invention adopts the following technical solutions: an energy-saving glass blowing molding machine, comprising an operating table, a guide assembly, a guide side plate, an opening and closing mold, an adjusting and picking assembly, an adjusting plate and a locking assembly, wherein the guide assembly is mounted on the top of the operating table, the two guide side plates are symmetrically slidably mounted on the guide assembly, the opening and closing mold is mounted on the inner side of the guide side plate, the top of the operating table is fixedly connected to the limiting table, and the limiting table is located on the outside of the guide assembly, the guide side plate is slidably sleeved on the limiting table, the adjusting plate is slidably mounted on the inner wall of the opening and closing mold, the adjusting and picking assembly is slidably mounted on the limiting table, and the adjusting and picking assembly is connected to the outer side of the guide side plate through the locking assembly.
[0006] Furthermore, the guide assembly includes a guide platform, a support platform, a first drive device and a guide screw, wherein the guide platform is fixedly connected to the top of the operating platform, the support platform is fixedly connected to the end of the operating platform, the first drive device is installed on the top of the support platform, the two ends of the guide screw are rotatably connected to the two ends of the inner wall of the guide platform, the output end of the first drive device is fixedly connected to one end of the guide screw, and the bottom of the guide side plate is slidably sleeved on the guide platform.
[0007] Furthermore, the adjusting and picking assembly includes a support seat, a support sleeve, a second driving device and a driving arm, wherein the support seat is slidably clamped on the top of the limit platform, the support sleeve is fixedly connected to the top of the support seat, the second driving device is installed on the inner wall of the support sleeve, one end of the driving arm is fixedly connected to the output end of the second driving device, and the other end of the driving arm slides through the opening and closing mold and is fixedly connected to one side of the adjustment plate.
[0008] Furthermore, the locking assembly includes a fastening bolt, a threaded sleeve and a fastening screw, wherein the fastening bolts are symmetrically installed on both sides of the top of the support seat, the threaded sleeve is fixedly connected to the support seat, and one end of the fastening screw is threaded through the threaded sleeve and is connected to the outer thread of the guide side plate.
[0009] Furthermore, a mounting groove for the rotation of the guide screw is provided on the top of the guide platform.
[0010] Furthermore, the outer wall of the adjustment plate is fitted and connected to the inner wall of the opening and closing mold.
[0011] Furthermore, a convex plate is provided at the bottom of the guide side plate, and the convex plate is threadedly sleeved on the guide screw rod.
[0012] Furthermore, the top of the limiting platform is symmetrically provided with limiting holes matching the fastening bolts at equal intervals.
[0013] Compared with existing technologies, the advantages of this energy-saving glass blowing molding machine are:
[0014] 1. The present invention achieves high-precision symmetrical movement of the guide side plates in the horizontal direction through a synchronous sliding structure formed by a guide assembly and a guide screw in conjunction with a first drive device, enabling stable closing and separation of the opening and closing molds. This solves the problem of poor molding caused by asynchronous mold movement, loose closure, or misalignment in traditional glass molding equipment, and improves the structural consistency and dimensional accuracy of glass products.
[0015] 2. The present invention adjusts the linkage control structure between the material picking assembly and the adjustment plate, and the locking assembly controls the switching of the connection state between the adjustment plate and the guide side plate, so that the adjustment plate can still clamp the formed glass parts during the mold opening process. This solves the problem of glass parts slipping and breaking due to lack of effective support in the demolding stage of traditional equipment, and significantly improves the safety of the demolding process and the product yield. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a schematic diagram of the overall structure of an energy-saving glass blowing molding machine provided by the present invention. Figure 1 ;
[0017] Figure 2 This is a schematic diagram of the overall structure of an energy-saving glass blowing molding machine provided by the present invention. Figure 2 ;
[0018] Figure 3 This is a structural schematic diagram of an energy-saving glass blowing molding machine adjusting and taking material component provided by the present invention;
[0019] Figure 4 It is a structural schematic diagram of a locking assembly of an energy-saving glass blowing molding machine provided by the present invention;
[0020] Figure 5 This invention provides an energy-saving glass blowing molding machine Figure 2 A is a schematic diagram of the structure in which part is magnified.
