Bionic lamp in the shape of a tentacled animal
Patent Information
- Application Number
- DE202025102012
- Authority / Receiving Office
- DE · DE
- Patent Type
- Utility models
- Current Assignee / Owner
- Priority Date
- 2024-04-12
- Filing Date
- 2025-04-11
- Publication Date
- 2025-06-18
- Estimated Expiration
- 2035-04-30
AI Technical Summary
Existing jellyfish lamp ornaments suffer from high energy loss, complex structure, high manufacturing costs, limited usage scenarios, and lack of public control methods due to a base-mounted drive device and multiple parts.
A bionic lamp in the shape of a tentacled animal with a drive device and control device housed within a compact structure, allowing independent or collective rotation of tentacles, featuring a simplified gear mechanism and various control methods.
The solution simplifies the structure, reduces energy loss, lowers manufacturing costs, and expands usage scenarios by incorporating all control and drive components within the housing, enabling versatile control options and improved user experience.
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Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of the lamp and specifically to a bionic lamp in the shape of a tentacled animal. STATE OF THE ART
[0002] After a long period of development, light sources are now used in many areas besides lighting, such as to create atmosphere and guidance, for decoration or to stage the environment.
[0003] To enhance the visual effect, people design lights in different shapes, such as animals or plants.
[0004] Patent document with grant publication number CN218565341U discloses a jellyfish lamp ornament with tentacle rotating function, which lamp is made with reference to the unique shape of a jellyfish and has a good visual effect.
[0005] The solution discloses a jellyfish lamp ornament with a tentacle rotating function, comprising: a base provided with a circuit board, a power supply, and an electric motor; a reduction gear comprising a drive gear, a driven gear, and a transmission gear assembly; a jellyfish tentacle assembly fixedly mounted above the driven gear via a stand rod, the jellyfish tentacle assembly comprising a mounting frame and a plurality of optical fibers mounted around the bottom of the mounting frame;A rotation auxiliary device mounted above the mounting frame, comprising an intermediate gear and a plurality of unit gears meshing at intervals on the outer side of the intermediate gear. The upper end of the upright rod passes through the mounting frame and is then fixedly connected to the intermediate gear. The upper end of the optical fiber passes through the mounting frame and is then fixedly connected to the unit gears. Lamp beads mounted above the unit gears. This solution can represent the jellyfish's tentacles in the form of luminous optical fibers, providing a better optical effect.
[0006] However, this solution still has shortcomings, with the drive device mounted on the base, large energy loss during the drive process, the use of many parts, the structure is complex, the manufacturing cost is high, and errors are easy to occur; in addition, because a base must be used, the usage scenarios are limited, and there is no public control method.
[0007] Therefore, it is necessary to design a new structure to solve the problems of existing technology. CONTENT OF THE PRESENT INVENTION
[0008] In order to solve the problems existing in the prior art, the utility model provides a bionic lamp in the form of a tentacled animal, whereby the arrangement of the control device such as the drive device and the detection module in the housing simplifies the structure and expands the usage scenarios.
[0009] To achieve the above object, the utility model uses the following technical solutions: A bionic lamp in the shape of a tentacled animal, comprising a housing component and a plurality of curved tentacles detachably connected to the housing component; wherein the housing component comprises a housing, wherein a drive device for driving the rotation of the tentacles is provided in the housing; wherein a control device is provided in the housing, wherein the control device comprises a printed circuit board and the drive device is electrically connected to the printed circuit board; wherein a light source is further provided in the housing, wherein the light source is electrically connected to the printed circuit board; wherein the drive device comprises a drive motor, wherein a drive gear is provided on the gear shaft of the drive motor;wherein an output gear set is rotatably provided on the housing, the drive gear meshing with the output gear set, the tentacles being detachably connected to the output gear set, the drive motor driving each of the tentacles via the output gear set to rotate independently;
[0010] The above solution adopts a driving device in the housing to rotate the tentacles one by one, which has good visual effects and does not require a complicated gear structure, which greatly simplifies the structure of the product; because all control components and driving components are arranged in the housing, the product is compact; at the same time, various control methods can be realized through the control device to facilitate control and improve user experience.
