Ignition control device pipeline for outdoor stove and outdoor stove
The independent dual-pipe structure design solves the problems of bulkiness, safety hazards and aesthetics of outdoor stove ignition control devices, and improves portability and safety.
Patent Information
- Application Number
- CN202422768252.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-13
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-11-13
AI Technical Summary
The ignition control device pipeline design of existing outdoor stoves is bulky and not portable. The gas pipeline and ignition line are arranged in the same pipeline, which poses a safety hazard and has poor aesthetics.
An independent dual-pipeline structure design is adopted. The first pipe is used for gas transportation, and the second pipe is equipped with a wire cavity for ignition wire arrangement. The connection part and sealing assembly enhance stability and safety, and the protective tube provides additional protection.
The safety and stability of the device are improved, the space occupied is reduced, the device is easy to carry and store, and the aesthetics and user experience are improved.
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Figure CN223375865U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of outdoor stove equipment, in particular to an ignition control device pipeline for an outdoor stove and the outdoor stove. Background Art
[0002] In modern outdoor activities, portable outdoor stoves are widely used due to their high efficiency and convenience. As one of the core components of outdoor stoves, the design of the ignition control device (such as a cassette gas tank adapter, converter, etc.) has a direct impact on user experience and safety. Currently, the common ignition control device pipelines on the market usually install the gas output pipeline and ignition wire in the same assembly pipeline. Although this design unifies the pipelines and simplifies the assembly structure, it also brings some significant shortcomings.
[0003] First of all, this integrated pipe design often results in a bulky and large overall structure, which makes it difficult to meet users' needs for portability and lightweight. This is particularly inconvenient in outdoor activities that require long-distance travel, because the larger device takes up too much backpack space, increasing the burden of carrying.
[0004] Secondly, placing the gas pipeline and ignition line in the same pipe may lead to certain safety hazards. During long-term use, if the pipeline is worn or improperly connected, gas leakage or ignition failure may occur.
[0005] Finally, from an aesthetic point of view, the traditional integrated design often appears clumsy and cannot be well matched with other outdoor equipment. In the modern market that pursues personalization and fashion, this design is difficult to meet the aesthetic needs of users.
[0006] The present invention is proposed in view of the deficiencies in the prior art. Utility Model Content
[0007] The existing integrated pipe design mentioned above often results in a bulky and heavy overall structure, making it difficult to meet user demands for portability and lightweightness. Furthermore, routing the gas pipe and ignition line together can pose safety risks. Over long-term use, pipe wear or improper connections can easily lead to gas leaks or ignition failures.
[0008] The technical solution adopted by the utility model to solve its technical problems is:
[0009] A pipe for an ignition control device of an outdoor stove includes a pipe assembly, wherein the pipe assembly includes a first pipe and a second pipe, one end of the first pipe is connected to the gas output end of the ignition control device, and the other end of the first pipe is connected to the burner of the outdoor stove; a wire passage cavity is provided in the second pipe, and the wire passage cavity is used for allowing an ignition wire of the ignition control device to pass through and extend to the ignition structure of the outdoor stove for connection.
[0010] In the above-mentioned ignition control device pipe for an outdoor stove, the first pipe and the second pipe are arranged adjacent to each other.
[0011] In the ignition control device pipe for an outdoor stove as described above, the pipe assembly further includes a connecting portion provided between the first pipe and the second pipe.
[0012] As described above, the ignition control device pipe for an outdoor stove has a cross-sectional shape of the pipe component that is similar to an "8" shape, or a cross-sectional shape of the pipe component that is similar to an ellipse.
[0013] As described above, the ignition control device pipe for an outdoor stove, the pipe assembly is an integrally formed structure.
[0014] As described above, an ignition control device pipe for an outdoor stove further includes a sealing assembly, which includes a first sealing joint and a first connecting and fixing sleeve. The first sealing joint is connected to the end of the first pipe, and the first connecting and fixing sleeve is covered on the outside of the connection between the first sealing joint and the first pipe.