[0021] As shown in the figure:
[0022] 1. Operating table; 2. Guide assembly; 21. Guide platform; 22. Support platform; 23. First drive device; 24. Guide screw; 3. Guide side plate; 31. Limit platform; 311. Limit hole; 4. Opening and closing mold; 5. Adjusting and taking material assembly; 51. Support seat; 52. Support sleeve; 53. Second drive device; 54. Drive arm; 6. Adjusting plate; 7. Locking assembly; 71. Fastening bolt; 72. Threaded sleeve; 73. Fastening screw. DETAILED DESCRIPTION
[0023] The following examples are for illustrative purposes only and are not intended to limit the scope of the present invention.
[0024] like Figure 1-Figure 5 As shown, an energy-saving glass blowing molding machine includes an operating table 1, a guide assembly 2, a guide side plate 3, an opening and closing mold 4, an adjusting and taking material assembly 5, an adjusting plate 6 and a locking assembly 7.
[0025] The guide assembly 2 is installed on the top of the operating table 1 , and the two guide side plates 3 are symmetrically slidably installed on the guide assembly 2 .
[0026] It should be noted that the guide assembly 2 described in this embodiment is mounted on top of the operating table 1 and is used to provide a precise horizontal movement path for the guide side plates 3 to ensure good synchronization and centering during the opening and closing of the mold 4. The two guide side plates 3 are symmetrically slidably mounted on the guide assembly 2. The guide assembly 2 is internally provided with a guide rail and a limit groove matching structure, which effectively prevents the guide side plates 3 from offsetting or shaking during the sliding process, thereby improving the stability and repeatability of the mold opening and closing movement. In addition, the guide assembly 2 is provided with a transmission screw and a slider threaded connection mechanism. By cooperating with the first drive device 23, it can achieve precise reciprocating movement of the guide side plates 3, ensuring a synchronous and smooth mold opening and closing process. At the same time, this structure can also automatically adjust the sliding stroke according to the mold size, improving the versatility and adaptability of the equipment. To enhance structural strength and wear resistance, the contact surfaces of the guide assembly 2 and the guide side plates 3 can be made of a high-temperature resistant, low-friction composite material or equipped with a ball slide structure to further reduce operating resistance and improve overall operating efficiency and service life.
[0027] It should be noted that the opening and closing mold 4 described in this embodiment is installed on the inner side of the guide side plate 3.
[0028] The opening and closing mold 4 is mounted inside the guide side plate 3 and securely connected to the guide side plate 3 via a high-strength fastening structure. This allows it to maintain a stable, symmetrical trajectory during sliding, ensuring parallelism and tightness during mold opening and closing, and preventing molding defects caused by mold misalignment. The mold 4 is constructed from a high-temperature alloy material with excellent thermal stability and deformation resistance, adapting to the high-temperature and high-pressure working environment of the glass molding process. A cushioning layer or shock-absorbing structure is provided between the mold and the guide side plate 3 to absorb the impact forces generated during mechanical movement.
[0029] The top of the operating platform 1 is fixedly connected to a limiting platform 31 , and the limiting platform 31 is located outside the guide assembly 2 , and the guide side plate 3 is slidably sleeved on the limiting platform 31 .
