Oxygen bomb oxygenation ignition electrode device
By introducing a sliding component and a swingable ignition electrode rod into the oxygen bomb ignition electrode device, the problems of operational difficulty and reduced lifespan caused by the fixed ignition electrode in traditional devices are solved, achieving flexible adjustment and efficient ignition effect.
Patent Information
- Application Number
- CN202520663120.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-09
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-04-09
AI Technical Summary
The fixed setting of the ignition electrode in the traditional oxygen bomb ignition electrode device makes it difficult to change its position and angle, which increases the difficulty of operation and the risk of error. It also cannot adapt to different experimental conditions, reducing the service life and safety of the device.
Design an oxygen bomb oxygenation and ignition electrode device, including a sliding component and an ignition electrode rod that can swing left and right. Through the oxygenation mechanism and ignition electrode mechanism integrated on the top of the oxygen bomb, the ignition electrode rod can be flexibly adjusted. Combined with the design of spring and movable groove, the stability and accuracy of sliding and rotation are ensured.
It improves ignition accuracy and stability, simplifies operation procedures, extends the service life of the device, enhances adaptability to complex working conditions and ignition success rate, and ensures reliable ignition of materials inside the oxygen bomb under various conditions.
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Figure CN223924885U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of oxygen bomb ignition technology, specifically to an oxygen bomb oxygen-filling ignition electrode device. Background Technology
[0002] In various combustion experiments, the oxygen bomb ignition electrode device is a key piece of equipment for achieving precise ignition. However, the traditional oxygen bomb ignition electrode device has a relatively simple structure, and its ignition electrode is usually fixed. Once installed, its position and angle are difficult to change, and this design has revealed many problems in practical applications.
[0003] Because the ignition electrode cannot be flexibly adjusted, researchers must expend considerable effort repeatedly adjusting the sample position before experiments to accommodate the fixed ignition electrode, which undoubtedly increases the operational difficulty and risk of error. Furthermore, this structure, in long-term use, cannot adapt to the ignition requirements of different experimental conditions, leading to premature wear of the ignition electrode and reducing the overall lifespan and safety of the device. In summary, the inherent defects of traditional oxygen bomb ignition electrode devices urgently necessitate a completely new design to improve upon them. Utility Model Content
[0004] The purpose of this utility model is to provide an oxygen bomb ignition electrode device to solve the technical problems in the background art, such as "the structure of traditional oxygen bomb ignition electrode devices is relatively simple, and its ignition electrode is usually fixed. Once installed, its position and angle are difficult to change".
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] An oxygen bomb oxygenation and ignition electrode device includes an oxygen bomb, an oxygenation mechanism, and an ignition electrode mechanism; the oxygenation mechanism is located on the top of the oxygen bomb and is used for oxygenating the oxygen bomb; the ignition electrode mechanism is located on the oxygenation mechanism and is used for igniting the substances inside the oxygen bomb.
[0007] The ignition electrode mechanism includes an electrode base, a sliding assembly, and an ignition electrode rod;
[0008] The electrode holder is fixed on the oxygen filling mechanism. A sliding guide rod is provided on the top of the electrode holder and is arranged perpendicular to the top surface of the electrode holder. The sliding component is provided on the sliding guide rod and can slide up and down relative to the sliding guide rod. The ignition electrode rod is provided on the sliding component and is movably connected to the sliding component. The ignition electrode rod can swing left and right relative to the sliding component.
[0009] The above technical solution has the following advantages: Compared with the prior art, an oxygen bomb ignition electrode device has made effective improvements to the overall structure and assembly method of the ignition electrode mechanism. By integrating the oxygen charging mechanism and the ignition electrode mechanism on the top of the oxygen bomb, the device structure is simplified, making it easier to operate and maintain. In this oxygen bomb ignition electrode device, the sliding component of the ignition electrode mechanism can slide up and down along the sliding guide rod provided on the electrode seat, and the ignition electrode rod can swing left and right relative to the sliding component, so that the ignition electrode rod can be flexibly adjusted in position, improving ignition accuracy and stability.
[0010] In a preferred embodiment, the sliding assembly includes an electrode rod slider, an electrode rod pressure plate, and a first spring;
[0011] The electrode rod slider is provided with a sliding hole that matches the sliding guide rod. The electrode rod slider is disposed on the sliding guide rod through the sliding hole and can slide up and down relative to the sliding guide rod. The electrode rod pressure plate is fixed to the top of the sliding guide rod, and the first spring is disposed on the sliding guide rod. The first spring is disposed between the electrode rod slider and the electrode rod pressure plate.