[0015] In the ignition control device pipe for an outdoor stove as described above, the sealing assembly further includes a second connecting and fixing sleeve, which is covered on the outside of the end of the second pipe.
[0016] In the ignition control device pipe for an outdoor stove as described above, the first connecting and fixing sleeve is communicated with the second connecting and fixing sleeve.
[0017] The ignition control device pipe for an outdoor stove as described above further includes a protective tube sleeved on the outside of the pipe assembly.
[0018] An outdoor stove comprises a stove body, a burner, an ignition device, an ignition control device and an ignition control device pipe of the outdoor stove as described in any one of the above items, wherein the burner and the ignition device are both arranged on the stove body, and the ignition device is arranged on one side of the burner; the ignition control device is provided with an assembly portion that can be connected to a gas tank and an ignition wire connecting portion that can be connected to an ignition wire; the two ends of the ignition wire can respectively pass through the two ends of the wire cavity and be electrically connected to the ignition device and the ignition wire connecting portion; the gas output end of the ignition control device is connected to one end of a first pipe, and the burner is connected to the other end of the first pipe.
[0019] The beneficial effects of the utility model are:
[0020] The utility model discloses an ignition control device pipe for an outdoor stove and an outdoor stove, which relate to the technical field of outdoor stove equipment. The ignition control device pipe includes a first pipe and a second pipe. The first pipe is dedicated to the transportation of gas, and the second pipe is provided with a wire passage cavity, which is dedicated to the arrangement of the ignition wire. An independent double-pipe structure design is adopted, which is used for gas transportation and the arrangement of the ignition wire respectively. By separating the ignition wire from the gas pipeline, the mutual interference between the two can be effectively avoided, thereby improving the safety and stability of the device. The design of the wire passage cavity enables the ignition wire to pass through smoothly and perform reasonable wiring, thereby simplifying the installation and maintenance of the device. The design of the double-pipe structure not only solves the problem of large size and unsightly appearance in traditional integrated designs, but also improves the portability of the pipe. The pipe can be flexibly arranged and fixed according to actual needs, thereby reducing the space occupied by the overall device and making it convenient for users to carry and store.
[0021] The present invention will be further described below with reference to the accompanying drawings and specific implementation methods. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 This is a schematic diagram of the structure of the ignition control device pipeline of the utility model;
[0023] Figure 2 This is an exploded schematic diagram of the ignition control device pipeline of the present utility model;
[0024] Figure 3 This is an exploded and partially enlarged schematic diagram of the ignition control device pipeline of the present invention;
[0025] Figure 4 It is a side view schematic diagram of the ignition control device pipeline of the utility model;
[0026] Figure 5 for Figure 4 Schematic cross-sectional view along line AA and a partially enlarged schematic view;
[0027] Figure 6This is a structural diagram of the ignition control device pipeline and outdoor stove of the present invention;
[0028] Figure 7 This is an exploded schematic diagram of the ignition control device pipeline and outdoor stove of the present invention. DETAILED DESCRIPTION
[0029] The following describes the embodiments of the present invention in detail with reference to the accompanying drawings.
[0030] like Figures 1 to 7 As shown, a pipe of an ignition control device for an outdoor stove in this embodiment includes a pipe assembly 100, wherein the pipe assembly 100 includes a first pipe 1 and a second pipe 2, wherein one end of the first pipe 1 is connected to the gas output end of the ignition control device, and the other end of the first pipe 1 is connected to the burner of the outdoor stove; a wire cavity 21 is provided in the second pipe 2, and the wire cavity 21 is used for the ignition wire of the ignition control device to pass through and extend to the ignition structure of the outdoor stove for connection.
[0031] Preferably, this embodiment provides an ignition control device pipeline for an outdoor stove, which adopts an independent double-pipe structure design, respectively used for gas delivery and ignition line arrangement.