[0030] It should be noted that the top of the operating table 1 described in this embodiment is fixedly connected to the limit platform 31, and the limit platform 31 adopts an integrated casting or high-strength welded structure to ensure that it still has good structural stability and precision retention under the long-term sliding load of the guide side plate 3 and repeated mechanical impact, and the limit platform 31 is arranged on the outside of the guide component 2, and a reasonable distance is maintained between the guide component 2 to avoid operation interference and facilitate later maintenance and cleaning. The top of the limit platform 31 is provided with a parallel arranged slide groove or rolling track structure, which is precisely matched with the sliding contact surface at the bottom of the guide side plate 3, thereby realizing the guide The guide side plate 3 slides on it with low friction and high precision, further improving the smoothness and centering accuracy of the mold opening and closing process. The guide side plate 3 is slidably sleeved on the limit platform 31, and its bottom can also be provided with a limit bump or guide pin, which accurately matches the preset limit hole 311 on the limit platform 31 to prevent the guide side plate 3 from lateral displacement or position drift during operation, thereby enhancing the positioning stability and operational reliability of the structure. At the same time, the structure can also form an effective mechanical limit at the extreme opening and closing position of the mold to prevent equipment damage or mold interference caused by overstroke, thereby improving the overall equipment safety and molding accuracy.
[0031] The adjusting plate 6 is slidably mounted on the inner wall of the opening and closing mold 4 , the adjusting and taking material assembly 5 is slidably mounted on the limiting platform 31 , and the adjusting and taking material assembly 5 is connected to the outer side of the guide side plate 3 via a locking assembly 7 .
[0032] It should be noted that the adjustment plate 6 described in this embodiment is slidably mounted on the inner wall of the opening and closing mold 4. Its shape is designed to fit the inner wall of the mold, allowing for fine-tuning along the axial direction when the mold is closed, thereby finely controlling the molding thickness and internal shape of the glass during the blowing process, improving molding accuracy and surface quality. The adjusting and taking component 5 is connected to the outer side of the guide side plate 3 via a locking component 7, which can be quickly locked and unlocked according to operational requirements, thereby maintaining the synchronous movement of the adjusting and taking component 5 and the guide side plate 3 during the mold closing stage, and can be quickly released during the demolding stage, allowing the adjustment plate 6 to independently clamp the molded glass piece, preventing the glass product from falling or breaking due to mold separation, effectively improving the safety, stability and convenience of the taking operation.
[0033] Specifically, a precise horizontal guide path is provided for the sliding of the guide side panels 3 by means of the guide assembly 2 installed on the top of the operating table 1. After the first drive device 23 is started, the guide screw 24 inside the guide assembly 2 drives the two symmetrically arranged guide side panels 3 to move synchronously along the guide track, so that the opening and closing mold 4 installed on the inner side of the guide side panels 3 can be accurately closed or separated. After the mold is closed, the adjustment plate 6 slidably installed on the inner wall of the opening and closing mold 4 is used to fine-tune the size of the molding space, thereby controlling the blowing molding space in the mold cavity according to the requirements of different glass piece thicknesses, thereby improving the structural stability and dimensional accuracy of the finished product. The adjusting and taking component 5 is slidably installed on the limit table 31 and is connected to the outer side of the guide side panel 3 through the locking component 7. During the mold closing and blowing process, the locking component 7 remains connected, so that the adjusting and taking component 5 moves synchronously with the guide side panel 3, ensuring the stability of the position of the adjustment plate 6. When blowing is complete and demolding is required, the position of the material removal assembly 5 on the limit platform 31 is first fixed and adjusted by tightening bolts 71, and then the connection between the material removal assembly 5 and the guide side plate 3 is released by rotating the tightening screw 73. Subsequently, the first drive device 23 is restarted, driving the guide side plate 3 to separate from the mold 4. At this time, the adjustment plate 6 continues to clamp the formed glass piece, effectively preventing the glass from slipping or being damaged due to mold opening. This coordinated structure not only ensures the synchronization of mold opening and closing and operational stability, but also provides reliable support and clamping for the glass product during the demolding process. This overcomes the defect of traditional technology that the glass product slips and is damaged due to lack of support when the mold is separated after forming, significantly improving the safety, stability and product qualification rate of the glass forming process.