[0011] The present utility model also offers an exceptional technical solution: a bionic lamp in the shape of a tentacled animal, comprising a housing component and a plurality of curved tentacles detachably connected to the housing component; wherein the housing component comprises a housing, wherein a drive device for driving the rotation of the tentacles is provided in the housing; wherein a control device is provided in the housing, wherein the control device comprises a printed circuit board and the drive device is electrically connected to the printed circuit board; wherein a light source is also provided in the housing, wherein the light source is electrically connected to the printed circuit board; wherein the drive device comprises a drive motor, wherein a drive gear is provided on the drive shaft of the drive motor.wherein a turntable is rotatably provided on the housing and an output gear is provided on the turntable, the drive gear meshing with the output gear, the tentacles being detachably connected to the turntable, the drive motor driving all the tentacles so that they rotate as a whole through the turntable;
[0012] The above solution drives the tentacles to rotate by arranging a drive device in the housing and does not require a complicated transmission structure. This solution has a simpler structure than the previous one, and all tentacles can rotate. Since all control components and drive components are arranged in the housing, the product is compact. At the same time, various control methods can be realized through the control device to facilitate control and improve user experience. SHORT DESCRIPTION OF THE DRAWING Fig. 1 is a schematic structural diagram of the first embodiment of the present utility model; Fig. 2 is a schematic structural diagram of the first embodiment of the present utility model after removal of the upper case; Fig. 3 is a schematic structural diagram of a first mounting structure of the gear of the first embodiment of the present utility model; Fig. 4 is a schematic structural diagram of a second mounting structure of the gear of the first embodiment of the present utility model; Fig. 5 is a schematic structural diagram of the first embodiment of the present utility model after removing the lower case; Fig. 6 is an enlarged view of location A in Fig. 5; Fig. 7 is a schematic structural diagram of another connection method of the tentacles of the first embodiment of the present utility model; Fig. 8 is a schematic structural diagram of the circuit board of the first embodiment of the present utility model; Fig. 9 is a schematic structural diagram of the circuit board of the first embodiment of the present utility model from another perspective; Fig. 10 is a schematic diagram of the first embodiment of the present utility model, wherein the support frame serves for support and mounting; Fig. 11 is a structural exploded view of another embodiment of the first embodiment of the present utility model; Fig. 12 is a schematic structural diagram of the second embodiment of the present utility model; Fig. 13 is a schematic structural diagram of the second embodiment of the present utility model from another perspective; Fig. 14 is a schematic structural diagram of the third embodiment of the present utility model. DETAILED DESCRIPTION
[0013] The utility model is described in more detail below in conjunction with the attached drawings and specific embodiments.
[0014] As in Fig. 1 to 11, a bionic lamp in the form of a tentacled animal comprises a housing component 1 and a plurality of curved tentacles 2 which are detachably connected to the housing component 1.
[0015] The housing component 1 comprises a housing.
[0016] In the present embodiment, the bionic lamp in the form of a tentacle animal is designed to have the shape of a jellyfish.
[0017] The housing comprises a lower housing 11 and an upper housing 12, wherein both the lower housing 11 and the upper housing 12 are made of hard material, preferably hard translucent material, such as PE, PC, PS or glass.
[0018] As in Fig. 3, a first through hole 110 is provided in the lower housing 11, and an annular flange 111 having an inner diameter larger than the first through hole 110 is provided in the lower housing 11, the annular flange 111 and the first through hole 110 being arranged coaxially.
[0019] As in Fig. 4, it is provided as a further embodiment that an annular countersunk hole 112 with an inner diameter larger than the first through hole 110 is provided in the lower housing 11, wherein the annular countersunk hole 112 is arranged coaxially with the first through hole 110.
[0020] The above arrangement of the annular flange 111 and the annular countersunk hole 112 is used to limit the bottom of the gear.
[0021] As in Fig. 2 and Fig. As shown in Figure 3, a drive device for driving the rotation of the tentacles 2 is provided in the housing. In the present embodiment, the drive device comprises a drive motor 30, wherein the drive motor 30 is attached to the lower housing 11 via a motor mount 300, wherein a drive gear 31 is provided on the output shaft of the drive motor 30.
