incubation lamp
Patent Information
- Application Number
- CN202521720442.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-12
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-08-12
AI Technical Summary
[0004]本申请提供了一种保温灯,以解决现有技术中的保温灯热量损耗严重,得不到有效利用,造成保温灯为了维持高温功耗大的问题
本技术方案的一种保温灯,保温罩采用一侧敞口的凹槽结构,能有效阻挡热量向外部环境扩散;同时,反光罩外壁与保温罩内壁保持间隙,以形成相对封闭的热量约束空间,减少了热量向非目标区域(如保温灯外侧、上方)的发散。这种设计大幅降低了“反光罩产热后未被利用即流失”的能量损耗,使更多热量集中作用于仔猪的保温区域。另外,发光体产生的热量经反光罩反射后能向敞口侧定向、均匀辐射,避免了传统结构中热量散射导致的“局部过热而整体热量不足”问题。这种精准的热辐射设计让单位能耗产生的有效热量更高,无需通过提高功率来弥补热量分布不均的缺陷,从而减少了为达到保温效果而额外消耗的电能。
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Figure CN224733833U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of lighting heating technology, and in particular to a heat-insulating lamp. Background Technology
[0002] In the process of piglet production, keeping warm is a key link to ensure their healthy survival. Low ambient temperature can easily lead to illness in piglets. Therefore, heat lamps have become the core equipment for regulating ambient temperature in piglet farming. Currently, the core challenges in piglet insulation lie in two aspects: First, piglets have a rigid physiological need for a large and uniform heat source, which is fundamental to their normal growth and development; second, existing insulation solutions are ineffective, especially traditional tungsten filament bulb lamps, which have significant drawbacks: the metal cover of these lamps absorbs a large amount of heat generated by the bulb, and the metal material itself dissipates heat quickly, resulting in severe heat loss. This problem directly triggers a chain reaction, not only requiring higher power consumption to maintain the temperature, causing energy waste, but also significantly shortening the lamp's lifespan due to continuous high-temperature loads, increasing replacement frequency and costs.
[0003] Therefore, developing a new type of heat lamp that can both meet the heat preservation needs of piglets and improve the utilization rate of heat radiation and reduce heat loss has become the key to solving the current heat preservation dilemma in piglet farming. Utility Model Content
[0004] This application provides a heat-insulating lamp to solve the problem in the prior art where heat-insulating lamps suffer from severe heat loss and cannot be effectively utilized, resulting in high power consumption in order to maintain high temperatures.
[0005] Firstly, a heat-insulating lamp includes: The heat insulation cover has a recessed structure with an opening on one side; The reflector is suspended and fixed within the groove structure and connected to the heat insulation cover via the first connector. The outer wall of the reflector maintains a gap with the inner wall of the heat insulation cover, and the reflective surface of the reflector faces the open side; A light-emitting body is suspended inside the reflector by connecting at least one end to the reflector; the heat emitted by the light-emitting body is reflected by the reflector and then emitted uniformly towards the open side.
[0006] Furthermore, the heat insulation cover is a long strip structure, and the groove structure extends along the length of the heat insulation cover; The reflector is arranged along the length of the groove structure and is adapted to be installed in the groove structure by the first connector, with the outer wall of the reflector being disposed opposite to the inner wall of the groove structure. The light-emitting element is arranged along the length of the reflector and is adapted to be installed in the reflector via a second connector.
[0007] Furthermore, the bottom end of the reflector does not exceed the bottom end of the heat insulation cover.
[0008] Furthermore, the vertical distance from the geometric center of the inner top surface of the heat insulation cover to the highest point of the reflector is between 14mm and 16mm.
[0009] Furthermore, in the longitudinal section taken along the longitudinal direction of the heat-insulating lamp, the distance between the outer wall of the reflector and the inner wall of the heat-insulating cover gradually decreases from top to bottom, and the narrowest distance between the two walls in the vertical direction of the longitudinal section is 5mm to 10mm.
[0010] Furthermore, it includes an assembly plate, which is detachably connected to the top outer surface of the insulation cover; the outer surface of the assembly plate is provided with an upwardly protruding portion, which is used for snap-fit assembly with third-party accessories.
