A furnace door structure based on automatic intelligent thermal shock equipment
By installing a cleaning mechanism and sealing components on the furnace door of the thermal shock furnace, and using a push rod motor and cleaning plate to automatically clean the observation window, the problem of fogging is solved, labor intensity and the risk of burns are reduced, and operational safety is improved.
Patent Information
- Application Number
- CN202423305857.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-12-31
AI Technical Summary
When the door of the existing thermal shock furnace is opened in a humid external environment, fog will form on the observation glass, increasing the labor intensity of workers and the risk of burns.
A furnace door structure based on an automated intelligent thermal shock device was designed, which includes a cleaning mechanism and a sealing component. The observation window is automatically cleaned using a push rod motor, a push plate component, and a cleaning plate, avoiding manual wiping.
It reduces the workload of staff, avoids the risk of burns, ensures clear viewing through the observation window, and improves operational safety.
Smart Images

Figure CN223596505U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to test equipment technical field, especially a furnace door structure based on automatic intelligent thermal shock equipment. BACKGROUND
[0002] Thermal shock furnace is a kind of professional high-temperature experimental equipment, it simulates the high-temperature heating and rapid cooling process experienced by material in extremely short time, to test the thermal shock performance of material, namely the resistance and anti-cracking of material when temperature changes sharply, this is crucial to assess and improve the reliability, safety and application performance of material in extreme temperature environment.
[0003] The existing thermal shock furnace furnace door is provided with high-temperature-resistant observation glass, which facilitates the observation of the change of sample in the thermal shock furnace after heating by the staff, however, in the environment of external air humidity, when the sample is heated and tested, in the moment of opening the furnace door, the side of glass facing away from the furnace will produce fog due to the interruption of continuous high temperature and the contact with the external low-temperature humid environment, the staff puts on protective equipment and wipes with tools in order to wipe the glass clean so as to observe clearly when testing the sample again, which not only increases the labor intensity of the staff, but also still has the risk of scalding. SUMMARY
[0004] This section aims to outline some aspects of the embodiments of the utility model and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract of the specification and the utility model name to avoid obscuring the purpose of this section, the abstract of the specification and the utility model name, and such simplifications or omissions cannot be used to limit the scope of the utility model.
[0005] In view of the above or the problems existing in the prior art, the utility model is proposed.
[0006] Therefore, the purpose of the utility model is to provide a furnace door structure based on automatic intelligent thermal shock equipment.
[0007] To solve the above technical problems, the utility model provides the following technical scheme: a furnace door structure based on automatic intelligent thermal shock equipment, comprising,
[0008] Thermal shock furnace, wherein the thermal shock furnace is provided with a placing groove; and a furnace door, comprising a cleaning mechanism arranged on the thermal shock furnace and a closure arranged on the cleaning mechanism, wherein the closure can close the placing groove.
[0009] As a preferred scheme of the furnace door structure based on automatic intelligent thermal shock equipment of the utility model, wherein: the cleaning mechanism comprises a push rod motor arranged on the thermal shock furnace, and the output end of the push rod motor is provided with a push plate.
[0010] As a preferred scheme of the furnace door structure based on the automatic intelligent thermal shock equipment of the utility model, wherein: the push plate piece includes the push-pull rod which is rotationally connected with the output end of the push rod motor, and the push-pull rod is rotationally connected with the rotating disc at the end away from the push rod motor.
[0011] As a preferred scheme of the furnace door structure based on the automatic intelligent thermal shock equipment of the utility model, wherein: the output end of the push rod motor is on the same vertical line with the end part when being at the minimum stroke and at the maximum stroke, and the rotating disc is provided with the bearing which is fixedly connected with the thermal shock furnace.
[0012] As a preferred scheme of the furnace door structure based on the automatic intelligent thermal shock equipment of the utility model, wherein: the outer ring of the bearing is provided with the connecting rod at the side away from the thermal shock furnace, and the connecting rod is provided with the fixing rod.
[0013] As a preferred scheme of the furnace door structure based on the automatic intelligent thermal shock equipment of the utility model, wherein: the distance from the connecting rod and the fixing rod to the closure part is shorter than the distance from the rotating disc to the closure part.