[0022] An output gear set is rotatably provided on the housing, the drive gear 31 meshing with the output gear set, the tentacles 2 being detachably connected to the output gear set, the drive motor 30 driving each of the tentacles 2 via the output gear set to rotate independently.
[0023] In the present embodiment, it is provided that the output gear set comprises a first output gear set and a second output gear set.
[0024] The drive gear 31 meshes with the first output gear set; the first output gear set meshes with the second output gear set.
[0025] The first output gear set comprises more than three first gears 321; the second output gear set comprises more than six second gears 322.
[0026] In the present embodiment, it is provided that the number of first gears 321 is three and the number of second gears 322 is twice that of the first gears 321, wherein a first gear 321 drives two second gears 322 for rotation.
[0027] As in Fig. 4 to 6, the first gear 321 and the second gear 322 have the same structure, wherein an upper projection 3211 is provided on the upper side of the first gear 321 and a lower projection 3212 is provided on the lower side of the first gear 321, the lower projection 3212 being provided with a recess 3213 for installing the tentacles 2, the lower projection 3212 being arranged in the annular flange 111 or the annular countersunk hole 112, the side wall of the lower projection 3212 having a clearance fit with the annular flange 111 or the annular countersunk hole 112.
[0028] The tentacles 2 and the recess 3213 are connected by press fitting, magnetic attraction, thread or buckle.
[0029] Fig. 6 shows a schematic structural representation of the threaded connection between the tentacle 2 and the recess 3213, wherein when assembling the tentacle 2, the tentacle 2 only needs to be screwed into the recess 3213 to establish a stable connection.
[0030] Fig. 7 shows a schematic structural diagram of the connection between the tentacle 2 and the recess 3213 by buckle, wherein when assembling the tentacle 2, only the tentacle 2 is inserted into the recess 3213, the buckle at the front end of the tentacle 2 passes through the gear and hooks the front surface of the gear, thereby forming a stable connection.
[0031] As in Fig. 2, a control device is provided in the housing, the control device comprising a printed circuit board 4, the printed circuit board 4 being connected to the lower housing 11 by screws, the drive device being electrically connected to the printed circuit board 4.
[0032] As in Fig. 8 and Fig. 9, a number of second through-holes 40 corresponding to the number of upper projections 3211 are provided on the circuit board 4, the upper projection 3211 passing through the second through-hole 40, the upper projection 3211 and the second through-hole 40 having a clearance fit.
[0033] In the above structure, the upper and lower ends of the first gear 321 and the second gear 322 are respectively limited by the circuit board 4 and the lower case 11, and the first gear 321 and the second gear 322 can be passively rotated between the circuit board 4 and the lower case 11.
[0034] This arrangement can simplify the structure and the circuit board 4 can be used as a control board and structural element.
[0035] As in Fig. 9, the control device also includes a sensing module or a non-contact control module, wherein the sensing module or the non-contact control module is electrically connected to the circuit board and is used to control the turning on or off of the bionic lamp in the form of a tentacle animal, to set the turning on time or turning off time or the displayed color or the like.
[0036] The sensing module can be a sound sensing module, a human body sensing module, an infrared sensing module or a vibration sensing module.
[0037] The human body sensing module achieves control by detecting changes in the infrared spectrum of the human body using a sensor; the infrared sensing module uses infrared rays for wireless control, usually via a remote control.
[0038] The contactless control module can be a Bluetooth module, a WIFI transmission module or a radio frequency module.
[0039] The data exchange between the mobile phone and the bionic tentacle lamp can be achieved through the Bluetooth module; the WIFI transmission module can remotely monitor and control the bionic tentacle lamp through the mobile phone APP.
[0040] In the present embodiment, it is provided that a sound detection module 41 is used, wherein, when the sound detection module 41 detects a sound that can turn on the light source, the sound detection module 41 can control the circuit board 4 to supply power to the light source so that the light source lights up.