[0034] Further, if Figure 1-Figure 5 As shown, the guide assembly 2 includes a guide platform 21, a support platform 22, a first drive device 23 and a guide screw rod 24, wherein the guide platform 21 is fixedly connected to the top of the operating platform 1, the support platform 22 is fixedly connected to the end of the operating platform 1, the first drive device 23 is installed on the top of the support platform 22, and the two ends of the guide screw rod 24 are rotatably connected to the two ends of the inner wall of the guide platform 21, the output end of the first drive device 23 is fixedly connected to one end of the guide screw rod 24, and the bottom of the guide side plate 3 is slidably sleeved on the guide platform 21.
[0035] Furthermore, a mounting groove for the guide screw 24 to rotate is provided on the top of the guide platform 21 .
[0036] It should be noted that the first driving device 23 described in this embodiment is a driving motor.
[0037] Specifically, a guide platform 21 is fixedly mounted on the top of the operating table 1, providing a load-bearing and sliding platform for the guide side plate 3. A support platform 22 is fixed to the end of the operating table 1 to stabilize the drive source. A first drive device 23 is mounted on the top of the support platform 22. Its output end is fixedly connected to one end of a guide screw 24, driving the guide screw 24 to rotate by transmitting rotational power. The two ends of the guide screw 24 are respectively connected to the inner wall of the guide platform 21, effectively achieving stable power transmission. The bottom thread or slide groove structure of the guide side plate 3 matches the guide screw 24 and is slidably connected to the guide platform 21. When the guide screw 24 rotates, the guide side plate 3 can achieve precise linear sliding, so that the opening and closing mold 4 installed inside it can maintain synchronous and symmetrical movement. The parallelism and tightness of the mold during the closing process are guaranteed. Through this structural design, not only the positioning accuracy and repeatability of the sliding of the guide side plate 3 are improved, avoiding problems such as mold misalignment and loose closure, but also the centralized setting of the drive system and the transmission rigidity design make the opening and closing action more efficient and reliable. This solution effectively solves the problems existing in the background technology, such as asynchronous mold opening and closing process, inaccurate glass molding alignment, and mold operation shaking, and improves the molding stability, processing accuracy and service life of the entire machine. It is particularly suitable for glass molding process scenarios with high requirements on mold matching accuracy.
[0038] Further, if Figure 1-Figure 5 As shown, the adjusting and picking assembly 5 includes a support seat 51, a support sleeve 52, a second drive device 53 and a drive arm 54, wherein the support seat 51 is slidably clamped on the top of the limit platform 31, the support sleeve 52 is fixedly connected to the top of the support seat 51, the second drive device 53 is installed on the inner wall of the support sleeve 52, one end of the drive arm 54 is fixedly connected to the output end of the second drive device 53, and the other end of the drive arm 54 slides through the opening and closing mold 4, and is fixedly connected to one side of the adjustment plate 6.
[0039] It should be noted that the second driving device 53 described in this embodiment is a cylinder.
[0040] Specifically, the support base 51 is slidably engaged with the top of the limit platform 31, enabling smooth reciprocating movement along the slide rails of the limit platform 31. Through its detachable connection with the guide side plate 3, it enables switching between synchronized and independent mold operation. The support sleeve 52 is fixed to the top of the support base 51 and serves as the mounting base for the second drive device 53, ensuring its structural stability during high-frequency operation. The second drive device 53 is mounted on the inner wall of the support sleeve 52. Its output end is fixedly connected to one end of the drive arm 54. By controlling its linear advancement or retraction, it achieves precise linear drive of the drive arm 54. The other end of the drive arm 54 passes through the opening and closing mold 4 and is fixedly connected to one side of the adjustment plate 6, ensuring that the drive displacement directly acts on the adjustment plate 6. During operation, when the opening and closing mold 4 is closed for molding, the second drive device 53 controls the drive arm 54 to drive the adjustment plate 6 to perform axial fine-tuning along the interior of the mold cavity, thereby achieving real-time adjustment of the thickness and size of the molded glass. When molding is complete and ready for demolding, the adjustment and material removal assembly 5 unlocks the guide side plate 3, allowing the adjustment plate 6 to continue to maintain a clamped state. Even if the mold is opened, the glass piece will not slide due to gravity. This structure effectively solves the problem of glass pieces sliding and being damaged due to lack of clamping support during mold separation in the background art. It also enhances the ability to precisely control the thickness of the glass, improves the integrity, safety, and ease of operation of the product molding, and is particularly suitable for the production of energy-saving glass products with high requirements for thickness uniformity and demolding safety.