[0012] The above technical solution has the following advantages: The electrode rod slider is adapted to the sliding guide rod through the sliding hole, enabling flexible up and down sliding, which provides a basis for adjusting the position of the ignition electrode rod. The electrode rod pressure plate is fixed on the top of the sliding guide rod and cooperates with the first spring. The first spring is located between the electrode rod slider and the electrode rod pressure plate. This structure allows the electrode rod slider to be subjected to the elastic action of the first spring during the sliding process, which can buffer the sliding impact to a certain extent, ensure the smoothness of the sliding, and avoid position deviation caused by sudden sliding. At the same time, the presence of the spring can also provide a continuous and stable support force for the ignition electrode rod during the operation of the device, further ensuring the stability of the ignition electrode rod after the position is adjusted, thereby improving the ignition accuracy and ensuring reliable ignition of the material inside the oxygen bomb.
[0013] In a preferred embodiment, the electrode rod slider is provided with a first movable groove, the ignition electrode rod is disposed in the first movable groove (5), and the ignition electrode rod is movably connected to the first movable groove through a rotating shaft.
[0014] The above technical solution has the following advantages: By setting a first movable groove on the electrode rod slider, and movably connecting the ignition electrode rod to the first movable groove via a rotating shaft, this design gives the ignition electrode rod additional degrees of freedom. The ignition electrode rod can rotate flexibly within the first movable groove with the rotating shaft as the center, allowing it to adjust the ignition angle more precisely according to different ignition requirements and the positional distribution of the material in the oxygen bomb. This greatly improves the adaptability of the ignition electrode to complex working conditions, further enhances the accuracy and reliability of the ignition operation, and ensures that the material in the oxygen bomb can be effectively ignited under various conditions.
[0015] In a preferred embodiment, the ignition electrode rod is provided with a first through hole, and the first movable groove is provided with a second through hole that matches the first through hole. The ignition electrode rod is movably connected to the electrode rod slider by passing through the second through hole and the first through hole in sequence via a rotating shaft.
[0016] The above technical solution has the following advantages: By providing a first through hole on the ignition electrode rod and a matching second through hole on the first movable groove, and by having the rotating shaft pass through the second through hole and the first through hole in sequence to be movably connected to the electrode rod slider, the smoothness of the rotation of the ignition electrode rod is ensured, and the stability of the connection is greatly improved. In actual operation, the stable connection can effectively prevent the ignition electrode rod from loosening due to vibration, displacement, or other factors, ensuring that it can always rotate flexibly in the preset manner, accurately adjust the ignition angle, and thus better adapt to complex working conditions. This comprehensively improves the accuracy and reliability of the ignition operation, further ensuring that the material inside the oxygen bomb can be effectively ignited under various conditions.
[0017] In a preferred embodiment, the electrode holder is provided with a second movable groove, which is located below the first movable groove. The ignition electrode rod is disposed in the first and second movable grooves, and the ignition electrode rod can swing left and right relative to the first and second movable grooves.
[0018] The above technical solution has the following beneficial effects: By setting a second movable groove in the electrode holder, and placing the second movable groove below the first movable groove, the ignition electrode rod is simultaneously located in both the first and second movable grooves and can swing left and right relative to both. This adds a new dimension to the movement of the ignition electrode rod. On the one hand, the design of the double movable grooves provides more stable support and guidance for the ignition electrode rod structurally. Even under strong vibrations or complex external forces generated during device operation, it can prevent the ignition electrode rod from excessively shifting or shaking, greatly improving the stability of the ignition electrode during operation. On the other hand, the left and right swinging function further enriches the adjustment methods of the ignition electrode rod. Operators can adjust the ignition position more precisely according to the actual distribution of the material in the oxygen bomb, effectively expanding the effective range of the ignition electrode. This allows the ignition operation to accurately cover the material in different areas of the oxygen bomb, significantly improving the ignition success rate and ensuring that the material in the oxygen bomb can be successfully ignited under various complex experimental conditions. This powerfully promotes the efficient operation of the oxygen bomb ignition electrode device in different application scenarios.
[0019] In a preferred embodiment, the electrode rod pressure plate is further provided with a second spring, which is disposed between the electrode rod pressure plate and the top of the ignition electrode rod.