[0041] The housing also provides the light source, which is electrically connected to the circuit board 4. The light source can be provided on the circuit board 4 or in the upper housing 12 or lower housing 11. In the present embodiment, the light source is provided with colored LED lamps 42, wherein the colored LED lamps 42 can emit light of various colors, various colors can be changed according to the setting, and the visual effect is good. The LED lamps 42 are provided on both sides of the circuit board 4 at the same time, so that when the LED lamps 42 are turned on, the entire housing component 1 can emit light without dead corners or blind spots, and the visual effect is good.
[0042] Furthermore, another circuit board may be provided on the upper case 12 or the lower case 11, and LED lamps may be provided on the circuit board, these LED lamps being located on top of the first gear 321 and the second gear 322, the lighting direction of the LED lamps being in the direction of the first gear 321 and the second gear 322, and at the same time, the tentacles 2 are made of translucent material, so that when the LED light emits light, the light spreads along the tentacles 2 in this way, which further enhances the visual effect.
[0043] As in Fig. 8, a battery 43 is provided on the circuit board 4, the battery 43 being electrically connected to the circuit board 4; the circuit board 4 is further provided with a light effect switching button 44, a mode selection switch 45, and a charging interface 46.
[0044] In the present embodiment, it is provided that the light emission mode of the lamp can be switched by pressing the light effect switching button 44, wherein, for example, pressing once can switch to the constant light mode and pressing again can switch to the breathing light mode.
[0045] In the present embodiment, the mode selection switch 45 is provided with three switchable gears, one of which is the power-off state, the second gear is the voice control mode, and the third gear is the manual mode. In both the voice control mode and the manual mode, the lighting effect can be switched by pressing the lighting effect switching button 44.
[0046] The upper housing 12 and the lower housing 11 are connected to each other by threading, buckles, or welding. In the present embodiment, the upper housing 12 and the lower housing 11 are connected to each other by ultrasonic welding.
[0047] The bionic tentacle lamp further includes a support frame 5; the housing is provided with a first mounting hole 6 for hanging the jellyfish lamp and a second mounting hole (not shown) for mounting the support frame. The support frame 5 supports the bionic tentacle lamp as a whole through the second mounting hole. Thus, the bionic tentacle lamp can be hung at a location where it is to be used, and can also be placed at a location where it is to be used via the support frame 5.
[0048] As a further embodiment of the present embodiment, as shown in Fig. 11, the lower housing 11 is provided with a gear cover plate 7, the gear cover plate 7 being provided with third through holes 70 corresponding to the number of the upper projections 3211, the upper projection 3211 passing through the third through hole 70, the upper projection 3211 and the third through hole 70 having a clearance fit.
[0049] In the present embodiment, it is provided that the gear cover plate 7 is made of translucent material and the gear cover plate 7 can be manufactured cost-effectively by injection molding.
[0050] In the present embodiment, it is provided that the circuit board 4b is triangular in shape, wherein the triangular circuit board can reduce the usable area of the circuit board, and wherein the triangular circuit board has less loss during cutting, thereby effectively reducing the production cost.
[0051] In order to expand the application scenarios of the product and enable outdoor use, the product was expanded to develop a second embodiment, the overall structure of which is the same as the first embodiment except that the upper case 12b is made of a light-transmitting flexible material, a solar panel 120b is provided on the upper case, and the solar panel 120b is electrically connected to the circuit board.
[0052] In the present embodiment, as in Fig. 12, it is provided that the solar panel 120b is arranged inside the upper housing 12b and the solar panel 120b runs parallel to the bottom surface of the upper housing 12b.
[0053] As a further embodiment, as in Fig. 13, the solar panel 120d is arranged in an annular arrangement within the upper housing 12d to increase the area and absorb more solar energy, the solar panel 120d being electrically connected to the circuit board.
[0054] The reason the upper housing 12b and the upper housing 12d are made of flexible materials is because outdoor use typically requires a larger product size than indoor use. If the upper housing 12b and the upper housing 12d are made of rigid materials, they take up a large volume and are inconvenient for storage and transportation.
[0055] The solar panel 120d may not only be arranged inside the upper case 12d, but may also be arranged outside the upper case 12d, or the solar panel 120d and the upper case 12d may be arranged integrally.
[0056] At the same time, the bottoms of the upper housing 12b and the upper housing 12d can still be made of a hard material to facilitate connection with the lower housing. Of course, the upper housing 12b and the upper housing 12d can also be placed on the lower housing.