[0032] Specifically, the pipeline assembly 100 includes a first pipeline 1 and a second pipeline 2. The first pipeline 1 is dedicated to the transportation of gas. One end of the first pipeline is reliably connected to the gas output end of the ignition control device, and the other end is connected to the burner of the outdoor stove to ensure that the gas can be smoothly and safely transported to the burner for combustion.
[0033] The second pipe 2 is provided with a wire-passing cavity 21, which is specifically used for the arrangement of the ignition wire. By separating the ignition wire from the gas pipeline, the mutual interference between the two can be effectively avoided, thereby improving the safety and stability of the device. The design of the wire-passing cavity 21 enables the ignition wire to pass through smoothly and perform reasonable wiring, thereby simplifying the installation and maintenance of the device.
[0034] The design of the dual-pipe structure realizes the separation of gas transmission and ignition line layout, optimizes the structure and function of the outdoor stove ignition control device, and not only solves the problem of large size and unsightly appearance in the traditional integrated design, but also improves the portability of the pipeline. The pipeline can be flexibly arranged and fixed according to actual needs, reducing the space occupied by the overall device, making it easier for users to carry and store, and improving the safety, aesthetics and user experience of the product.
[0035] like Figures 1 to 7As shown, the first pipe 1 and the second pipe 2 of this embodiment are arranged adjacent to each other. By arranging the two pipes adjacent to each other, the structure of the entire ignition control device pipe is more compact. Compared with separating the two pipes at a large distance, this design can effectively reduce the distance between the two pipes, thereby reducing the volume of the entire device and improving portability.
[0036] Specifically, the adjacent pipes make installation and wiring easier, and users can operate more intuitively when connecting gas pipes and arranging ignition wires, which reduces the complexity of the installation process and helps improve installation efficiency.
[0037] Furthermore, adjacently arranged pipes can be more unified and harmonious in appearance design, thereby enhancing the aesthetics of the entire device.
[0038] Furthermore, by setting them adjacent to each other instead of merging them into the same pipeline, the mutual interference between the gas pipeline and the ignition line can be effectively reduced, thereby improving the safety performance and stability of the device.
[0039] like Figures 1 to 7 As shown, the pipeline assembly 100 of this embodiment further includes a connecting portion 3 provided between the first pipeline 1 and the second pipeline 2 .
[0040] Preferably, the provision of the connecting portion 3 can effectively enhance the connection stability between the first pipeline 1 and the second pipeline 2, and strengthen the structural stability of the two pipelines.
[0041] Furthermore, the connecting portion 3 can provide an additional fixing point for the two pipes, making the arrangement of the ignition wire more reasonable and standardized. Through the connecting portion and the wire cavity, the ignition wire can be better guided to avoid problems such as crossing and entanglement, thereby improving overall work efficiency.
[0042] Furthermore, the presence of the connecting portion 3 can provide a kind of structural integrity visually, making the entire pipeline assembly look neater and more unified, thereby improving the appearance quality of the product.
[0043] Furthermore, the presence of the connecting portion 3 enables a certain distance to be maintained between the end of the first pipe and the end of the second pipe, thereby ensuring that the ends of the first pipe and the second pipe do not affect each other.
[0044] Specifically, by maintaining a certain distance between the two pipelines, possible electromagnetic interference or thermal interference between the two pipeline ends can be effectively reduced. In addition, a certain distance allows each pipeline to be operated and maintained in a relatively independent environment, reducing the complexity and failure rate caused by the influence of adjacent operations.
[0045] like Figures 1 to 7 As shown, the connecting portion 3 of this embodiment includes connecting sections connected to the first pipe 1 and the second pipe 2 respectively.
[0046] The design of the connecting segments is generally simple, which simplifies the construction of the entire pipe assembly and reduces manufacturing cost and time.
[0047] Preferably, the connecting section can be designed to have different lengths and shapes according to the lengths of the two pipes to adapt to different pipe layouts and installation requirements, so that the pipe system can better adapt to various space limitations and environmental conditions.
[0048] Preferably, the connecting section can help keep the pipeline system neat and beautiful, and avoid the clutter that may be caused by direct connection between pipelines.