[0041] Further, if Figure 1-Figure 5 As shown, the locking assembly 7 includes a fastening bolt 71, a threaded sleeve 72 and a fastening screw 73, wherein the fastening bolt 71 is symmetrically installed on both sides of the top of the support seat 51, the threaded sleeve 72 is fixedly connected to the support seat 51, and one end of the fastening screw 73 is threaded through the threaded sleeve 72 and is connected to the outer thread of the guide side plate 3.
[0042] Furthermore, limiting holes 311 matching the fastening bolts 71 are symmetrically formed at equal intervals on the top of the limiting platform 31 .
[0043] Specifically, the fastening bolts 71 are symmetrically mounted on both sides of the top of the support base 51 to strengthen the structural fixity and enhance the stability of the components during the locking process, thereby ensuring the reliable positioning of the locking assembly 7 during operation. The threaded sleeve 72 is fixedly connected to the support base 51 and serves as a threaded guide mechanism for the fastening screw 73. A threaded hole is provided inside the sleeve to cooperate with the fastening screw 73 to achieve stable guidance of the rotation transmission. One end of the fastening screw 73 is threadedly penetrated by the threaded sleeve 72 and connected to the outer side of the guide side plate 3. When it is necessary to realize the linkage between the adjustment and feeding assembly 5 and the guide side plate 3, the fastening screw 73 can be rotated to form a threaded lock with the guide side plate 3, so that the adjustment and feeding assembly 5 can maintain synchronous sliding during the opening and closing of the mold. In the demolding stage, in order to prevent the adjustment plate 6 from separating with the guide side plate 3, the fastening screw 73 can be rotated in the opposite direction to release the connection with the guide side plate 3, so that the adjustment and feeding assembly 5 remains in place and the adjustment plate 6 continues to be controlled by the drive arm 54 to clamp the glass piece. Through the above-mentioned structural design, flexible switching between the adjustment mechanism and the mold system during the operation stage is achieved, which can not only ensure synchronous movement during the blowing process, but also achieve effective separation and independent control when the mold is separated. This solves the problem in the background technology that glass molded parts are prone to falling and breaking due to loss of support during the demolding stage, and improves the safety, operational convenience and finished product qualification rate of the system.
[0044] It should be understood that the outer wall of the adjustment plate 6 is in close contact with the inner wall of the opening and closing mold 4 , and a convex plate is provided at the bottom of the guide side plate 3 , and the convex plate is threadedly sleeved on the guide screw 24 .
[0045] The working principle of the present invention is as follows:
[0046] A guide assembly 2, mounted atop the operating table 1, drives the symmetrically arranged guide side plates 3 to slide precisely along the guide platform 21 under the action of a guide screw 24, achieving synchronized closing and separation of the opening and closing mold 4. This ensures smooth mold movement and precise centering during the glassblowing process. An adjustment plate 6 is slidably mounted on the inner wall of the opening and closing mold 4. Its position is controlled by a second drive device 53 in the adjustment and take-up assembly 5, mounted on the limit platform 31, via a drive arm 54. During mold closing, the mold cavity thickness can be fine-tuned to achieve precise control of glass thickness. After blowing is completed, the connection between the adjustment and take-up assembly 5 and the guide side plates 3 is unlocked via a fastening bolt 71, a threaded sleeve 72, and a fastening screw 73 in a locking assembly 7. This allows the adjustment plate 6 to continue clamping the glass piece during mold separation, preventing it from slipping and breaking during demolding. Through its modular design, interlocking drive, and position-limiting protection structure, the entire machine effectively addresses the problems of asynchronous mold opening and closing, glass drop during demolding, and unstable mold thickness commonly encountered in conventional glass molding equipment, thereby improving the molding precision, safety, and production efficiency of glass products.