[0057] Fig. 14 is a schematic structural diagram of the third embodiment of the present utility model.
[0058] As in Fig. 14, a bionic lamp in the form of a tentacled animal comprises a housing component 1c and a plurality of curved tentacles 2c which are detachably connected to the housing component 1c.
[0059] The housing component 1c comprises a housing.
[0060] In the present embodiment, the bionic lamp in the form of a tentacled animal is designed to have the shape of a jellyfish. The housing includes a lower housing 11c and an upper housing 12c, wherein the lower housing 11c is made of a hard material, preferably a hard translucent material such as PE, PC, PS, or glass; the upper housing 12c may be made of a hard material or a flexible material. The arrangement of the lower housing 11c and the upper housing 12c in the present embodiment may be the same as that in the first embodiment and the second embodiment.
[0061] The lower housing 11c is provided with a first through hole 110c, and an annular flange 111c having an inner diameter larger than the first through hole 110c is provided in the lower housing 11c, the annular flange 111c being arranged coaxially with the first through hole 110c, and of course, the annular flange here may also be an annular countersunk hole in the first embodiment and the second embodiment.
[0062] The above annular flange 111c serves to limit the bottom of the gear.
[0063] A drive device for driving the rotation of the tentacles 2c is provided in the housing. In the present embodiment, the drive device comprises a drive motor 30c, wherein the drive motor 30c is attached to the lower housing 11c via a motor mount 300c, wherein a drive gear (not shown) is provided on the output shaft of the drive motor 30c.
[0064] A rotating disk 8c is provided on the housing for rotation. In the present embodiment, the rotating disk 8c is arranged within the annular flange 111c, with the side walls of the rotating disk 8c having a clearance fit with the inner wall of the annular flange 111c, i.e., the rotating disk 8c can rotate freely within the annular flange 111c.
[0065] On the rotating disk 8c, a driven gear 9c is provided, the driving gear meshing with the driven gear 9c, the tentacle 2c being detachably connected to the rotating disk 8c, and the driving motor 30c drives all the tentacles 2c through the rotating disk 8c so that they rotate as a whole.
[0066] The tentacles 2c and the turntable 8c are connected by press fit, magnetic attraction, thread or buckle.
[0067] The present embodiment shows a schematic structural representation of the threaded connection between the tentacle 2c and the rotating disk 8c, wherein when assembling the tentacle 2c, the tentacle 2c only needs to be screwed into the rotating disk 8c in order to establish a stable connection.
[0068] Of course, the tentacle 2c can also be connected by the buckle method in the first embodiment.
[0069] A control device is provided in the housing, the control device comprising a circuit board 4c, the circuit board 4c being connected to the lower housing 11c via screws, the drive device being electrically connected to the circuit board 4c.
[0070] To limit the axial movement of the rotary disk 8c, a pressure plate may be provided on the lower housing to prevent the rotary disk 8c from protruding from the annular flange or the annular countersunk hole. In the present embodiment, the circuit board 4c is considered a pressure plate structure.
[0071] The control device also includes a sensing module or a non-contact control module, wherein the sensing module or the non-contact control module is electrically connected to the circuit board and is used to control the turning on or off of the bionic lamp in the form of a tentacle animal, to set the turning on time or turning off time or the displayed color or the like.
[0072] The sensing module can be a sound sensing module, a human body sensing module, an infrared sensing module or a vibration sensing module.
[0073] The human body sensing module achieves control by detecting changes in the infrared spectrum of the human body using a sensor; the infrared sensing module uses infrared rays for wireless control, usually via a remote control.
[0074] The contactless control module can be a Bluetooth module, a WIFI transmission module or a radio frequency module.
[0075] The data exchange between the mobile phone and the bionic tentacle lamp can be achieved through the Bluetooth module; the WIFI transmission module can remotely monitor and control the bionic tentacle lamp through the mobile phone APP.
[0076] In the present embodiment, it is provided that a sound detection module 41 is used, wherein, when the sound detection module 41 detects a sound that can turn on the light source, the sound detection module 41 can control the circuit board 4 to supply power to the light source so that the light source lights up.