[0011] Furthermore, the inner surface of the assembly plate has two downwardly extending ridges; The two protruding ridges are arranged at intervals along the width direction of the heat insulation cover, and an assembly area for assembling the heat insulation cover is formed between the two protruding ridges; The top of the insulation cover is snapped into the assembly area.
[0012] Furthermore, it includes a control board, which is electrically connected to the light-emitting element; The control board is also electrically connected to a switch; The switch is mounted on the assembly plate, and the force-receiving end of the switch protrudes and is exposed on the surface of the assembly plate.
[0013] Furthermore, a protective net is included, which is installed at the opening to block the light-emitting body inside the reflector and prevent the light-emitting body from being exposed.
[0014] Furthermore, a first fixing part is arranged on one side of the opening, and a second fixing part is arranged on the other side; The protective netting, which is fitted to the first fixing part, has a first connecting end, which is connected to the first fixing part. The protective netting, which is fitted to the second fixing part, has a second connecting end, which is connected to the second fixing part.
[0015] The technical solutions provided in this application have the following advantages compared with the prior art: This technical solution presents a heat-insulating lamp with a recessed structure on one side of the heat-insulating cover, effectively preventing heat diffusion to the external environment. Simultaneously, a gap is maintained between the outer wall of the reflector and the inner wall of the heat-insulating cover to form a relatively enclosed heat-constrained space, reducing heat dissipation to non-target areas (such as the outside or top of the heat-insulating lamp). This design significantly reduces energy loss due to unused heat from the reflector, allowing more heat to be concentrated on the insulated area of the piglets. Furthermore, the heat generated by the light source, after being reflected by the reflector, radiates directionally and evenly to the open side, avoiding the problem of "localized overheating and insufficient overall heat" caused by heat scattering in traditional structures. This precise heat radiation design results in higher effective heat generation per unit of energy consumption, eliminating the need to compensate for uneven heat distribution by increasing power, thereby reducing the additional electrical energy consumed to achieve the desired heat-insulating effect. Attached Figure Description
[0016] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0017] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] One or more embodiments are illustrated by way of example with reference numerals in the accompanying drawings. These illustrations do not constitute a limitation on the embodiments. Elements with the same reference numerals in the drawings are denoted as similar elements. Unless otherwise stated, the figures in the drawings are not to be limited by scale.
[0019] Figure 1 This is a schematic diagram of the overall structure of the heat-insulating lamp in this application; Figure 2 This is a schematic diagram of the reflector structure of this application; Figure 3 This is a cross-sectional structural diagram of the heat-insulating lamp of this application; Figure 4 This is an exploded view of the assembly plate and insulation cover of this application; Figure 5 This is a schematic diagram of the structure of the protective netting in this application; Figure 6 This is a schematic diagram of the structure of the first fixing part and the second fixing part of this application.
[0020] Explanation of reference numerals in the attached figures: 10. Insulation cover; 11. Opening; 12. Groove structure; 121. Inner wall; 13. Geometric center; 14. Bottom end of the insulation cover; 15. First fixing part; 16. Second fixing part; 2. Reflector; 21. Reflective surface; 22. Outer wall; 23. Highest point; 24. Bottom end of the reflector; 31. First connecting member; 32. Second connecting member; 40. Luminous body; 50. Gap; 60. Assembly plate; 61. Protrusion; 62. Rib; 63. Assembly area; 70. Protective netting; 71. First connecting end; 72. Second connecting end; 80. Switch. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0022] The following disclosure provides numerous different embodiments or examples for implementing various structures of this application. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of this application. Furthermore, reference numerals and / or letters may be repeated in different examples. Such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed.
[0023] For ease of description, spatial relative terms may be used in the text to describe the relative position or movement of one element or feature relative to another element or feature, as shown in the figure. These relative terms include, for example, "inside," "outside," "middle," "outer," "below," "below," "above," "front," "back," etc. Such spatial relative terms are intended to include different orientations of the device in use or operation, other than those depicted in the figure. For example, if the device in the figure undergoes a positional flip, orientation change, or change of motion, these directional indications will change accordingly. For instance, an element described as "below other elements or features" or "below other elements or features" will subsequently be oriented "above other elements or features" or "above other elements or features." Therefore, the example term "below" can include both upper and lower orientations. The device may be otherwise oriented (rotated 90 degrees or in other directions), and the spatial relative descriptors used in the text will be interpreted accordingly.
