Lamp holder structure and lamp
A lamp head and molding structure technology, applied in the field of lighting, can solve problems such as poor installation reliability and complicated installation process of optical structures, and achieve the effects of facilitating heat dissipation, avoiding poor stabilization effect, and improving installation reliability
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Embodiment 1
[0035] Please also refer to Figure 1 to Figure 3 The lamp head structure provided by the embodiment of the present invention includes a first lighting assembly 1, a second lighting assembly 2, a circuit board 3, and a heat dissipation bracket 4 fixed on the circuit board 3. The heat dissipation bracket 4 is an integrally formed structure made of metal materials. , aluminum is selected here but not exclusively limited. One side of the cooling bracket 4 has at least a first installation position 411 and a second installation position 421 arranged at intervals, the first lighting assembly 1 is installed on the first installation position 411, and the second lighting assembly 2 is installed on the second installation position 421. That is to say, the first lighting assembly 1 and the second lighting assembly 2 are installed on the cooling bracket 4 respectively. Moreover, the structures of the first lighting assembly 1 and the second lighting assembly 2 are not exactly the same....
Embodiment 2
[0051] Please also refer to Figure 5 to Figure 7 The difference between this embodiment and Embodiment 1 is that: the other side of the heat dissipation support 4 is provided with a plurality of evenly distributed second heat dissipation fins 6, and each second heat dissipation fin 6 is extended along the length direction of the heat dissipation support 4, and At least part of the second heat dissipation fins 6 extend into the heat dissipation cavity 422 , that is, at least part of at least some of the second heat dissipation fins 6 extend into the heat dissipation cavity 422 . Wherein, the extending direction of the second cooling fins 6 is perpendicular to the axial direction of the cooling bracket 4 . And a plurality of second heat dissipation fins 6 are arranged at intervals, and every two adjacent second heat dissipation fins 6 are evenly spaced to form a first heat dissipation groove 61, that is, a plurality of second heat dissipation fins 6 are surrounded to form a plu...
Embodiment 3
[0058] see Figure 8The difference between this embodiment and Embodiment 2 is that: the other side of the heat dissipation support 4 is provided with a plurality of third heat dissipation fins 7, and each third heat dissipation fin 7 extends along the width direction of the heat dissipation support 4, and is respectively connected to each The second heat dissipation fins 6 , that is, a plurality of third heat dissipation fins 7 are disposed on the second heat dissipation fins 6 . A plurality of third heat dissipation fins 7 are arranged at intervals, and two adjacent third heat dissipation fins 7 are spaced apart to form second heat dissipation grooves 71. Each second heat dissipation groove 71 extends along the width direction of the heat dissipation support 4 and communicates with the first heat dissipation fins 7 respectively. Heat dissipation groove 61; Wherein, the extension direction of the third heat dissipation fin 7 is perpendicular to the axial direction of the heat...
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