[0077] The housing also provides a light source that is electrically connected to the circuit board 4c. The light source may be provided on the circuit board 4c or in the upper housing 12c or lower housing 11c. In the present embodiment, the light source is provided with colored LED lamps 42c. The colored LED lamps 42c can emit light of various colors, which can be changed according to the setting, and the visual effect is good. The LED lamps 42c are provided simultaneously on both sides of the circuit board 4c, so that when the LED lamps 42c are turned on, the entire housing component 1c can emit light without dead corners or blind spots, and the visual effect is good.
[0078] A battery 43c is provided on the circuit board 4, the battery 43c being electrically connected to the circuit board 4c; the circuit board 4c is further provided with a light effect switching button 44c, a mode selection switch 45c, and a charging interface (not shown).
[0079] In the present embodiment, it is provided that the light emission mode of the lamp can be switched by pressing the light effect switching button 44c, wherein, for example, pressing once can switch to the constant light mode and pressing again can switch to the breathing light mode.
[0080] In the present embodiment, the mode selection switch 45c is provided with three switchable gears, one of which is the power-off state, the second gear is the voice control mode, and the third gear is the manual mode. In both the voice control mode and the manual mode, the lighting effect can be switched by pressing the lighting effect switching button 44c.
[0081] The upper housing 12c and the lower housing 11c are connected to each other by threading, screwing, clasps, bonding, or welding. In the present embodiment, the upper housing 12c and the lower housing 11c are connected to each other by ultrasonic welding.
[0082] The tentacle-shaped bionic lamp further includes a support frame (not shown); the housing is provided with a first mounting hole 6c for suspending the jellyfish lamp and a second mounting hole (not shown) for mounting the support frame. The support frame supports the tentacle-like bionic animal lamp as a whole through the second mounting hole. In this way, the tentacle-shaped bionic lamp can be suspended at a location where it is to be used, and can also be placed at a location where it is to be used via the support frame.
[0083] This embodiment has a simpler structure, lower production costs and promotes popularization and use. QUOTES CONTAINED IN THE DESCRIPTION
[0000] This list of documents submitted by the applicant was generated automatically and is included solely for the convenience of the reader. This list is not part of the German patent or utility model application. The DPMA assumes no liability for any errors or omissions. Cited patent literature
[0000] CN 218565341U
[0004]
Claims
[1] Bionic lamp in the shape of a tentacled animal, characterized by that the lamp comprises a housing component and a plurality of curved tentacles detachably connected to the housing component; wherein the housing component comprises a housing, wherein a drive device for driving the rotation of the tentacles is provided in the housing; wherein a control device is provided in the housing, wherein the control device comprises a circuit board, and the drive device is electrically connected to the circuit board; wherein a light source is also provided in the housing, wherein the light source is electrically connected to the circuit board; wherein the drive device comprises a drive motor, wherein a drive gear is provided on the drive shaft of the drive motor; wherein an output gear set is rotatably provided on the housing, wherein the drive gear meshes with the output gear set, wherein the tentacles are detachably connected to the output gear set, wherein the drive motor drives each of the tentacles via the output gear set to rotate independently. [2] Bionic lamp in the form of a tentacled animal according to claim 1, characterized by that the housing comprises a lower housing and an upper housing, wherein a first through-hole is provided on the lower housing, wherein an annular flange or an annular countersunk hole having an inner diameter larger than the first through-hole is provided in the lower housing, wherein the annular flange or the annular countersunk hole is arranged coaxially with the first through-hole. [3] Bionic lamp in the form of a tentacled animal according to claim 2, characterized by that the output gear set comprises a first output gear set and a second output gear set; wherein the drive gear meshes with the first output gear set; wherein the first output gear set meshes with the second output gear set; wherein the first output gear set comprises more than three first gears; wherein the second output gear set comprises more than six second gears, wherein the number of second gears is twice that of the first gears and one of the first gears drives two of the second gears for rotation; wherein the first gear and the second gear have the same structure and an upper projection is provided on the top side of the first gear, a lower projection is provided on the bottom side of the first gear and a recess for mounting the tentacles is provided on the lower projection, the lower projection being arranged in the annular flange, the side wall of the lower projection being in clearance fit