[0020] The above technical solution offers the following benefits: During the installation of the oxygen bomb, the second spring located between the electrode rod pressure plate and the top of the ignition electrode rod plays a crucial role. Due to potential operational errors during oxygen bomb installation or the influence of minor vibrations in the installation environment, the ignition electrode rod and the top of the oxygen bomb are prone to rigid contact and collision. In this case, the second spring acts as a flexible buffer, cleverly achieving a flexible connection between the ignition electrode rod and the top of the oxygen bomb. When the two come into contact, the second spring can quickly absorb the instantaneous impact force generated by the installation action through its own elastic deformation, greatly mitigating the risk of damage caused by rigid collisions. This not only avoids deformation and damage to the ignition electrode rod due to installation impacts, extending its service life, but also ensures that the ignition electrode rod maintains a precise initial position after installation, laying a solid foundation for the high-precision implementation of subsequent ignition operations. This buffering and flexible connection characteristic effectively improves the stability and reliability of the oxygen bomb installation process, enabling the entire oxygen bomb ignition electrode device to be successfully assembled and operate efficiently in different installation scenarios, providing strong support for related experiments and applications.
[0021] In a preferred embodiment, the sliding guide rods are provided in a plurality of ways, and the sliding guide rods are symmetrically arranged on the top of the electrode base.
[0022] The above technical solution has the following advantages: By setting several sliding guide rods symmetrically on the top of the electrode seat, it is ensured that multiple sliding guide rods can provide more uniform and stable support for the electrode rod slider. When the electrode rod slider is subjected to external forces in different directions during the up and down sliding process, the symmetrically distributed sliding guide rods can work together to effectively disperse the force and prevent the electrode rod slider from jamming or tilting due to uneven force. This greatly improves the smoothness and fluidity of the sliding process. At the same time, the symmetrical arrangement enhances the symmetry and balance of the entire structure, so that the movement accuracy and stability of the ignition electrode rod in all directions can be effectively guaranteed when adjusting its position.
[0023] In a preferred embodiment, the electrode holder and the oxygen filling mechanism are fastened together by bolts.
[0024] The above technical solution has the following advantages: By using bolts to fasten the electrode holder and the oxygen filling mechanism, the connection operation is simple and requires no complicated tools or professional skills. Installers can quickly assemble the electrode holder and the oxygen filling mechanism using only common tools such as wrenches, which greatly improves assembly efficiency and reduces labor costs. In terms of connection stability, bolt fastening provides strong clamping force to ensure that the electrode holder and the oxygen filling mechanism are tightly fixed together, effectively resisting various vibrations, impacts and internal pressure changes generated during device operation, preventing loosening or displacement between the two, ensuring the stability of the entire ignition electrode device structure, and providing a reliable guarantee for the smooth operation of ignition. Attached Figure Description
[0025] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0026] Figure 1 A cross-sectional view of the oxygen bomb oxygen-filling and ignition electrode device provided by this utility model.
[0027] Figure 2 A three-dimensional schematic diagram of the ignition electrode mechanism provided by this utility model;
[0028] Figure 3 A three-dimensional schematic diagram of the ignition electrode mechanism provided by this utility model;
[0029] Figure 4 This is a front view schematic diagram of the ignition electrode mechanism provided by this utility model;
[0030] Figure 5 A front sectional view of the ignition electrode mechanism provided by this utility model;
[0031] Figure 6 A three-dimensional schematic diagram of the ignition electrode rod provided by this utility model;
[0032] Figure 7 A three-dimensional schematic diagram of the electrode rod slider provided by this utility model;
[0033] Explanation of reference numerals in the attached figures;
[0034] 1-Oxygen bomb; 2-Oxygen filling mechanism; 3-Ignition electrode mechanism; 31-Electrode seat; 311-Sliding guide rod; 32-Sliding assembly; 321-Electrode rod slider; 322-Electrode rod pressure plate; 323-First spring; 33-Ignition electrode rod; 332-First through hole; 333-Second through hole; 4-Sliding hole; 5-First movable groove; 6-Second movable groove; 7-Second spring. Detailed Implementation
[0035] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0036] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0037] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.
[0038] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0039] In this utility model, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0040] Example 1
[0041] like Figures 1 to 7 As shown, an oxygen bomb charging and ignition electrode device includes an oxygen bomb 1, an oxygen charging mechanism 2, and an ignition electrode mechanism 3; the oxygen charging mechanism 2 is located on the top of the oxygen bomb 1 and is used to charge the oxygen bomb 1 with oxygen; the ignition electrode mechanism 3 is located on the oxygen charging mechanism 2 and is used to ignite the substance inside the oxygen bomb 1.