[0024] Existing heat lamps for keeping piglets warm have a limited illumination area and consume a lot of power.
[0025] Therefore, the applicant provides a heat-insulating lamp to solve the above-mentioned technical problems. This heat-insulating lamp includes a control board for controlling its illumination. For example... Figure 1 and Figure 2 As shown, the heat-insulating lamp of this technical solution includes a heat-insulating cover 10, which is a groove structure 12 with an opening 11 on one side; a reflector 20, which is suspended and fixed in the groove structure 12 and connected to the heat-insulating cover 10 through a first connector 31; the back of the reflector 20 maintains a gap 50 with the inner wall of the heat-insulating cover 10 and the reflective surface of the reflector 20 faces the opening 11; a light-emitting body 40 is suspended in the reflector 20 by connecting to the reflector 20 at least one end; the heat-generating light of the light-emitting body 40 is reflected by the reflector 20 and then uniformly emitted into the opening 11.
[0026] In this embodiment, the heat insulation cover 10 is made of plastic or a material with low thermal conductivity; for example, PPT plastic. Due to the core characteristic of PPT material itself being "not easy to dissipate heat", this plastic heat insulation cover 10 can effectively block the heat on the back of the reflector 20 from escaping to the external environment, and lock the heat emitted by the reflector 20 inside the heat insulation cover 10 as much as possible, thereby reducing heat loss in non-target areas and providing a basic guarantee for the overall heat insulation effect.
[0027] The reflector 20 is made of metals such as aluminum and stainless steel, and is made with a mirror finish, which can significantly improve the reflection efficiency of the light from the light source 40. In terms of structural design, the longitudinal section of the reflector 20 is parabolic or elliptical. This curved shape can maximize the concentration and reflection of light, so that the reflected light forms a large area of illumination, thereby covering a wider area of the piglet resting area and meeting the simultaneous heat preservation needs of more piglets.
[0028] The connector includes an internal thread structure on the reflector 20 and a mounting post structure on the corresponding heat insulation cover 10, the mounting post having external threads. Through the engagement of the internal and external threads, the reflector 20 can be fixed and suspended within the groove of the heat insulation cover 10.
[0029] In addition, in other embodiments, the first connector can adopt other structures, such as snap-fit, etc., and is not limited to the above-mentioned threaded connection method, as long as it can fix the reflector 20 in the groove structure 12. The number of first connectors 31 is only required to be at least one so that the reflector 20 is fixed in the heat insulation cover 10. The specific number can be two (for example, the heat insulation lamp with strip structure described below has first connectors 31 at both ends of the top length direction of the reflector 20 to realize the reflector 20 being suspended and fixed inside the heat insulation cover 10), three, etc., according to actual needs.
[0030] The light source 40 is electrically connected to the control board and uses a carbon fiber lamp tube. The carbon fiber lamp tube has three advantages: first, it has high heating efficiency and can quickly convert electrical energy into effective heat energy; second, it heats up quickly and the temperature is stable, which can quickly respond to changes in ambient temperature and maintain a constant temperature in the heat preservation area; and third, the infrared wavelength emitted is highly matched with the biological reception range of piglets and other young animals, which can accurately meet the physiological needs of piglets for heat preservation and improve the utilization efficiency of heat radiation.