with the annular flange. [4] Bionic lamp in the form of a tentacled animal according to claim 3, characterized by that the printed circuit board is provided with second through-holes which correspond in number and position to the upper projections, wherein the upper projections extend through the second through-holes and the upper projections are in loose fit with the second through-holes. [5] Bionic lamp in the form of a tentacled animal according to claim 3, characterized bythat the lower housing is provided with a gear cover plate, wherein the gear cover plate is provided with third through holes which correspond in number and position to the upper projections, wherein the upper projections extend through the third through holes and the upper projections are in clearance fit with the third through holes. [6] Bionic lamp in the form of a tentacled animal according to claim 3, characterized by that the housing is made of translucent material; wherein the upper housing and the lower housing are connected to each other by threading, buckle or welding; wherein the tentacles and the recess are connected to each other by interference fitting, magnetic attraction, threading or buckle. [7] Bionic lamp in the form of a tentacled animal according to claim 2, characterized by that the upper housing is made of translucent flexible material and that a solar panel is provided on the upper housing. [8] Bionic lamp in the form of a tentacled animal according to claim 1, characterized by that the control device further comprises a sensing module or a contactless control module, wherein the sensing module or the contactless control module is electrically connected to the circuit board; wherein the sensing module is a sound sensing module, a human body sensing module, an infrared sensing module, or a vibration sensing module; wherein the contactless control module is a Bluetooth module, WIFI transmission module or radio frequency module; wherein the housing contains a battery that is electrically connected to the circuit board; wherein light sources are provided on both sides of the circuit board; wherein the circuit board also contains light effect switching buttons, mode selection switches, and charging interfaces; wherein the lamp also comprises a support frame; wherein a first mounting hole for hanging the jellyfish lamp and a second mounting hole for mounting the support frame are provided on the housing. [9] Bionic lamp in the shape of a tentacled animal, characterized by that the lamp comprises a housing component and a plurality of curved tentacles detachably connected to the housing component; wherein the housing component comprises a housing, wherein a drive device for driving the rotation of the tentacles is provided in the housing; wherein a control device is provided in the housing, wherein the control device comprises a circuit board, and the drive device is electrically connected to the circuit board; wherein a light source is also provided in the housing, wherein the light source is electrically connected to the circuit board; wherein the drive device comprises a drive motor, wherein a drive gear is provided on the drive shaft of the drive motor; wherein a turntable is rotatably provided on the housing and an output gear is provided on the turntable, wherein the drive gear meshes with the output gear, wherein the tentacles are detachably connected to the turntable, wherein the drive motor drives all the tentacles such that they rotate as a whole through the turntable. [10] Bionic lamp in the form of a tentacled animal according to claim 9, characterized by that the housing is made of translucent material; the housing comprises a lower housing and an upper housing, wherein a first through-hole is provided on the lower housing, wherein an annular flange or an annular countersunk hole having an inner diameter larger than the first through-hole is provided in the lower housing, wherein the annular flange or the annular countersunk hole is arranged coaxially with the first through-hole; wherein the side wall of the turntable is in clearance fit with the annular flange or the annular countersunk hole; wherein the control device further comprises a sensing module or a contactless control module, wherein the sensing module or the contactless control module is electrically connected to the circuit board; wherein the sensing module is a sound sensing module, a human body sensing module, an infrared sensing module, or a vibration sensing module; wherein the contactless control module is a Bluetooth module, WIFI transmission module or radio frequency module; wherein the housing contains a battery that is electrically connected to the circuit board; wherein light sources are provided on both sides of the circuit board; wherein the circuit board also contains light effect switching buttons, mode selection switches, and charging interfaces; wherein the upper housing and the lower housing are connected by threading, buckle, or welding; wherein the tentacles and the turntable are connected by interference fit, magnetic attraction, threading, or buckle; wherein the lamp also comprises a support frame; wherein a first mounting hole for hanging the jellyfish lamp and a second mounting hole for mounting the support frame are provided on the housing.
Citation Information
Patent Citations
Jellyfish lamp ornament with whisker rotating function
CN218565341U