[0014] As a preferred scheme of the furnace door structure based on the automatic intelligent thermal shock equipment of the utility model, wherein: the side of the rotating disc away from the thermal shock furnace is provided with the extrusion block, and the fixing rod is provided with the cleaning plate.
[0015] As a preferred scheme of the furnace door structure based on the automatic intelligent thermal shock equipment of the utility model, wherein: the end part of the extrusion block is arc-shaped, and the distance from the side of the cleaning plate close to the rotating disc to the rotating disc is shorter than the distance from the end of the extrusion block away from the rotating disc to the rotating disc in normal state.
[0016] As a preferred scheme of the furnace door structure based on the automatic intelligent thermal shock equipment of the utility model, wherein: the torsion spring is arranged between the cleaning plate and the connecting rod, and the end of the cleaning plate close to the closure part is inclined away from the closure part in normal state.
[0017] As a preferred scheme of the furnace door structure based on the automatic intelligent thermal shock equipment of the utility model, wherein: the closure part includes the door plate body arranged on the output end of the push rod motor, the door plate body is provided with the observation window, and the bottom end of the observation window is provided with the scraper.
[0018] The furnace door structure based on the automatic intelligent thermal shock equipment of the utility model has the following advantages: the push rod motor, the push plate piece and the cleaning plate are arranged, which has the advantage of avoiding the staff from wearing protective equipment and wiping with tools in order to wipe the glass clean so as to clearly observe the sample in subsequent retesting, thereby reducing the labor intensity of the staff and avoiding the risk of scalding. Attached Figure Description
[0019] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0020] Figure 1 This is a three-dimensional enlarged schematic diagram of the furnace door structure based on an automated intelligent thermal shock device.
[0021] Figure 2 This is a three-dimensional enlarged structural diagram of the furnace door.
[0022] Figure 3 This is a magnified three-dimensional structural diagram of the closure component.
[0023] Figure 4 for Figure 3 Enlarged structural diagram at point A in the middle.
[0024] Figure 5 This is a magnified three-dimensional structural diagram of the cleaning mechanism.
[0025] Figure 6 This is a first-person, magnified three-dimensional structural diagram of the push plate component.
[0026] Figure 7 This is a magnified three-dimensional structural diagram of the push plate component from a second perspective.
[0027] Figure 8 A magnified 3D structural diagram of the assembled door panel and cleaning panel.
[0028] Figure 9 for Figure 8 Enlarged structural diagram at point B.
[0029] 100. Thermal shock furnace; 200. Furnace door; 201. Sealing component; 201a. Observation window; 201b. Door panel; 201c. Scraper; 202. Cleaning mechanism; 202a. Push rod motor; 202b. Push plate component; 202b-1. Bearing; 202b-2. Turntable; 202b-3. Extrusion block; 202b-4. Connecting rod; 202b-5. Fixing rod; 202b-6. Push-pull rod; 202c. Cleaning plate. Detailed Implementation
[0030] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.
[0031] In the following description, a lot of specific details are set forth in order to facilitate a thorough understanding of the present application, but the present application can be practiced without other different ways from the description, and those skilled in the art can make similar generalizations without departing from the content of the present application, therefore the present application is not limited to the specific embodiments disclosed below.
[0032] Secondly, the "one embodiment" or "embodiment" referred to herein means that the specific features, structures or characteristics can be included in at least one implementation of the present application. In this specification, "in one embodiment" does not mean the same embodiment, nor is it an independent or alternative embodiment.
[0033] Embodiment 1
[0034] Referring to Figures 1-9 For the first embodiment of the present application, the embodiment provides a furnace door structure based on automatic intelligent thermal shock equipment, by setting the furnace door 200, the advantage of this setting is to avoid the staff to wipe the glass in order to observe clearly when testing the sample again, put on protective equipment and wipe with tools, not only reduce the labor intensity of the staff, but also avoid the risk of scalding.
[0035] Specifically, the thermal shock furnace 100, wherein the thermal shock furnace 100 is provided with a placing groove; and the furnace door 200, comprising a cleaning mechanism 202 arranged on the thermal shock furnace 100 and a sealing element 201 arranged on the cleaning mechanism 202, wherein the sealing element 201 can seal the placing groove.