[0031] The heat lamp is installed above the piglet resting area, with the openings 11 of its heat lamp cover 10 and reflector 20 both facing the piglet resting area. After being powered on, the heat emitted by the light source 40 diffuses 360° outwards from itself. More than half of the light is reflected by the parabolic or elliptical reflector 20 and directed onto the piglet resting area, while the remaining light is directly radiated vertically to the area, forming a large and uniform heat-insulating coverage. At the same time, the gap 50 between the reflector 20 and the heat lamp cover 10 forms a hot air layer due to the heat absorbed by the reflector 20. The PPT material used in the heat lamp cover 10 does not dissipate heat easily, which helps to concentrate the heat absorbed by the reflector 20 and dissipated into the air. This heat is trapped inside the heat lamp cover 10, preventing the heat from rising and dissipating, and instead causing the hot air to flow downwards along the gap 50 towards the piglet resting area. This design specifically addresses the problems of high energy consumption and poor heat preservation caused by the direct heat dissipation of the reflector 20 in traditional heat lamps. It improves heat utilization through the efficient reflection and directional airflow of the reflector 20, and reduces heat loss by utilizing the heat-locking properties of the heat preservation cover 10. Ultimately, it achieves multiple beneficial effects such as reducing power consumption, extending the life of the lamp, and ensuring uniform heat preservation for piglets.
[0032] It should also be noted that, in actual use, the shape of this heat lamp can be either spherical or elongated, depending on the actual needs.
[0033] In a specific embodiment, such as Figures 1 to 3 As shown, the heat insulation cover 10 is a long strip structure, and the groove structure 12 is arranged along the length direction of the heat insulation cover 10; the reflector 20 is arranged along the length direction of the groove structure 12 and is adapted to be installed in the groove structure 12 through the first connector 31, and the outer wall 22 of the reflector 20 is arranged opposite to the inner wall 121 of the groove structure 12; the light emitting body 40 is arranged along the length direction of the reflector 20 and is adapted to be installed in the reflector 20 through the second connector 32.
[0034] In this embodiment, the second connector 32 is a clamping member extending from the inner top surface of the reflector 20 toward the opening 11. This clamping member clamps the end of the light-emitting body 40, using clamping constraint force to suspend and fix the light-emitting body 40 inside the reflector 20. Depending on actual usage needs, there are two clamping members, located at both ends of the reflector 20 along its length, to fix the two ends of the light-emitting body 40 along its length.
[0035] In this embodiment, the heat-insulating cover 10 has a long strip structure, with its groove structure 12 extending along its length. A reflector 20 is adapted to be disposed in the groove, with its outer wall 22 facing the inner wall 121 of the groove. The light-emitting element 40 is disposed along the length of the reflector 20 and adapted to be disposed in the reflector 20. In use, the long strip heat-insulating lamp is installed above the piglet resting area, with the opening 11 facing the piglet activity area. This structural design allows the heat generated by the light-emitting element 40 to be reflected by the long strip reflector 20, forming a wider and more uniform heat radiation band along its length, which can cover a larger area of the piglet resting area and meet the need for heat preservation for a large number of piglets at the same time. Traditional heat lamps, limited by their circular structure, can only form a circular halo of heat, making it difficult to achieve uniform heating over a large area. This elongated design, however, solves the problems of small heat source coverage and uneven distribution by extending the reflective and luminous range. Furthermore, the elongated heat insulation cover 10 works in conjunction with the reflector 20, which is fitted into the recessed structure 12. This allows the heat insulation cover 10 to better trap the heat generated by the reflector 20 and direct this heat to the piglet resting area, thereby reducing heat loss, lowering the power consumption required to maintain the temperature, and extending the lamp's lifespan. This not only improves the heat preservation effect for piglets but also saves energy and reduces breeding costs.
[0036] To further improve the heat preservation effect, further steps are needed, such as... Figure 4 As shown, the bottom end 14 of the reflector does not exceed the bottom end 24 of the heat insulation cover.
[0037] It should be understood that the heat lamp is installed above the piglet resting area. The design of the reflector 20's bottom end 14 not exceeding the heat lamp's bottom end 24 allows heat reflected by the reflector 20 and heat retained within the heat lamp 10 to radiate from the opening 11 and gap 50 to the piglet area. If the reflector 20's bottom end 24 extends beyond the heat lamp 10's bottom end 24, heat on part of the reflector 20's outer wall 22 would not be covered by the heat lamp 10, resulting in unnecessary heat loss through the gaps. This improves heat utilization and reduces energy consumption.
[0038] Further such as Figure 4 As shown, the vertical distance H from the geometric center 13 of the inner top surface of the heat insulation cover 10 to the highest point 23 of the reflector 20 is between 14 mm and 16 mm.