[0042] The ignition electrode mechanism 3 includes an electrode base 31, a sliding assembly 32, and an ignition electrode rod 33;
[0043] The electrode holder 31 is fixed on the oxygen filling mechanism 2. A sliding guide rod 311 is provided on the top of the electrode holder 31, and the sliding guide rod 311 is set perpendicular to the top surface of the electrode holder 31. A sliding component 32 is provided on the sliding guide rod 311, and the sliding component 32 can slide up and down relative to the sliding guide rod 311. An ignition electrode rod 33 is provided on the sliding component 32, and the ignition electrode rod 33 is movably connected to the sliding component 32. The ignition electrode rod 33 can swing left and right relative to the sliding component 32. By integrating the oxygen filling mechanism 2 and the ignition electrode mechanism 3 on the top of the oxygen bomb 1, the device structure is simplified, making it easy to operate and maintain. In this oxygen bomb ignition electrode device, the sliding component 32 of the ignition electrode mechanism 3 can slide up and down along the sliding guide rod 311 provided on the electrode holder 31, and the ignition electrode rod 33 can swing left and right relative to the sliding component 32, so that the ignition electrode rod 33 can be flexibly adjusted in position, improving ignition accuracy and stability.
[0044] In this embodiment, the sliding component 32 includes an electrode rod slider 321, an electrode rod pressure plate 322, and a first spring 323;
[0045] The electrode rod slider 321 is provided with a sliding hole 4 that matches the sliding guide rod 311. The electrode rod slider 321 is mounted on the sliding guide rod 311 through the sliding hole 4, and the electrode rod slider 321 can slide up and down relative to the sliding guide rod 311. The electrode rod pressure plate 322 is fixed to the top of the sliding guide rod 311, and the first spring 323 is mounted on the sliding guide rod 311. The first spring 323 is positioned between the electrode rod slider 321 and the electrode rod pressure plate 322. The electrode rod slider 321 matches the sliding guide rod 311 through the sliding hole 4, enabling flexible up and down sliding, providing a basis for adjusting the position of the ignition electrode rod 33. The electrode rod pressure plate 322 is fixed to... The top of the sliding guide rod 311 cooperates with the first spring 323, which is located between the electrode rod slider 321 and the electrode rod pressure plate 322. This structure allows the electrode rod slider 321 to be subjected to the elastic action of the first spring 323 during sliding, which can buffer the sliding impact to a certain extent, ensure the smoothness of sliding, and avoid positional deviation caused by sudden sliding. At the same time, the presence of the spring can also provide a continuous and stable support force for the ignition electrode rod 33 during device operation, further ensuring the stability of the ignition electrode rod 33 after position adjustment, thereby improving ignition accuracy and ensuring reliable ignition of the material inside the oxygen bomb.
[0046] In this embodiment, the electrode rod slider 321 is provided with a first movable groove 5, and the ignition electrode rod 33 is disposed in the first movable groove 5. The ignition electrode rod 33 is movably connected to the first movable groove 5 through a rotating shaft. By providing the first movable groove 5 on the electrode rod slider 321 and the ignition electrode rod 33 being movably connected to the first movable groove 5 through a rotating shaft, this design gives the ignition electrode rod 33 additional degrees of freedom. The ignition electrode rod 33 can rotate flexibly in the first movable groove 5 with the rotating shaft as the center, so that it can adjust the ignition angle more precisely according to different ignition requirements and the positional distribution of the material in the oxygen bomb. This greatly improves the adaptability of the ignition electrode to complex working conditions, further enhances the accuracy and reliability of the ignition operation, and ensures that the material in the oxygen bomb can be effectively ignited under various conditions.
[0047] In this embodiment, the ignition electrode rod 33 is provided with a first through hole 332, and the first movable groove 5 is provided with a second through hole 333 that matches the first through hole 332. The ignition electrode rod 33 is movably connected to the electrode rod slider 321 by passing through the second through hole 333 and the first through hole 332 in sequence via a rotating shaft. By providing a first through hole 332 on the ignition electrode rod 33 and a second through hole 333 that matches the first movable groove 5, and by movably connecting the rotating shaft through the second through hole 333 and the first through hole 332 in sequence to the electrode rod slider 321, the smoothness of the rotation of the ignition electrode rod 33 is ensured, and the stability of the connection is greatly improved. In actual operation, the stable connection can effectively prevent the ignition electrode rod 33 from loosening due to vibration, displacement, or other factors, ensuring that it can always rotate flexibly in the preset manner, accurately adjust the ignition angle, and thus better adapt to complex working conditions. This comprehensively improves the accuracy and reliability of the ignition operation, further ensuring that the material inside the oxygen bomb can be effectively ignited under various conditions.