[0036] Among them, the sealing element 201 is provided with a sealing ring, which can avoid the decline of the heat preservation effect of the thermal shock furnace 100 after heating.
[0037] In summary, by setting the furnace door 200, when the thermal shock furnace 100 is heated, the cleaning mechanism 202 is started to move the sealing element 201 upward, and in this process, the cleaning mechanism 202 will clean the sealing element 201, the advantage of this setting is to avoid the staff to wipe the glass in order to observe clearly when testing the sample again, put on protective equipment and wipe with tools, not only reduce the labor intensity of the staff, but also avoid the risk of scalding.
[0038] Embodiment 2
[0039] Referring to Figures 1-9The second embodiment of the utility model differs from the previous embodiment in that a push rod motor 202a, a push plate 202b and a cleaning plate 202c are arranged, which has the advantage of avoiding the need for workers to wear protective equipment and use tools to wipe the glass, thereby reducing the labor intensity of the workers and avoiding the risk of burns.
[0040] Specifically, the cleaning mechanism 202 comprises a push rod motor 202a arranged on the thermal shock furnace 100, and the output end of the push rod motor 202a is provided with a push plate 202b.
[0041] The push plate 202b comprises a push-pull rod 202b-6 rotatably connected to the output end of the push rod motor 202a, and a rotating disc 202b-2 rotatably connected to one end of the push-pull rod 202b-6 away from the push rod motor 202a.
[0042] The end of the output end of the push rod motor 202a at the minimum stroke and at the maximum stroke is on the same vertical line, and the rotating disc 202b-2 is provided with a bearing 202b-1 fixedly connected to the thermal shock furnace 100.
[0043] The outer ring of the bearing 202b-1 is provided with a connecting rod 202b-4 away from the thermal shock furnace 100, and the connecting rod 202b-4 is provided with a fixing rod 202b-5.
[0044] The distance from the connecting rod 202b-4 and the fixing rod 202b-5 to the closure 201 is shorter than the distance from the rotating disc 202b-2 to the closure 201.
[0045] The side of the rotating disc 202b-2 away from the thermal shock furnace 100 is provided with an extrusion block 202b-3, and the fixing rod 202b-5 is provided with a cleaning plate 202c.
[0046] The end of the extrusion block 202b-3 is arc-shaped, and the distance from the side of the cleaning plate 202c close to the rotating disc 202b-2 to the rotating disc 202b-2 is shorter than the distance from the end of the extrusion block 202b-3 away from the rotating disc 202b-2 to the rotating disc 202b-2.
[0047] A torsion spring is arranged between the cleaning plate 202c and the connecting rod 202b-4, and the end of the cleaning plate 202c close to the closure 201 is inclined away from the closure 201 in the normal state.
[0048] The end of the output end of the push rod motor 202a at the minimum stroke and at the maximum stroke is on the same vertical line, so that the linear motion of the output end of the push rod motor 202a can drive the rotating disc 202b-2 to rotate.
[0049] The distance from the connecting rod 202b-4 and the fixed rod 202b-5 to the closure 201 is shorter than the distance from the rotating disc 202b-2 to the closure 201, so that the extrusion block 202b-3 can push the scraper 202c to clean the observation window 201a.
[0050] The ends of the extrusion block 202b-3 are arc-shaped, which can reduce the friction when the extrusion block 202b-3 pushes the cleaning plate 202c. In the normal state, the distance from the side of the cleaning plate 202c close to the rotating disc 202b-2 to the rotating disc 202b-2 is shorter than the distance from the end of the extrusion block 202b-3 away from the rotating disc 202b-2 to the rotating disc 202b-2, so that the extrusion block 202b-3 can extrude and push the cleaning plate 202c with the rotation of the rotating disc 202b-2.
[0051] In the normal state, the end of the cleaning plate 202c close to the closure 201 is inclined away from the closure 201, which facilitates the cleaning plate 202c to be close to the observation window 201a when cleaning the observation window 201a.
[0052] The cleaning plate 202c is provided with a polytetrafluoroethylene high-temperature cloth, which can withstand high temperature.