[0049] Preferably, the connecting section can help disperse stress in the pipeline system, thereby reducing the risk of pipeline damage caused by stress concentration.
[0050] Preferably, in this embodiment, the cross-sectional shape of the pipeline component 100 is elliptical. Specifically, the cross-sectional shape of the pipeline component 100 is an elliptical double-channel cross-section.
[0051] The pipe assembly 100 adopts an elliptical cross-sectional design, which can accommodate two independent channels in a limited space. This is particularly beneficial for space-constrained environments and can achieve a more compact pipe layout.
[0052] Furthermore, although the two pipes share the overall structure of a pipe assembly 100, they are still relatively independent in cross section. This design helps to independently control and manage the fluid, temperature, pressure and other parameters of the two channels when needed, and this design can make the structure of the pipe assembly 100 more stable.
[0053] In other embodiments, the cross-sectional shape of the pipe assembly 100 is similar to an "8" shape. Specifically, the cross-sectional shape of the pipe assembly 100 is an "8" double-channel cross-section.
[0054] The pipe assembly 100 adopts an "8"-shaped cross-section design, which can accommodate two independent channels in a limited space. This is particularly beneficial for space-constrained environments and can achieve a more compact pipe layout.
[0055] Furthermore, the “8”-shaped cross-section design of the pipe assembly 100 generally has good structural strength, which helps to improve the pressure resistance and deformation resistance of the pipe assembly under operating conditions.
[0056] Furthermore, this cross-sectional shape design may have natural shock-absorbing properties, because the combination of the two channels can disperse and absorb certain vibrations and impacts, thereby improving the overall stability of the system. The appropriate design can be selected according to actual needs.
[0057] like Figures 1 to 7 As shown, the pipeline assembly 100 of this embodiment is an integrally molded structure. Specifically, the integrally molded structure does not have multiple connecting parts, thereby reducing potential leakage points. This is especially important for pipeline systems that transport liquids or gases, and helps to improve the overall sealing and safety of the system.
[0058] Furthermore, the one-piece molded structure generally has better mechanical strength and rigidity, which enables the piping assembly to withstand higher pressures and loads.
[0059] Furthermore, since there are no separate parts to assemble, the one-piece pipe assembly is easier to install, reducing installation time and labor costs. In addition, there is no need to check multiple connection points during maintenance, which simplifies the maintenance process.
[0060] Furthermore, the one-piece design is usually more aesthetically pleasing, and the shape can be optimized as needed to improve space utilization.
[0061] Furthermore, components produced through one-piece molding processes (such as injection molding, extrusion molding, etc.) usually have good dimensional consistency and quality stability, which helps to improve product reliability.
[0062] Preferably, the first pipe 1, the second pipe 2 and the connecting portion 3 (i.e., the connecting section) in this embodiment are an integrally formed structure. The first pipe, the second pipe and the connecting portion can be manufactured simultaneously through an integrally formed process, which reduces production steps and time and improves production efficiency.
[0063] The one-piece molded structure eliminates the connection points between different components, thereby improving the strength and stability of the overall structure. The presence of the connection part increases the support between the two pipes, making the entire assembly more sturdy and durable.
[0064] Since the pipeline and the connecting part are integrally formed, potential leakage points of the first pipeline are reduced, and the sealing and safety of the system are improved.
[0065] The one-piece assembly reduces the number of separate parts that need to be installed and maintained, simplifies the installation process of the duct assembly 100, and reduces maintenance complexity and cost.
[0066] In other embodiments, the pipeline assembly 100 includes a first pipeline 1 and a second pipeline 2, and the first pipeline 1 and the second pipeline 2 are integrally formed, eliminating the structure of the connecting portion 3, making the design of the pipeline assembly 100 more concise, which not only reduces the design complexity, but also reduces potential error points in the manufacturing process. In addition, the use of one component (connecting portion 3) is reduced, which can directly reduce material and production costs. A suitable design can be selected according to actual needs.