[0048] In this embodiment, the electrode holder 31 is provided with a second movable groove 6, which is located below the first movable groove 5. The ignition electrode rod 33 is disposed in both the first movable groove 5 and the second movable groove 6, and can swing left and right relative to both. By providing the second movable groove 6 within the electrode holder 31, and with the second movable groove 6 located below the first movable groove 5, and the ignition electrode rod 33 simultaneously disposed in both the first and second movable grooves, and able to swing left and right relative to both, a new dimension is added to the movement of the ignition electrode rod 33. On the one hand, the double movable groove design provides a more stable support and guidance for the ignition electrode rod 33 structurally. Even under strong vibrations or complex external forces during device operation, the ignition electrode rod 33 is prevented from excessively shifting or shaking, greatly improving the stability of the ignition electrode during operation. On the other hand, the left-right swing function further enriches the adjustment methods of the ignition electrode rod 33. Operators can adjust the ignition position more precisely according to the actual distribution of the material inside the oxygen bomb, effectively expanding the effective range of the ignition electrode. This allows the ignition operation to accurately cover the material in different areas inside the oxygen bomb, significantly improving the ignition success rate and ensuring that the material inside the oxygen bomb can be successfully ignited under various complex experimental conditions. This powerfully promotes the efficient operation of the oxygen bomb ignition electrode device in different application scenarios.
[0049] In this embodiment, a second spring 7 is also provided on the electrode rod pressure plate 322. The second spring 7 is positioned between the electrode rod pressure plate 322 and the top of the ignition electrode rod 33. During the installation of the oxygen bomb 1, the second spring 7 located between the electrode rod pressure plate 322 and the top of the ignition electrode rod 33 plays a crucial role. Due to potential operational errors during the installation of the oxygen bomb 1, or the influence of minor vibrations in the installation environment, the ignition electrode rod 33 and the top of the oxygen bomb 1 are prone to rigid contact and collision. At this time, the second spring 7 acts as a flexible buffer medium, cleverly achieving a flexible connection between the ignition electrode rod 33 and the top of the oxygen bomb 1. When the two come into contact, the second spring... 7. With its own elastic deformation, it can quickly absorb the instantaneous impact force generated by the installation action, greatly mitigating the risk of damage caused by rigid collisions. This not only avoids deformation and damage to the ignition electrode rod 33 due to installation impact and extends its service life, but also ensures that the ignition electrode rod 33 can maintain a precise initial position after installation, laying a solid foundation for the high-precision implementation of subsequent ignition operations. This buffering and flexible connection characteristic effectively improves the stability and reliability of the oxygen bomb 1 installation process, enabling the entire oxygen bomb ignition electrode device to be successfully assembled and operate efficiently in different installation scenarios, providing strong support for related experiments and applications.
[0050] In this embodiment, a number of sliding guide rods 311 are provided, and the sliding guide rods 311 are symmetrically arranged on the top of the electrode seat 31. By providing a number of sliding guide rods 311 symmetrically arranged on the top of the electrode seat 31, it is ensured that multiple sliding guide rods 311 can provide more uniform and stable support for the electrode rod slider 321. When the electrode rod slider 321 is subjected to external forces in different directions during the up and down sliding process, the symmetrically distributed sliding guide rods 311 can work together to effectively disperse the force and prevent the electrode rod slider 321 from getting stuck or tilting due to uneven force. This greatly improves the smoothness and fluidity of the sliding process. At the same time, the symmetrical arrangement enhances the symmetry and balance of the entire structure, so that the movement accuracy and stability of the ignition electrode rod 33 in all directions can be effectively guaranteed when adjusting its position.
[0051] In this embodiment, the electrode holder 31 and the oxygen filling mechanism 2 are fastened together by bolts. By using bolts to fasten the electrode holder 31 and the oxygen filling mechanism 2, the connection operation is simple and does not require complicated tools or professional skills. The installer only needs to use common tools such as wrenches to quickly complete the assembly of the electrode holder 31 and the oxygen filling mechanism 2, which greatly improves the assembly efficiency, reduces labor costs, and provides strong fastening force to ensure that the electrode holder 31 and the oxygen filling mechanism 2 are tightly fixed together. This effectively resists various vibrations, impacts and internal pressure changes generated during the operation of the device, and prevents loosening or displacement between the two. This ensures that the entire ignition electrode device structure is stable and provides a reliable guarantee for the smooth operation of ignition.