[0053] In summary, by setting the push rod motor 202a, the push plate 202b and the cleaning plate 202c, when the thermal shock furnace 100 is heated, the push rod motor 202a is started to make the output end of the push rod motor 202a move upward to drive the door plate body 201b to move upward to expose the installation groove, the observation window 201a away from one side of the thermal shock furnace 100 has mist, at the same time, the output end of the push rod motor 202a pushes the push-pull rod 202b-6 to make the push-pull rod 202b-6 push the rotating disc 202b-2 to rotate, when the door plate body 201b closes the installation groove, the extrusion block 202b-3 is located at the bottom end of the rotating disc 202b-2, when the door plate body 201b opens the installation groove, the extrusion block 202b-3 is located at the top end of the rotating disc 202b-2, therefore, the rotating disc 202b-2 rotates to drive the extrusion block 202b-3 to rotate clockwise and abut against the cleaning plate 202c to extrude and push the cleaning plate 202c to deflect away from the rotating disc 202b-2, and then the end of the cleaning plate 202c close to the door plate body 201b is close to the door plate body 201b, at this time, the door plate body 201b slides upward to make the observation window 201a abut against and wipe the mist with the cleaning plate 202c, until the extrusion block 202b-3 moves to the top end of the cleaning plate 202c to reset the cleaning plate 202c, at this time, the top end of the cleaning plate 202c is below the bottom end of the observation window 201a, when the push rod motor 202a moves the output end of the push rod motor 202a downward to drive the door plate body 201b to move downward, the cleaning plate 202c can wipe the observation window 201a again, the advantage of this setting is to avoid the staff to wipe the glass in order to observe the sample clearly for subsequent test, wear protective equipment and use tools to wipe, not only reduce the labor intensity of the staff, but also avoid the risk of scalding.
[0054] Embodiment 3
[0055] With reference to Figures 1-9 For the third embodiment of the utility model, different from the previous embodiment, by setting the scraper 201c, the advantage of this setting is to clean the polytetrafluoroethylene high temperature cloth on the cleaning plate 202c, which is beneficial to the polytetrafluoroethylene high temperature cloth to clean the observation window 201a next time, and further improve the cleaning effect of the cleaning plate 202c.
[0056] Specifically, the closure 201 comprises a door plate body 201b arranged on the output end of the push rod motor 202a, the door plate body 201b is provided with an observation window 201a, and the bottom end of the observation window 201a is provided with a scraper 201c.
[0057] Among them, the distance between the two ends of the scraper 201c is longer than the distance between the two ends of the polytetrafluoroethylene high temperature cloth on the cleaning plate 202c, which is convenient for the scraper 201c to improve the effect of scraping dust on the polytetrafluoroethylene high temperature cloth.
[0058] In summary, by setting the scraper 201c, when the bottom end of the cleaning plate 202c is located at the bottom end of the observation window 201a, the cleaning plate 202c interferes with the scraper 201c to make the scraper 201c scrape off the dust on the polytetrafluoroethylene high-temperature cloth, which has the benefit of cleaning the polytetrafluoroethylene high-temperature cloth on the cleaning plate 202c, facilitating the polytetrafluoroethylene high-temperature cloth to continue cleaning the observation window 201a next time, and further improving the cleaning effect of the cleaning plate 202c.
[0059] Importantly, it should be noted that the constructions and arrangements of the present application shown in the various exemplary embodiments are by way of illustration only. Although only a few embodiments have been described in detail in this disclosure, those skilled in the art who review this disclosure will readily appreciate that many modifications are possible (e.g., variations in sizes, dimensions, structures, shapes and proportions of the various elements, values of parameters, mounting arrangements, use of materials, colors, orientations, etc.) without materially departing from the novel teachings and advantages of the subject matter described in this application. For example, elements shown as integrally formed can be constructed of multiple parts or elements, the position of elements can be reversed or otherwise varied, and the nature or number of elements or positions can be altered or varied. Accordingly, all such variations are intended to be included within the scope of the present application. The order or sequence of any process or method steps can be changed or re-sequenced without departing from the scope of the application. Any reference to claim 1 is intended to cover claim 1 and all of the alternatives to claim 1 as if each were individually and alternately stated. Other substitutions, modifications, changes, and omissions can be made in the design, operating conditions and arrangement of the exemplary embodiments without departing from the scope of the application. Accordingly, the present application is not limited to the particular embodiments described in this disclosure, but extends to all alternatives falling within the scope of the appended claims.