[0047] The above are only preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. An energy-saving glass blowing machine, characterized in that: It comprises an operating table (1), a guide assembly (2), a guide side plate (3), an opening and closing mold (4), an adjusting and taking-out assembly (5), an adjusting plate (6) and a locking assembly (7), wherein: The guide assembly (2) is mounted on the top of the operating table (1), and the two guide side plates (3) are symmetrically slidably mounted on the guide assembly (2); The opening and closing mold (4) is installed on the inner side of the guide side plate (3); The top of the operating table (1) is fixedly connected to a limiting platform (31), and the limiting platform (31) is located outside the guide assembly (2), and the guide side plate (3) is slidably sleeved on the limiting platform (31); The adjusting plate (6) is slidably mounted on the inner wall of the opening and closing mold (4), the adjusting material taking component (5) is slidably mounted on the limiting platform (31), and the adjusting material taking component (5) is connected to the outer side of the guide side plate (3) via the locking component (7).
2. The energy-saving glass blowing machine according to claim 1, characterized in that: The guide assembly (2) comprises a guide platform (21), a support platform (22), a first drive device (23) and a guide screw (24), wherein: The guide platform (21) is fixedly connected to the top of the operating platform (1), the support platform (22) is fixedly connected to the end of the operating platform (1), and the first driving device (23) is installed on the top of the support platform (22); The two ends of the guide screw (24) are rotatably connected to the two ends of the inner wall of the guide platform (21), and the output end of the first driving device (23) is fixedly connected to one end of the guide screw (24); The bottom of the guide side plate (3) is slidably sleeved on the guide platform (21).
3. The energy-saving glass blowing machine according to claim 2, characterized in that: The regulating and taking material assembly (5) comprises a support seat (51), a support sleeve (52), a second driving device (53) and a driving arm (54), wherein: The support seat (51) is slidably engaged with the top of the limiting platform (31), the support sleeve (52) is fixedly connected to the top of the support seat (51), and the second driving device (53) is installed on the inner wall of the support sleeve (52); One end of the driving arm (54) is fixedly connected to the output end of the second driving device (53), and the other end of the driving arm (54) slides through the opening and closing mold (4) and is fixedly connected to one side of the adjustment plate (6).
4. The energy-saving glass blowing machine according to claim 3, characterized in that: The locking assembly (7) comprises a fastening bolt (71), a threaded sleeve (72) and a fastening screw (73), wherein: The fastening bolts (71) are symmetrically mounted on both sides of the top of the support seat (51); The threaded sleeve (72) is fixedly connected to the support seat (51), and one end of the fastening screw rod (73) is threadedly passed through the threaded sleeve (72) and is threadedly connected to the outer side of the guide side plate (3).
5. The energy-saving glass blowing machine according to claim 2, characterized in that: The top of the guide platform (21) is provided with a mounting groove for the guide screw rod (24) to rotate.
6. The energy-saving glass blowing machine according to claim 1, characterized in that: The outer wall of the adjustment plate (6) is fitted and connected to the inner wall of the opening and closing mold (4).
7. The energy-saving glass blowing machine according to claim 2, characterized in that: A convex plate is provided at the bottom of the guide side plate (3), and the convex plate is threadedly sleeved on the guide screw rod (24).
8. The energy-saving glass blowing machine according to claim 4, characterized in that: The top of the limiting platform (31) is symmetrically provided with limiting holes (311) matching the fastening bolts (71) at equal intervals.