[0052] It should be noted that, in this document, the terms “comprising,” “including,” or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0053] This article uses specific examples to illustrate the principles and implementation methods of this utility model. The above examples are only used to help understand the method and core ideas of this utility model.
[0054] The above are merely preferred embodiments of this utility model. It should be noted that, due to the limitations of written expression, and the existence of an infinite number of specific structures, those skilled in the art can make several improvements, modifications, or variations without departing from the principle of this utility model, and can also combine the above-mentioned technical features in an appropriate manner. These improvements, modifications, variations, or combinations, or the direct application of the concept and technical solution of the utility model to other occasions without modification, should all be considered as protection of this utility model.
Claims
1. An oxygen bomb oxygenation ignition electrode device, characterized by, The application relates to a kind of oxygen bomb ignition electrode mechanism, including oxygen bomb (1), oxygen filling mechanism (2) and ignition electrode mechanism (3);The oxygen filling mechanism (2) is arranged at the top of the oxygen bomb (1), and is used for oxygen bomb (1) oxygen filling;The ignition electrode mechanism (3) is arranged on the oxygen filling mechanism (2), and is used for ignition operation to the substance in the oxygen bomb (1); The ignition electrode mechanism (3) includes electrode holder (31), sliding assembly (32) and ignition electrode rod (33); The electrode holder (31) is fixed on the oxygen filling mechanism (2), and the electrode holder (31) is provided with a sliding guide rod (311) at the top, which is vertically arranged on the top surface of the electrode holder (31);The sliding assembly (32) is arranged on the sliding guide rod (311), and the sliding assembly (32) can slide up and down relative to the sliding guide rod (311);The ignition electrode rod (33) is arranged on the sliding assembly (32), and the ignition electrode rod (33) is movably connected with the sliding assembly (32), and the ignition electrode rod (33) can swing left and right relative to the sliding assembly (32).
2. A bomb oxygenation ignition electrode device according to claim 1, characterized in that, The sliding assembly (32) includes electrode rod sliding block (321), electrode rod pressing plate (322) and first spring (323); The electrode rod sliding block (321) is provided with a sliding hole (4) matched with the sliding guide rod (311), and the electrode rod sliding block (321) is arranged on the sliding guide rod (311) through the sliding hole (4), and the electrode rod sliding block (321) can slide up and down relative to the sliding guide rod (311);The electrode rod pressing plate (322) is fixed on the top of the sliding guide rod (311), and the first spring (323) is arranged on the sliding guide rod (311), and the first spring (323) is arranged between the electrode rod sliding block (321) and the electrode rod pressing plate (322).
3. A bomb oxygenation ignition electrode device according to claim 2, characterized in that, The electrode rod sliding block (321) is provided with a first movable groove (5), and the ignition electrode rod (33) is arranged in the first movable groove (5), and the ignition electrode rod (33) is movably connected with the first movable groove (5) through a rotating shaft.
4. A bomb oxygenation ignition electrode device according to claim 3, characterized in that, The ignition electrode rod (33) is provided with a first through hole (332), and the first movable groove (5) is provided with a second through hole (333) matched with the first through hole (332), and the ignition electrode rod (33) is movably connected with the electrode rod sliding block (321) through a rotating shaft in sequence through the second through hole (333) and the first through hole (332).
5. A bomb oxygenation ignition electrode device according to claim 4, characterized in that, The electrode holder (31) is provided with a second movable groove (6), and the second movable groove (6) is located below the first movable groove (5), and the ignition electrode rod (33) is arranged in the first movable groove (5) and the second movable groove (6), and the ignition electrode rod (33) can swing left and right relative to the first movable groove (5) and the second movable groove (6).
6. A bomb oxygenation ignition electrode device according to claim 2, wherein The electrode rod pressing plate (322) is further provided with a second spring (7), and the second spring (7) is arranged between the electrode rod pressing plate (322) and the top of the ignition electrode rod (33).
7. The oxygen bomb oxygenation ignition electrode apparatus of claim 1, wherein, The sliding guide rod (311) The number of sliding guide rods (311) is set in several, and the sliding guide rods (311) are symmetrically arranged on the top of the electrode seat (31).
8. The oxygen bomb oxygenation ignition electrode apparatus of claim 1, wherein, The electrode holder (31) and the oxygen filling mechanism (2) are fastened together by bolts.