[0039] The distance between the highest point of the heat insulation cover 10 and the highest point of the reflector 20 is controlled between 14mm and 16mm. This size setting allows the heat reflected by the reflector 20 and the heat retained in the heat insulation cover 10 to form an orderly airflow in the gap 50: the wider space at the top can accommodate the heat emitted by the reflector 20, avoiding heat accumulation that could lead to local overheating.
[0040] Further such as Figure 4As shown, in the longitudinal section taken along the longitudinal direction of the heat preservation lamp, the distance between the outer wall 22 of the reflector 20 and the inner wall 121 of the heat preservation cover 10 gradually decreases from top to bottom, and the narrowest distance D between the two walls in the vertical direction of the longitudinal section is 5mm to 10mm.
[0041] It should be understood that this design allows the heat concentrated at the top of the reflector 20 to flow along the gaps 50 on both sides, preventing the heat from being too concentrated at the top of the reflector 20 and ensuring the orderly guidance of the hot airflow, which flows from the outlet of the gap 50 to the piglet irradiation area.
[0042] In a specific embodiment, such as Figure 5 As shown, the heat-insulating lamp includes an assembly plate 60, which is detachably connected to the top outer surface of the heat-insulating cover 10. The outer surface of the assembly plate 60 is provided with an upwardly protruding portion 61, which is used for snap-fit assembly with third-party accessories.
[0043] Existing heat lamps have poor heat retention, requiring a cover plate (i.e., a third-party accessory) to prevent heat generated by the reflector 20 from dissipating upwards. To accommodate such existing cover plates, this technical solution provides an mounting plate 60 on the top of the heat lamp. By connecting the mounting plate 60 to the cover plate, the heat lamp can be installed below the cover plate.
[0044] In this embodiment, the cover plate in the prior art has a through hole. When in use, the heat lamp can be installed by engaging the cover plate in the prior art through the mounting plate 60, which is detachably connected to the top. Specifically, the outer surface of the mounting plate 60 is provided with an upwardly protruding protrusion 61. It is inserted into the through hole on the cover plate, and the two are firmly connected by an interference fit, thereby fixing the heat lamp under the cover plate.
[0045] This design makes full use of existing cover plate resources, avoiding waste. Specifically, the cooperation between the mounting plate 60 and the cover plate helps to prevent further heat loss to the upper part of the heat lamp, reducing heat loss. Simultaneously, the detachable mounting plate 60 and the interference fit ensure compatibility with existing cover plates, facilitating quick installation and disassembly for maintenance, while also ensuring a secure connection to prevent the heat lamp from falling off. Ultimately, this design improves insulation efficiency, reduces energy consumption, and enhances the convenience and safety of equipment use.
[0046] In this embodiment, the assembly plate 60 and the insulation cover 10 are detachably connected. Specifically, in one embodiment, the connection method is implemented as follows: a through hole is opened on the assembly plate 60, and a through hole is also opened at the corresponding position on the insulation cover 10. After the bolt passes through these two through holes, the insulation cover 10 and the assembly plate 60 can be assembled and fixed by the fastening of the nut and the bolt.
[0047] In another embodiment, such as Figure 5 As shown, the inner surface of the assembly plate 60 has two downwardly extending protrusions 62; the two protrusions 62 are arranged at intervals along the width direction of the heat insulation cover 10, and the two protrusions 62 form an assembly area 63 for assembling the heat insulation cover 10; the top two sides of the heat insulation cover 10 are engaged in the assembly area 63.
[0048] During assembly, simply press the insulation cover 10 into the assembly area 63. The clamping force formed by the two protruding ribs 62 will securely restrain the insulation cover 10 within the area, thus preventing the insulation lamp with the insulation cover 10 from falling off the assembly plate 60. This snap-fit assembly method is simple to operate and facilitates the quick replacement of the insulation lamp.
[0049] In one specific embodiment, the heat-insulating lamp is also provided with a switch 80, which is electrically connected to the control board and is used to control the light-emitting operation of the light-emitting body 40.
[0050] In this embodiment, the switch is mounted on the mounting plate 60, and the switch 80 is a pressure-on / off switch 80, with its force-receiving end protruding from the surface of the mounting plate 60. When the mounting plate 60 is assembled with a third-party component, the upper surface of the mounting plate 60 abuts against the lower surface of the third-party component. Therefore, the force-receiving end of the switch is subjected to the abutment pressure of the lower surface of the third-party component, and its internal conductive end is connected, thereby conducting the circuit path between the light-emitting element 40 and the control board, so the light-emitting element 40 can emit light.
[0051] When the heat lamp falls onto a third-party accessory, the switch 80 loses external force, and the conductive end inside the switch 80 returns to the separated position. Therefore, the circuit between the light source 40 and the control board is not connected, thus achieving safe heat preservation and illumination for piglets and preventing the heat lamp from still heating up when it falls, which could burn the piglets.
[0052] Furthermore, such as Figure 6 As shown, it includes a protective net 70, which is installed at the opening 11 to block the light-emitting body 40 inside the reflector 20 and prevent the light-emitting body 40 from being exposed.
[0053] It should be noted that the light source 40 will gradually become hot after working for a period of time; and piglets have a habit of approaching light sources, often moving and observing near the light source 40. At this time, the hot light source 40 can easily cause burns to the piglets. Therefore, the protective net 70 can effectively prevent piglets from directly contacting the light source 40, thus protecting them from burns.
[0054] Meanwhile, the protective net 70 has a large number of light-transmitting holes on its surface, which can ensure that the heat and light generated by the light-emitting body 40 can be smoothly irradiated into the resting area of the piglets through these holes to meet the needs of heat preservation and lighting, and will not affect the use effect due to the obstruction of the protective net 70.
[0055] Furthermore, such as Figure 6 As shown, a first fixing part 15 is arranged on one side of the opening 11, and a second fixing part 16 is arranged on the other side; the protective net 70, which is assembled corresponding to the first fixing part 15, has a first connecting end 71, which is connected to the first fixing part 15; the protective net 70, which is assembled corresponding to the second fixing part 16, has a second connecting end 72, which is connected to the second fixing part 16.
[0056] It should be noted that this design allows for easy installation and removal of the protective netting 70.
[0057] In this embodiment, both the first fixing part 15 and the second fixing part 16 are through-hole structures extending outward from the body of the heat insulation cover 10; the first connecting end 71 is a connector extending outward from the body of the protective net 70 and is used to insert into the through hole of the first fixing part 15; the second connecting end 72 is an annular hole structure extending outward from the body of the protective net 70.
[0058] During assembly, first insert the first connecting end 71 into the through hole of the first fixing part 15 to fix the initial position of the protective net 70; then pull the second connecting end 72 close to the second fixing part 16, and connect and fix the two by passing a bolt through the through hole of the second fixing part 16 and the annular hole of the second connecting end 72. Through the above steps, the protective net 70 can be firmly assembled on the open side 11 of the heat insulation cover 10, thereby protecting the light-emitting element 40. In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions of other embodiments.
[0059] In another specific embodiment, a pig-attracting lamp is provided on the side of the heat lamp facing the piglets. The color of this lamp can be adjusted via software, and the specific color is set according to the piglets' physiological visible light range. This design primarily solves the problem that existing heat lamps only provide heat, but piglets may stay away from the heat-generating area due to their insensitivity to light, resulting in poor heat retention. Because the color of the pig-attracting lamp precisely matches the piglets' physiological visible light, it effectively attracts the piglets visually, guiding them to actively approach the area illuminated by the heat lamp. This allows the piglets to fully access the heat emitted by the lamp, ultimately achieving the technical goal of improving the heat retention effect for piglets and ensuring they are in a suitable temperature environment.
[0060] In some other embodiments, the heat lamp body is equipped with an indicator light, which is electrically connected to the control board to display the current temperature of the heat lamp, so that the user can observe whether the current heat preservation temperature is suitable for piglet heat preservation.
[0061] In summary, this technical solution addresses the problems of low heat utilization, high power consumption, and limited lifespan associated with existing heat lamps. It utilizes a reflector 20 to absorb the heat generated by the reflector 40, and then, with the help of the heat insulation cover 10, redirects the heat collected in the reflector 20 back to the piglet irradiation area as a hot airflow, creating an effective heat circulation and utilization. Simultaneously, this design reduces ineffective heat dissipation, avoiding excessive power consumption due to heat loss, and thus mitigating the impact of continuous high-load operation on the equipment's lifespan. Ultimately, this solution not only improves heat utilization efficiency but also ensures a more stable heat preservation effect in the piglet irradiation area.
[0062] In the description of this application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0063] 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 application, "multiple" means two or more, unless otherwise explicitly specified.
[0064] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a 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 application according to the specific circumstances.
[0065] In this application, unless otherwise expressly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature being directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature being directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0066] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. The illustrative expressions of the above terms in this specification should not be construed as necessarily referring to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. In addition, those skilled in the art can combine and integrate the different embodiments or examples described in this specification.
[0067] Obviously, those skilled in the art can make various modifications and variations to this application without departing from the spirit and scope of this application. Since these modifications and variations fall within the scope of the claims and their equivalents, this application also intends to include these modifications and variations.
[0068] The above describes specific embodiments of this application, but the scope of protection of this application is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this application, and these modifications or substitutions should all be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. A heat-insulating lamp, comprising: The heat insulation cover has a recessed structure with an opening on one side; The reflector is suspended and fixed within the groove structure and connected to the heat insulation cover via the first connector. The outer wall of the reflector maintains a gap with the inner wall of the heat insulation cover, and the reflective surface of the reflector faces the opening; A light-emitting body is suspended inside the reflector by connecting at least one end to the reflector; the heat emitted by the light-emitting body is reflected by the reflector and then emitted uniformly towards the open side.
2. The heat-insulating lamp according to claim 1, characterized in that: The heat insulation cover is a long strip structure, and the groove structure extends along the length of the heat insulation cover; The reflector is arranged along the length of the groove structure and is adapted to be installed in the groove structure by the first connector, with the outer wall of the reflector being disposed opposite to the inner wall of the groove structure. The light-emitting element is arranged along the length of the reflector and is adapted to be installed in the reflector via a second connector.
3. A heat-insulating lamp according to claim 1 or 2, characterized in that: The bottom end of the reflector does not exceed the bottom end of the heat insulation cover.
4. A heat-insulating lamp according to claim 1, characterized in that: The vertical distance from the geometric center of the inner top surface of the heat insulation cover to the highest point of the reflector is between 14 mm and 16 mm.
5. A heat-insulating lamp according to claim 2, characterized in that: In the longitudinal section taken along the longitudinal direction of the heat-insulating lamp, the distance between the outer wall of the reflector and the inner wall of the heat-insulating cover gradually decreases from top to bottom, and the narrowest distance between the two walls in the vertical direction of the longitudinal section is 5mm to 10mm.
6. A heat-insulating lamp according to claim 2, characterized in that: Includes an assembly plate, which is detachably connected to the top outer surface of the insulation cover; The outer surface of the assembly plate is provided with an upwardly protruding part, which is used for snap-fit assembly with third-party accessories.
7. A heat-insulating lamp according to claim 6, characterized in that: The inner surface of the assembly plate has two downwardly extending ridges; The two protruding ridges are arranged at intervals along the width direction of the heat insulation cover, and an assembly area for assembling the heat insulation cover is formed between the two protruding ridges; The top of the insulation cover is snapped into the assembly area.
8. A heat-insulating lamp according to claim 6, characterized in that: Includes a control board, which is electrically connected to the light-emitting element; The control board is also electrically connected to a switch; The switch is mounted on the assembly plate, and the force-receiving end of the switch protrudes and is exposed on the surface of the assembly plate.
9. A heat-insulating lamp according to claim 2, characterized in that: The device includes a protective net installed at the opening to block the light-emitting element inside the reflector and prevent the light-emitting element from being exposed.
10. A heat-insulating lamp according to claim 9, characterized in that: A first fixing part is arranged on one side of the opening, and a second fixing part is arranged on the other side; The protective netting, which is fitted to the first fixing part, has a first connecting end, which is connected to the first fixing part. The protective netting, which is fitted to the second fixing part, has a second connecting end, which is connected to the second fixing part.