[0067] In other embodiments, the first pipe 1 and the second pipe 2 are detachably connected via the connecting portion 3. The detachable connection design allows the pipe system to be more flexibly configured and rearranged, so that it can adapt to various application scenarios and space limitations.
[0068] If a section of the pipeline fails or needs to be cleaned, the corresponding pipeline section can be quickly and easily removed and replaced by disassembling the connection part 3 without having to replace the entire system.
[0069] By using standardized connecting parts, the piping system can be easily expanded or reduced to meet changing needs. When the system needs to be replaced or upgraded, only some components need to be replaced instead of the entire piping system, thereby reducing material and construction costs.
[0070] Preferably, the connecting portion 3 can be connected between two pipes by means of snaps, screws, pipe clamps, etc., or between the connecting section and the corresponding pipe by means of snaps, screws, pipe clamps, etc., and a suitable design can be selected according to actual needs.
[0071] like Figures 1 to 7 As shown, the ignition control device pipeline of this embodiment also includes a sealing assembly 4, which includes a first sealing joint 41 and a first connecting and fixing sleeve 42. The first sealing joint 41 is connected to the end of the first pipe 1, and the first connecting and fixing sleeve 42 is covered on the outside of the connection between the sealing joint 41 and the first pipe 1. With this design, the connection between the sealing joint and the first pipe is more stable, thereby improving the sealing performance of the connection between the sealing joint and the first pipe and avoiding gas leakage.
[0072] Specifically, the sealing joint is used to connect the end of the first pipe to ensure that the gas can flow smoothly into the pipe system (usually into the burner of the outdoor stove). By adding a first connecting fixing sleeve at the connection between the sealing joint and the pipe, the connection between the sealing joint and the first pipe is further strengthened, thereby forming a multi-level sealing protection and improving the sealing performance of the entire connection system. The design of the sealing component can effectively avoid the failure of the seal between the sealing joint and the first pipe due to vibration, temperature changes or mechanical stress, thereby further preventing gas leakage.
[0073] Preferably, a first sealing joint 41 is provided at both ends of the first pipe 1, and the outer side of the connection between the sealing joint 41 at each end and the first pipe 1 is covered with a first connecting fixing sleeve 42. Such a design ensures that the gas can flow smoothly into and out of the pipeline system, and makes parts replacement and maintenance convenient.
[0074] like Figures 1 to 7As shown, the sealing assembly 4 of this embodiment also includes a second connecting and fixing sleeve 43. Specifically, the second connecting and fixing sleeve 43 is covered on the outer side of the end of the second pipe 2, and can tighten the outer side of the end of the second pipe 2 so that the ignition wire at the input end and / or output end of the second pipe 2 can be stably introduced or led out.
[0075] Preferably, the sealing assembly 4 also includes a second sealing joint 45, which is connected to the end of the second pipe 2, and the second connection fixing sleeve 43 is covered on the outside of the connection between the second sealing joint 45 and the second pipe 2 to strengthen the connection between the second pipe 2 and the second sealing joint 45, thereby forming an additional connection. This design can effectively disperse the pressure and stress that may occur between the connection between the second pipe 2 and the second sealing joint 45, thereby improving the stability of the connection. In addition, the second connection fixing sleeve provides additional protection to prevent the ignition wire from being exposed due to wear or aging of the connection, which may cause the ignition wire to be damaged due to external factors (such as collision, excessive pulling), thereby further improving the safety of the system and ensuring that the system can operate normally.
[0076] Preferably, a second sealing joint 45 is provided at both ends or one end of the second pipe 2. The second sealing joint 45 can extend the input end and / or output end of the second pipe 2. Such a design can further protect the ignition wire and facilitate the assembly of the ignition wire.
[0077] Preferably, the second connecting fixing sleeve 43 can tighten part of the second pipe 2 and / or part of the second sealing joint 45 so that the ignition wire is firmly connected to the wire cavity 21, thereby preventing the ignition wire from sliding in the wire cavity 21 and causing damage to the ignition wire due to excessive pulling.
[0078] like Figures 1 to 7 As shown, the first connecting and fixing sleeve 42 and the second connecting and fixing sleeve 43 of this embodiment are connected.
[0079] Specifically, the communication between the first connection fixing sleeve 42 and the second connection fixing sleeve 43 enables the two connection layers to form a continuous connection fixing system. This design can effectively improve the connection effect and form a more complete protective barrier.
[0080] When pressure changes occur, the connected design of the first and second connecting fixing sleeves can help disperse the pressure at the connection, reduce local stress concentration, and thus enhance the effect of a stable connection. This design can effectively extend the service life of the sealing component and reduce maintenance costs caused by wear or aging.
[0081] Preferably, the first connection fixing sleeve 42 and the second connection fixing sleeve 43 of this embodiment are communicated with each other, and the first connection fixing sleeve 42 and the second connection fixing sleeve 43 are an integrally formed structure to form a third connection fixing sleeve 44 of an integral structure.
[0082] The first connection fixing sleeve 42 and the second connection fixing sleeve 43 are manufactured in an integrally formed manner, which means that the two components are formed as a whole during the manufacturing process, that is, forming an integral structure third connection fixing sleeve 44, avoiding possible leakage points at the connection.
[0083] The one-piece molding structure eliminates gaps or seams that may exist in traditional connection methods, thereby significantly improving connection performance and reducing the risk of leakage. The one-piece molding structure can more evenly distribute the pressure within the system, reduce local stress concentration, and help extend the service life of the components.
[0084] Furthermore, the one-piece design reduces the number of components, simplifies the assembly process, and reduces installation difficulty and time.
[0085] Preferably, in this embodiment, the third connection fixing sleeve 44 is stamped onto the corresponding pipe by a stamping method. Before construction, the third connection fixing sleeve 44 is sleeved on the outside of the first pipe 1 and the second pipe 2, and then the connection fixing sleeve is deformed by the stamping process to become a first connection fixing sleeve 42 covering the outside of the connection between the first sealing joint 41 and the first pipe 1, and a second connection fixing sleeve 43 covering the outside of the connection between the second pipe 2 and the second sealing joint 45, which has the advantages of simple structure and easy operation.
[0086] Preferably, the cross-sectional shape of the third connecting and fixing sleeve 44 formed by the combination of the first connecting and fixing sleeve 42 and the second connecting and fixing sleeve 43 in this embodiment is similar to the cross-sectional shape of the pipe assembly 100. Such a design makes the connecting and fixing sleeve fit more closely to the pipe assembly 100, thereby improving the stability of its connection with the ignition control device.
[0087] In other embodiments, the first connection fixing sleeve 42 and the second connection fixing sleeve 43 are separate, independent structures, and can be stamped onto the corresponding pipes by stamping. A suitable design can be selected according to actual needs.
[0088] In other embodiments, the first connection fixing sleeve 42 and the second connection fixing sleeve 43 may also be connected to the corresponding pipes by means of clipping, screwing, riveting, etc., and a suitable design may be selected according to actual needs.
[0089] like Figures 1 to 7 As shown, the ignition control device pipeline of this embodiment further includes a protection tube 5 sleeved on the outside of the pipeline assembly 100 .
[0090] Specifically, the protective tube 5, as the outer layer wrapping the pipeline assembly 100, can provide an additional physical barrier to prevent direct damage to the pipeline from the external environment, such as collision, wear or scratching, effectively prevent accidental damage, and reduce potential safety hazards, such as the probability of accidents such as leakage and explosion.
[0091] Furthermore, the protective tube 5 can reduce the impact of external factors on the pipeline, and the protective tube 5 can extend the service life of the pipeline and reduce the frequency of maintenance and replacement.
[0092] Specifically, the protective tube 5 can also play a role in temperature isolation to prevent heat loss or overheating. Furthermore, by adding a separate second pipe and a protective cover on the outside of the ignition wire, under the condition of double protection, it can play a role in heat insulation protection, making the ignition wire resistant to high temperatures and not easy to be damaged.
[0093] Furthermore, the presence of the external protection tube 5 can enhance the appearance of the entire device, making it look more neat and professional.
[0094] Preferably, the protective tube 5 in this embodiment is braided with steel wires, that is, the outer side of the pipeline assembly 100 is covered with a braided steel wire protective tube 5 .
[0095] Specifically, the steel wire braided protective tube 5 can provide additional mechanical strength and pressure resistance, effectively protect the internal pipeline from damage by external forces, effectively improve the safety of the pipeline system, and by providing an additional protective layer, effectively extend the service life of the pipeline components and reduce maintenance costs.
[0096] Specifically, the steel wire braided structure has good flexibility and can adapt to a certain degree of bending and deformation of the pipeline component without affecting the overall protection effect.
[0097] Specifically, the steel wire material itself has good wear resistance, which can prevent pipeline damage caused by friction or scratches, and the steel wire braided protection tube 5 structure can withstand high tensile force, preventing the protection tube 5 from breaking under high pressure or accidental pulling.
[0098] Specifically, steel wire generally has good corrosion resistance and can resist the erosion of chemical media to a certain extent. It is suitable for use in outdoor environments and avoids pipeline damage.
[0099] Preferably, the protective sleeve 5 is located between the third connecting and fixing sleeve 44 and the pipeline assembly 100. In this embodiment, the third connecting and fixing sleeve 44 is stamped onto the corresponding pipeline by a stamping method. Before construction, the third connecting and fixing sleeve 44 is sleeved on the outside of the protective sleeve 5, and then the third connecting and fixing sleeve 44 is deformed by the stamping process to change into a first connecting and fixing sleeve 42 covering the outside of the connection between the protective sleeve 5 corresponding to the first sealing joint 41 and the first pipeline 1, and a second connecting and fixing sleeve 43 covering the outside of the connection between the protective sleeve 5 corresponding to the second pipeline 2 and the second sealing joint 45. It has the advantages of simple structure and easy operation.
[0100] like Figures 1 to 7 As shown, an outdoor stove of this embodiment includes a stove body 6, a burner 7, an ignition device 8, an ignition control device and an ignition control device pipe of the outdoor stove as described in any one of the above items, the burner 7 and the ignition device 8 are both arranged on the stove body 6, and the ignition device 8 is arranged on one side of the burner 7, the ignition control device is provided with an assembly part that can be connected to the gas tank and an ignition wire connecting part that can be connected to the ignition wire, the two ends of the ignition wire can respectively pass through the two ends of the wire cavity 21, and be electrically connected to the ignition device 8 and the ignition wire connecting part, the gas output end of the ignition control device is connected to one end of the first pipe 1, and the burner 7 is connected to the other end of the first pipe 1.
[0101] Preferably, by adopting the ignition control device pipe in this embodiment, it is convenient to store the outdoor stove.
[0102] Furthermore, the connection between the outdoor stove and the ignition control device is achieved through the ignition control device pipeline of this embodiment, wherein one end of the first pipeline 1 of this embodiment is connected to the gas output end of the ignition control device through the first sealing joint 41, and the other end of the first pipeline 1 is connected to the burner 7 through the first sealing joint 41, and the ignition wire extending from one end of the second pipeline 2 is electrically connected to the ignition wire connecting part, and the ignition wire extending from the other end of the second pipeline 2 is electrically connected to the ignition device 8.
[0103] Preferably, there is a certain distance between the end of the second pipe 2 close to the ignition device 8 and the outdoor stove, so that the ignition wire can smoothly extend out of the second pipe 2 and be electrically connected to the ignition device 8.
[0104] Preferably, the ignition control device is connected to the gas tank through an assembly part, and the gas is delivered to the burner head 7 through the first pipe 1, and then the ignition wire connection part is driven to make the ignition wire cooperate with the ignition device 8 to realize the ignition action to ignite the burner head 7.
[0105] When storage is required, the ignition control device pipe, the outdoor stove and the ignition control device can be disassembled separately. At this time, the corresponding first sealing joint 41 can be withdrawn from the ignition control device and the burner 7 respectively, and the ignition wire can be disconnected from the ignition device 8 and the ignition wire connection part respectively, and then the outdoor stove, the ignition control device and the ignition control device pipe can be stored. Such a design can reduce the space occupied by the entire device and is convenient for users to carry and store.
[0106] The above examples are merely used to further illustrate the technical content of the present invention for easier understanding by the reader. However, they do not limit the implementation of the present invention to these examples. Any technical extension or reinvention based on the present invention is protected by the present invention. The scope of protection of the present invention shall be determined by the claims.
Claims
1. An ignition control device pipe for an outdoor stove, characterized by: The invention comprises a pipe assembly (100), wherein the pipe assembly (100) comprises a first pipe (1) and a second pipe (2), wherein one end of the first pipe (1) is connected to the gas output end of the ignition control device, and the other end of the first pipe (1) is connected to the burner of the outdoor stove; and a wire passage cavity (21) is provided in the second pipe (2), wherein the wire passage cavity (21) is used for allowing the ignition wire of the ignition control device to pass through and extend to the ignition structure of the outdoor stove for connection.
2. The ignition control device pipe for an outdoor stove according to claim 1, characterized in that: The first pipeline (1) and the second pipeline (2) are arranged adjacent to each other.
3. The ignition control device pipe for an outdoor stove according to claim 2, characterized in that: The pipeline assembly (100) further includes a connecting portion (3) provided between the first pipeline (1) and the second pipeline (2).
4. An ignition control device pipe for an outdoor stove according to any one of claims 1 to 3, characterized in that: The cross-sectional shape of the pipeline component (100) is similar to an "8" shape, or the cross-sectional shape of the pipeline component (100) is similar to an ellipse.
5. The ignition control device pipe for an outdoor stove according to any one of claims 1 to 3, characterized in that: The pipeline assembly (100) is an integrally formed structure.
6. An ignition control device pipe for an outdoor stove according to any one of claims 1 to 3, characterized in that: The ignition control device pipeline further comprises a sealing assembly (4), the sealing assembly (4) comprising a first sealing joint (41) and a first connection fixing sleeve (42), the first sealing joint (41) being connected to the end of the first pipeline (1), and the first connection fixing sleeve (42) covering the outer side of the connection between the first sealing joint (41) and the first pipeline (1).
7. The ignition control device pipe for an outdoor stove according to claim 6, characterized in that: The sealing assembly (4) further comprises a second connection fixing sleeve (43), wherein the second connection fixing sleeve (43) is covered on the outside of the end portion of the second pipe (2).
8. The ignition control device pipe for an outdoor stove according to claim 7, characterized in that: The first connecting and fixing sleeve (42) and the second connecting and fixing sleeve (43) are in communication.
9. An ignition control device pipe for an outdoor stove according to any one of claims 1 to 3, characterized in that: The ignition control device pipeline further comprises a protective tube (5) sleeved on the outside of the pipeline assembly (100).
10. An outdoor stove, characterized in that: The invention comprises a stove body (6), a burner (7), an ignition device (8), an ignition control device and an ignition control device pipeline of an outdoor stove as claimed in any one of claims 1 to 9, wherein the burner (7) and the ignition device (8) are both arranged on the stove body (6), and the ignition device (8) is arranged on one side of the burner (7), the ignition control device is provided with an assembly portion that can be connected to a gas tank and an ignition wire connecting portion that can be connected to an ignition wire, the two ends of the ignition wire can pass through the two ends of the wire cavity (21) respectively, and are electrically connected to the ignition device (8) and the ignition wire connecting portion, the gas output end of the ignition control device is connected to one end of the first pipeline (1), and the burner (7) is connected to the other end of the first pipeline (1).