[0060] Furthermore, in order to provide a concise description of exemplary embodiments, all features of an actual implementation can not be described (i.e., those unrelated to the best mode of practicing the present application currently being considered, or those unrelated to enabling the present application).
[0061] It is to be understood that in the development of any actual implementation, as in any engineering or design project, numerous implementation-specific decisions can be made. Such development efforts can be complex and time-consuming, but would be a routine undertaking for those of ordinary skill in the art having the benefit of this disclosure.
[0062] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present application and are not limiting. Although the present application has been described in detail with reference to the preferred embodiments, it should be understood by those skilled in the art that the technical solutions of the present application can be modified or replaced equivalently without departing from the spirit and scope of the technical solutions of the present application, and they should be covered in the scope of the claims of the present application.
Claims
1. A furnace door structure based on an automatic intelligent thermal shock device, characterized by: The utility model relates to a heat shock furnace, which comprises a heat shock furnace (100) provided with a placing groove, and a furnace door (200) provided with a cleaning mechanism (202) on the heat shock furnace (100) and a closure (201) on the cleaning mechanism (202), wherein the closure (201) can close the placing groove. The cleaning mechanism (202) comprises a push rod motor (202a) provided on the heat shock furnace (100), and the output end of the push rod motor (202a) is provided with a push plate (202b). The push plate (202b) comprises a push-pull rod (202b-6) rotationally connected to the output end of the push rod motor (202a), and the end of the push-pull rod (202b-6) away from the push rod motor (202a) is rotationally connected with a rotating disc (202b-2).
2. The automatic intelligent thermal shock apparatus based furnace door structure as claimed in claim 1, wherein: The end of the output end of the push rod motor (202a) at the minimum stroke and the end of the output end of the push rod motor (202a) at the maximum stroke are on the same vertical line, and the rotating disc (202b-2) is provided with a bearing (202b-1) fixedly connected to the heat shock furnace (100).
3. The automatic intelligent thermal shock apparatus based furnace door structure according to claim 2, wherein: The outer ring of the bearing (202b-1) away from the heat shock furnace (100) is provided with a connecting rod (202b-4), and the connecting rod (202b-4) is provided with a fixed rod (202b-5).
4. The automatic intelligent thermal shock apparatus based oven door structure according to claim 3, wherein: The distance from the connecting rod (202b-4) and the fixed rod (202b-5) to the closure (201) is shorter than the distance from the rotating disc (202b-2) to the closure (201).
5. The automatic intelligent thermal shock apparatus based oven door structure according to claim 4, wherein: The side of the rotating disc (202b-2) away from the heat shock furnace (100) is provided with an extrusion block (202b-3), and the fixed rod (202b-5) is provided with a cleaning plate (202c).
6. The automatic intelligent thermal shock apparatus based furnace door structure as claimed in claim 5, wherein: The ends of the extrusion block (202b-3) are arc-shaped, and the distance from the side of the cleaning plate (202c) close to the rotating disc (202b-2) to the rotating disc (202b-2) is shorter than the distance from the end of the extrusion block (202b-3) away from the rotating disc (202b-2) to the rotating disc (202b-2).
7. The automatic intelligent thermal shock apparatus based furnace door structure as claimed in claim 6, wherein: A torsion spring is arranged between the cleaning plate (202c) and the connecting rod (202b-4), and the end of the cleaning plate (202c) close to the closure (201) is inclined away from the closure (201) in the normal state.
8. The automatic intelligent thermal shock apparatus based furnace door structure according to claim 7, wherein: The closure (201) comprises a door plate body (201b) provided on the output end of the push rod motor (202a), and the door plate body (201b) is provided with an observation window (201a), and the bottom end of the observation window (201a) is provided with a scraper (201c).
9. The automatic intelligent thermal shock apparatus based furnace door structure as claimed in claim 8, wherein: 10. The automatic intelligent thermal shock apparatus based furnace door structure according to claim 9, wherein: