LED lamp

The LED lamp's innovative design with a detachable lens and load receiving portions addresses component damage and detachment issues, ensuring easy and secure attachment and removal while maintaining structural integrity.

JP2025110159APending Publication Date: 2025-07-28PANASONIC INTELLECTUAL PROPERTY MANAGEMENT CO LTD
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Patent Information

Application Number
JP2024003935
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-01-15
Publication Date
2025-07-28

AI Technical Summary

Technical Problem

Existing detachable LED lamps face issues with component damage and detachment during attachment and detachment operations, requiring significant force and posing risks of breakage and dropping.

Method used

The LED lamp design includes a light source unit, holder, circuit, lens, and a base pin, with the lens being detachable by applying a rotational load, and the holder and lens having load receiving portions to manage rotational forces, ensuring easy attachment and detachment while minimizing component stress.

Benefits of technology

The design effectively suppresses damage and detachment of components during lamp operations, facilitating easy installation and removal without compromising structural integrity.

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Abstract

To effectively restrain a failure such as damage or a fall of a component at the time of attachment and detachment of a lamp.SOLUTION: An LED lamp 1 can be attached to and detached from a socket 101, and comprises a light source part 20, a circuit 30, a holder 40 holding the light source part 20, and a lens 50 for controlling light emitted from the light source part 20. In addition, the LED lamp 1 comprises: a bottomed cylindrical outer cover 10; and a base pin 15 protruding from the outer cover 10, and electrically connected to the circuit 30; and is constituted so as to be capable of being attached to and detached from the socket by applying a rotational load to the lens 50. The holder 40 and the lens 50 are provided with a load receiving part for receiving the rotational load acting on the lens 50.SELECTED DRAWING: Figure 8
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Description

Technical Field

[0001] The present disclosure relates to an LED lamp, and particularly to an LED lamp that is detachable from a socket.

Background Art

[0002] Conventionally, an LED lamp configured to be detachable from a socket of a lighting fixture has been widely known (see, for example, Patent Document 1). The LED lamp disclosed in Patent Document 1 is a spherical lamp including a light source unit including an LED element, a substantially oval globe, a resin holder into which an opening peripheral edge of the globe is fitted, and a base portion attached to the holder. A power supply circuit for converting the power supplied from a commercial power supply through the base portion and supplying it to the LED element is housed in the holder of the LED lamp.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] By the way, when attaching an LED lamp to a socket of a lighting fixture, for example, the lamp is attached to the socket by rotating the LED lamp. Also, the lamp is removed from the socket by rotating the LED lamp in the direction opposite to the attachment direction. In an LED lamp that is detachable from a socket, it is an important issue that the attachment and detachment operations are easy. Further, when attaching and detaching the LED lamp, it is also assumed that a large force acts on the components constituting the lamp, and there are concerns about breakage, dropping, etc. of the components.

Means for Solving the Problems

[0005] The LED lamp according to the present disclosure is a detachable LED lamp with respect to a socket, and includes a light source unit including an LED element, a holder for holding the light source unit, a circuit for supplying power to the light source unit, a lens fixed to the holder for controlling light emitted from the light source unit, a bottomed cylindrical outer cover for housing the light source unit, the holder, the circuit, and the lens, and a base pin protruding from the outer cover and electrically connected to the circuit. The lens is configured to be detachable from the socket by applying a rotational load thereto, and the holder and the lens are provided with load receiving portions for receiving the rotational load acting on the lens.

Advantages of the Invention

[0006] According to the LED lamp according to the present disclosure, problems such as damage and detachment of components during attachment and detachment of the lamp can be effectively suppressed. The LED lamp according to the present disclosure is easy to attach to a socket and can be easily removed from the socket.

Brief Description of the Drawings

[0007]

Figure 1

Figure 2

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Figure 4

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Figure 8

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Figure 10

Figure 11

Mode for Carrying Out the Invention

[0008] Hereinafter, with reference to the drawings, an example of an embodiment of an LED lamp according to the present disclosure will be described in detail.

[0009] FIG. 1 is a perspective view of an LED lamp 1 which is an example of an embodiment, showing a state where the LED lamp 1 is attached to a connection device 100 including a socket 101. As shown in FIG. 1, the LED lamp 1 constitutes a spotlight together with the connection device 100. A spotlight is generally a lighting fixture that intensively illuminates the direction in which the lamp is facing. In the example shown in FIG. 1, the connection device 100 that constitutes the spotlight is attached to a wiring duct rail 104. Note that the LED lamp 1 may be attached to a socket for a spotlight provided on, for example, the ceiling or wall of a building.

[0010] The connection device 100 includes a socket 101, a plug 102 attached to the wiring duct rail 104, and a shaft 103 that connects the socket 101 and the plug 102, and has a structure in which the shaft 103 extends from the central portion in the radial direction of the columnar plug 102. The socket 101 is formed in a columnar shape similar to the plug 102, but since a part of the LED lamp 1 is inserted into the socket 101, its diameter is larger than that of the plug 102. Although details will be described later, by inserting a part of the LED lamp 1 into the socket 101, the outer peripheral surfaces of the LED lamp 1 and the socket 101 can be flush, improving the design of the light.

[0011] The connecting device 100 has a swinging mechanism in which the socket 101 rotates at a predetermined angle with respect to the shaft 103. The swinging mechanism may have a structure in which the socket 101 rotates at a predetermined angle with the tip of the shaft 103 as the rotation axis, or may have a structure in which the socket 101 is rotatable around the shaft. Also, the shaft 103 may be rotatable with respect to the plug 102. With the swinging mechanism of the connecting device 100, the LED lamp 1 can be directed toward a place where light is desired to be irradiated while the connecting device 100 is attached to the wiring duct rail 104.

[0012] The LED lamp 1 includes a bottomed cylindrical outer cover 10 and a light-shielding hood 70 inserted into the cylinder of the outer cover 10. Although details will be described later, in the present embodiment, the light-shielding hood 70 is detachable from the lens 50. Also, the LED lamp 1 is detachable from the socket 101. The LED lamp 1 includes base pins 15 (see FIG. 3 and the like described later) protruding from the outer cover 10, and the LED lamp 1 is attached to the socket 101 by inserting the base pins 15 into the pin insertion portion of the socket 101, and the LED lamp 1 and the socket 101 are electrically connected.

[0013] The LED lamp 1 has a structure in which a light source unit 20 (see FIG. 4 and the like described later), a lens 50, and the like are accommodated in the cylinder of the outer cover 10. The outer cover 10 forms the appearance of the LED lamp 1 and functions as a housing for accommodating the light source unit 20, the lens 50, and the like. In the form illustrated in FIG. 1, the outer cover 10 of the LED lamp 1 constitutes the outer cover of a spotlight. In other words, the outer cover 10 forms the appearance of a spotlight. Note that a conventionally known spotlight has a structure in which an LED lamp is accommodated in a cylinder of a bottomed cylindrical cover, and the outer cover of the LED lamp does not form the appearance of a spotlight.

[0014] According to the LED lamp 1, since the outer cover 10 forms the appearance of the spotlight, a cover for covering the lamp is not required, and a significant reduction in the diameter of the spotlight can be achieved. Also, the LED lamp 1 can be easily attached to and detached from the socket 101. For example, there is no need to put a hand into the cylinder of the cover to replace the lamp or disassemble the lighting fixture to replace the lamp. The outer cover 10 and the light-shielding hood 70 are formed in a cylindrical shape having a constant outer diameter for the portion appearing in the appearance of the spotlight. And the outer cover 10, the light-shielding hood 70, and the socket 101 have substantially the same outer diameter, and their outer peripheral surfaces are flush. The spotlight using the LED lamp 1 has a stylish design with an overall integrated feeling.

[0015] As described above, the LED lamp 1 includes a lens 50 that controls the light emitted from the light source unit 20. The lens 50 has a light-emitting surface 52 that is circular in plan view. In this specification, the plan view means the case of viewing from a direction perpendicular to the light-emitting surface 52 of the lens 50 unless otherwise specified. A protrusion 53 for lamp attachment and detachment is formed on the light-emitting surface 52. When removing the LED lamp 1 from the socket 101, the LED lamp 1 can be rotated with respect to the socket 101 by applying a rotational load to the lens 50 using this protrusion 53, and the LED lamp 1 can be removed. When attaching the LED lamp 1 to the socket 101, it can be attached to the socket 101 by rotating the LED lamp 1 in the direction opposite to the removal direction using the protrusion 53.

[0016] In the case of the spotlight illustrated in FIG. 1, since the socket 101 of the connection device 100 is exposed without being embedded in the ceiling, wall, etc., when attaching and detaching the LED lamp 1 to and from the socket 101, the outer cover 10 of the LED lamp 1 can be grasped to rotate the lamp.

[0017] FIG. 2 is a view showing how the LED lamp 1 is attached to the downlight frame 110. FIG. 2(a) shows how the LED lamp 1 is inserted into the recessed hole in the ceiling, and FIG. 2(b) shows how the lamp is rotated and attached to a socket (not shown) after the LED lamp 1 is inserted into the recessed hole. A downlight is generally a ceiling recessed lighting fixture installed on the ceiling of a building. The downlight frame 110 has, for example, a substantially cylindrical shape with a diameter that tapers upward and is attached to the recessed hole in the ceiling. In the case of the downlight illustrated in FIG. 2, the socket is arranged behind the ceiling. Also, in the case of a downlight, the light-shielding hood 70 is not used.

[0018] The LED lamp 1 is inserted into the cylinder of the downlight frame 110 and attached to a socket arranged behind the ceiling. As shown in FIG. 2(b), for the LED lamp 1 that constitutes the downlight, the entire lamp is arranged above the ceiling board, and only the light-emitting surface 52 of the lens 50 is exposed from the opening 111 of the downlight frame 110. Therefore, when rotating the LED lamp 1 with respect to the socket 101, the protrusion 53 formed on the light-emitting surface 52 is used, and the user can rotate the LED lamp 1 by placing a finger on the protrusion 53. From the perspective of improving operability, it is preferable that the protrusion 53 extends long in the radial direction of the lens 50 and two or more protrusions are formed side by side in the radial direction.

[0019] FIG. 3 is a perspective view of the LED lamp 1 showing a state in which the light-shielding hood 70 is removed. As shown in FIG. 3, the light-shielding hood 70 is configured to be detachable. The light-shielding hood 70 includes a light-shielding portion 71 extending from the opening of the outer cover 10 and an insertion portion 72 inserted into the cylinder of the outer cover 10. Although it will be described in detail later, the light-shielding hood 70 is attached to the lens 50 inside the cylinder of the outer cover 10. That is, the light-shielding hood 70 is detachably attached to the lens 50. An engaging protrusion 73 that engages with the light-shielding hood fixing portion 60 (see FIGS. 8 and the like described later) of the lens 50 is formed on the insertion portion 72 of the light-shielding hood 70.

[0020] The light-shielding hood 70 is generally applied to a spotlight and has a function of covering the periphery of the opening of the outer cover 10 to block light that spreads beyond the intended irradiation target. The light-shielding hood 70 may be a metal member or a resin member. The light-shielding hood 70 is, for example, made of the same material as the outer cover 10 and has the same color as the outer cover 10.

[0021] The light-shielding portion 71 extends axially from the opening of the outer cover 10 to block unnecessary light. The light-shielding portion 71 is formed in a cylindrical shape having the same outer diameter as the outer cover 10, and the outer peripheral surface of the light-shielding portion 71 is flush with the outer peripheral surface of the outer cover 10. The axial length of the light-shielding portion 71 is not particularly limited and is appropriately set according to the size of the LED lamp 1 or the like. An example of the axial length of the light-shielding portion 71 is 10 mm or more and 40 mm or less. The axial length of the light-shielding portion 71 may be shorter than the axial length of the insertion portion 72, but in this embodiment, it is longer than the axial length of the insertion portion 72.

[0022] The insertion portion 72 is formed in a cylindrical shape in the same manner as the light-shielding portion 71, but its outer diameter is smaller than the outer diameter of the light-shielding portion 71. For this reason, a step is formed on the outer peripheral surface of the light-shielding hood 70. Since the insertion portion 72 is a portion that is inserted into the cylinder of the outer cover 10, the outer diameter of the insertion portion 72 is smaller than the inner diameter of the outer cover 10. However, the outer diameter of the insertion portion 72 is preferably close to the inner diameter of the outer cover 10 within a range that does not hinder insertion into the outer cover 10. The inner diameter of the light-shielding hood 70 is, for example, constant over the entire axial length, and the insertion portion 72 is formed thinner than the light-shielding portion 71.

[0023] Most of the insertion portion 72, for example, 90% or more, or 95% or more of the axial length of the insertion portion 72, is inserted into the outer cover 10, but in order to securely fix the light-shielding hood 70 to the lens 50, the insertion portion 72 slightly protrudes from the cylinder of the outer cover 10. In this case, it is possible to prevent the outer cover 10 and the light-shielding portion 71 from coming into contact and causing an obstacle to the attachment of the light-shielding hood 70. Although there is a slight gap between the outer cover 10 and the light-shielding portion 71, if this gap is 10% or less, or 5% or less of the axial length of the light-shielding portion 71, it has almost no effect on the design.

[0024] The outer peripheral surface of the insertion portion 72 is disposed opposite to the inner peripheral surface of the outer cover 10 with a slight gap therebetween. Note that the outer peripheral surface of the insertion portion 72 may be in contact with the inner peripheral surface of the outer cover 10 as long as there is no hindrance to the insertion into the outer cover 10. The insertion portion 72 is preferably configured to abut against the inner peripheral surface of the outer cover 10 when a force acts at least in the radial direction of the light shielding hood 70. In this case, the load applied in the radial direction of the light shielding hood 70 can be received by the outer cover 10, and damage to the components, dropping off of the light shielding hood 70, etc. can be effectively suppressed. The outer diameter of the insertion portion 72 is, for example, 90% or more, or 95% or more of the inner diameter of the outer cover 10.

[0025] The LED lamp 1 includes a pair of base pins 15 protruding from the bottom of the outer cover 10 formed in a bottomed cylindrical shape. The base pins 15 extend along the axial direction of the outer cover 10 from the other axial end side opposite to the one axial end where the light shielding hood 70 is attached. The base pins 15 are metal power supply pins that are electrically connected to a circuit 30 (see FIGS. 4 and the like described later) for supplying power to the light source unit 20 and receive power from a socket of a lighting fixture and send the power to the circuit 30. The tip of the base pin 15 has an enlarged diameter so as to be caught by the pin insertion portion of the socket.

[0026] Two base pins 15 are provided side by side in the radial direction of the outer cover 10. The distance between the pair of base pins 15 along the radial direction (hereinafter sometimes referred to as "pin distance") is not particularly limited, but is, for example, 40 mm or less, or 35 mm or less, or 30 mm or less. Note that the pin distance means the shortest distance between the central axes of the two pins. An example of a preferable range of the pin distance is 15 mm or more and 40 mm or less, or 20 mm or more and 35 mm or less, or 25 mm or more and 30 mm or less. If the pin distance is within the said range, it becomes easy to reduce the size of the lighting fixture.

[0027] The outer cover 10 is formed in a generally bottomed and substantially cylindrical shape as a whole, but the diameter is reduced on the bottom side where the base pin 15 protrudes. The outer cover 10 has a large-diameter portion 11 that forms the appearance of the spotlight and a small-diameter portion 12 that is inserted into the socket 101. The outer cover 10 further has a convex portion 13 that protrudes axially from the small-diameter portion 12. The outer cover 10 may be a metal member or a resin member. An example of the resin constituting the outer cover 10 is polybutylene terephthalate (PBT).

[0028] In the outer cover 10, a large-diameter portion 11, a small-diameter portion 12, and a convex portion 13 are formed in order from the opening side, and the convex portion 13 is also inserted into the socket 101. The socket 101 has a housing portion for the convex portion 13 together with the pin insertion portion. The outer diameter difference between the small-diameter portion 12 and the convex portion 13 is larger than the outer diameter difference between the large-diameter portion 11 and the small-diameter portion 12. The axial length of the large-diameter portion 11 is preferably 75% or more of the axial length L of the outer cover 10 (see FIG. 5 described later), and may be 75% or more and 95% or less, or 80% or more and 90% or less.

[0029] The outer diameter of the large-diameter portion 11 is substantially the same as the outer diameter of the light-shielding portion 71 of the light-shielding hood 70 and the outer diameter of the socket 101, and their outer peripheral surfaces are flush. The outer diameter of the small-diameter portion 12 is preferably close to the inner diameter of the socket 101 within a range that does not hinder insertion into the socket 101. The convex portion 13 is formed in a cylindrical shape at the center in the radial direction of the outer cover 10 and has a protrusion 13a formed on the outer peripheral surface. The protrusion 13a catches on the socket 101 in the same manner as the base pin 15, enhancing the reliability of fixing the LED lamp 1 to the socket 101.

[0030] FIG. 4 is an exploded perspective view of the LED lamp 1. As shown in FIG. 4, the LED lamp 1 includes a light source unit 20 including an LED element 21, a circuit 30 for supplying power to the light source unit 20, a holder 40 for holding the light source unit 20, and a lens 50 for controlling the light emitted from the light source unit 20. The LED lamp 1 includes, as described above, a bottomed cylindrical outer cover 10 that houses the light source unit 20, the circuit 30, the holder 40, and the lens 50, and a base pin 15 that protrudes from the outer cover 10 and is electrically connected to the circuit 30. The LED lamp 1 further includes a heat sink 25 for releasing the heat of the light source unit 20 and a cylindrical circuit holder 35 for holding the circuit 30. The LED lamp 1 may also include a detachable light-shielding hood 70.

[0031] The LED lamp 1 is, for example, a small-diameter lamp with a diameter of 50 mm or less. The diameter of the large-diameter portion 11 of the outer cover 10 that forms the appearance of the LED lamp 1 is, for example, 35 mm or more and 45 mm or less. The outer cover 10 is longer in the axial direction than in the radial direction, and the axial length L thereof may be 1.3 times or more and 1.7 times or less the diameter (the diameter of the large-diameter portion 11). Note that the circuit holder 25 and the holder 40 are members made of resin mainly composed of PBT or the like, and the heat sink 25 is a member made of metal mainly composed of aluminum or the like. The lens 50 is made of, for example, a resin such as polycarbonate having high transparency and durability, or glass.

[0032] Since the LED lamp 1 is long in the axial direction, when assembling the components with the bottom side of the outer cover 10, such as the boundary position between the large-diameter portion 11 and the small-diameter portion 12 of the outer cover 10, as a reference position, it becomes difficult to assemble the lens 50 at the target position, and as a result, problems such as large variation in light distribution may occur in each product. Therefore, in the LED lamp 1, the lens 50 is fixed to the holder 40 and together with the holder 40 constitutes a module. Thereby, the distance between the light source unit 20 and the lens 50 becomes constant.

[0033] The LED lamp 1 includes an LED module 2 composed of a light source unit 20, a holder 40, and a lens 50. The holder 40 is formed in a bottomed cylindrical shape and includes a base portion 41 forming the bottom of the cylinder and a cylindrical wall 42 erected on the outer peripheral edge of the base portion 41. The base portion 41 has an opening 43 formed in the radially central portion and fixing claws formed around the opening 43. The light source unit 20 is arranged in the radially central portion from the lower surface side of the base portion 41 so as to close the opening 43 and is held by the fixing claws formed on the peripheral edge of the opening 43. The holder 40 holding the light source unit 20 is fixed to the heat sink 25 using a screw 46, and then the lens 50 is fixed to the holder 40 to form the LED module 2.

[0034] The LED module 2 is arranged closer to the opening side than the axial center of the outer cover 10. A heat sink 25 that is long in the axial direction is accommodated on the bottom side of the outer cover 10 relative to the LED module 2. That is, although the lens 50 is attached at a position away from the bottom of the outer cover 10, since the light source unit 20, the holder 40, and the lens 50 are integrated to form the LED module 2, the distance between the light source unit 20 and the lens 50 can be managed with high precision, and the distance is not affected by the assembly error of other components.

[0035] The light source unit 20 includes an LED element 21 and a substrate 22 on which the LED element 21 is mounted. An example of a suitable light source unit 20 is a COB (Chip on board) type lighting light emitting diode device. A plurality of LED elements 21 are mounted, for example, at the center of the surface of a substantially square substrate 22 to form a light emitting portion having a circular shape in plan view. A pair of electrodes are provided around the light emitting portion, and wiring extending from the circuit 30 is connected thereto. The light source unit 20 is fixed to the base portion 41 of the holder 40 such that the light emitting portion including the LED element 21 is exposed from the opening 43 of the holder 40 and faces the opening of the outer cover 10.

[0036] The heat sink 25 is a member to which the holder 40 is screwed, and functions as a heat radiating member that releases the heat of the light source unit 20. The heat sink 25 is a bottomed cylindrical body including a base 26 to which the holder 40 is fixed, and a cylindrical wall 27 erected on the outer peripheral edge of the base 26 and extending in a direction opposite to the lens 50. By extending the heat sink 25 long in the direction opposite to the lens 50, it is possible to effectively release the heat of the light source unit 20 while suppressing the thermal influence on the lens 50. Further, in the present embodiment, the surface of the base 26 to which the holder 40 is fixed serves as a reference surface for intersection determination when assembling the lens 50. Since the distance between the lens 50 and the reference surface is short, it is hardly affected by the machining accuracy of the parts and the assembly error of other parts, and the lens 50 can be accurately assembled at the target position.

[0037] A screw hole 26a and a wiring insertion hole 26b are formed in the base 26 of the heat sink 25. A screw 46 for fixing the holder 40 is fastened to the screw hole 26a, and wiring extending from the circuit 30 is passed through the wiring insertion hole 26b. The light source unit 20 is pressed against the base 26 by screwing the holder 40 to the base 26, and a good heat conduction path is formed between the light source unit 20 and the heat sink 25. It is preferable that a heat dissipation grease or a heat dissipation sheet is interposed between the light source unit 20 and the base 26.

[0038] The cylindrical wall 27 of the heat sink 25 is formed in a substantially cylindrical shape and houses a circuit holder 35 holding the circuit 30. A locking hole 28 used for fixing the circuit holder 35 and an axially extending guide groove 29 are formed on the outer peripheral surface of the cylindrical wall 27. The guide groove 29 is a groove into which a cylindrical projection 14 formed on the outer cover 10 fits, and is formed at a position overlapping the locking hole 28. In other words, the locking hole 28 is formed in the guide groove 29. In the present embodiment, the locking hole 28 is used for fixing the outer cover 10 and the circuit holder 35.

[0039] The circuit 30 is a power supply circuit that converts the alternating current of a commercial power supply into a direct current for lighting the LED element 21. The circuit 30 includes a circuit board 31 and circuit components 32 mounted on the circuit board 31. A base pin 15 is connected to an end of the circuit board 31, and an alternating current is supplied to the circuit 30 from the socket 101 via the base pin 15. The circuit components 32 include a switching element, a choke coil, a capacitor, etc. Note that the capacitor has lower heat resistance compared to other circuit components 32 such as the choke coil.

[0040] The circuit board 31 has, for example, a substantially rectangular shape and is held by the circuit holder 35 in a state where the longitudinal direction is along the axial direction of the outer cover 10. A pair of base pins 15 are provided in a state of protruding from one end in the longitudinal direction of the circuit board 31 to the bottom side of the outer cover 10. The capacitor is arranged so as to be sandwiched between the pair of base pins 15 and is mounted in a state of protruding from one end in the length direction of the circuit board 31 to the bottom side of the outer cover 10, similar to the base pins 15. In the LED lamp 1, the circuit board 31 is inserted into a board fixing portion 36 formed inside the cylinder of the circuit holder 35, and the base pins 15 are held by the base pin fixing portion 37. Thereby, the circuit 30 is held inside the cylinder of the circuit holder 35.

[0041] The circuit holder 35 is a substantially cylindrical member that holds the circuit 30 and is fixed to a heat sink 25 that covers the outside of the holder. The circuit holder 35 has a board fixing portion 36 formed inside the cylinder, a base pin fixing portion 37 formed at the axial end, and a fixing piece 38 that engages with the heat sink 25. The board fixing portion 36 includes a groove extending in the axial direction and is formed at two locations on the inner peripheral surface of the circuit holder 35. Each board fixing portion 36 holds both end portions in the width direction of the circuit board 31 inserted into the groove. Two base pin fixing portions 37 are provided corresponding to the pair of base pins 15 and have a semi-annular groove into which a flange formed on the base pin 15 fits.

[0042] The fixing piece 38 is a part separated from the other part of the cylinder wall by two axially extending slits of the circuit holder 35 and is radially elastically deformable. A protrusion engaging with the heat sink 25 is formed at the tip of the fixing piece 38. The fixing pieces 38 are formed at two positions facing each other in the radial direction of the circuit holder 35. After fixing the circuit 30 inside the cylinder of the circuit holder 35, by inserting the circuit holder 35 into the cylinder of the heat sink 25, the protrusion of the fixing piece 38 fits into the locking hole 28 of the heat sink 25, and the circuit holder 35 is fixed to the heat sink 25.

[0043] Figs. 5 and 6 are cross-sectional views of the LED lamp 1 cut along the axial and radial directions of the outer cover 10. Fig. 5 is a cross-sectional view of the LED lamp 1 cut along the first radial direction in which the base pins 15 are arranged, and Fig. 6 is a cross-sectional view of the LED lamp 1 cut along the second radial direction orthogonal to the first radial direction. Figs. 5 and 6 show the cross-section of the LED lamp 1 in a state where the light-shielding hood 70 is not mounted.

[0044] As shown in Figs. 5 and 6, the LED lamp 1 has an internal structure in which a bottomed cylindrical heat sink 25 is accommodated on the bottom side of the outer cover 10, and the LED module 2 is fixed on the base 26 of the heat sink 25. The heat sink 25 is accommodated in the large-diameter portion 11 of the outer cover 10. The circuit holder 35 holding the circuit 30 is fixed inside the cylinder of the heat sink 25 as described above. A part of the circuit holder 35 protrudes from inside the cylinder of the heat sink 25 into the small-diameter portion 12 of the outer cover 10, and a part of the circuit component 32 enters the convex portion 13. For example, a capacitor that is vulnerable to heat is inserted into the convex portion 13. Alternatively, a component with a larger heat generation amount than other circuit components 32 may be accommodated in the convex portion 13.

[0045] The small-diameter portion 12 of the outer cover 10 has a smaller outer diameter and inner diameter than the large-diameter portion 11, and a step is formed at the boundary between the large-diameter portion 11 and the small-diameter portion 12 on the inner peripheral surface of the outer cover 10. The cylindrical wall 27 of the heat sink 25 is formed along the inner peripheral surface of the large-diameter portion 11 and extends to the vicinity of the step. A flange 39 that protrudes radially outward and catches on the step is formed on the outer peripheral surface of the circuit holder 35. In this embodiment, when the flange 39 hits the step of the outer cover 10, the positions of the circuit holder 35 with respect to the outer cover 10, the circuit 30 held by the circuit holder 35, and the base pin 15 connected to the circuit 30 are regulated.

[0046] Furthermore, a cylindrical inner protrusion 14, which is a fixing portion of the heat sink 25, is formed on the outer cover 10. Since the circuit holder 35 is fixed inside the cylinder of the heat sink 25, the circuit holder 35 is fixed to the outer cover 10 via the heat sink 25. The heat sink 25 is fixed to the outer cover 10 by fitting the cylindrical inner protrusion 14 into the locking hole 28 of the cylindrical wall 27. The pair of cylindrical inner protrusions 14 are protrusions for fixing the heat sink 25 and are formed at positions on the inner peripheral surface of the outer cover 10 that face each other. A protrusion of the fixing piece 38 of the circuit holder 35 is inserted into the locking hole 28 of the cylindrical wall 27 from the inside of the cylindrical wall 27, and the cylindrical inner protrusion 14 of the outer cover 10 is inserted from the outside of the cylindrical wall 27.

[0047] The heat sink 25 to which the circuit holder 35 is fixed inside the cylinder is inserted into the outer cover 10. At this time, align the position of the guide groove 29 (see FIG. 4) of the heat sink 25 with the position of the cylindrical inner protrusion 14, and insert the heat sink 25 so that the cylindrical inner protrusion 14 moves inside the guide groove 29. Then, when the cylindrical inner protrusion 14 fits into the locking hole 28 formed in the guide groove 29, the heat sink 25 is fixed to the outer cover 10. A through hole 12a through which the base pin 15 passes is formed at the bottom of the outer cover 10 (the bottom of the small-diameter portion 12). The LED lamp 1 is designed such that the base pin 15 protrudes from the through hole 12a to the outside of the outer cover 10 in a state where the heat sink 25 is fixed to the outer cover 10.

[0048] As described above, in the LED module 2, the base 41 of the holder 40 that holds the light source unit 20 is fixed to the base 26 of the heat sink 25 using screws 46. A screw insertion hole 47 through which the screw 46 passes is formed in the base 41 of the holder 40. Further, in the base 26 of the heat sink 25, a screw hole 26a to which the screw 46 is fastened and a wiring insertion hole 26b through which wiring extending from the circuit 30 passes are formed. Note that the LED module 2 does not have a fixing structure for the outer cover 10.

[0049] An adhesive 49 is filled between the LED module 2 and the outer cover 10. The adhesive 49 is filled, for example, in the gap between the outer peripheral surface of the holder 40 and the inner peripheral surface of the outer cover 10 after the holder 40 is screwed to the heat sink 25. Further, the adhesive 49 is pressed by the lens 50 fixed to the holder 40, fills the gap between the outer peripheral surface of the LED module 2 and the inner peripheral surface of the outer cover 10, and joins the LED module 2 and the outer cover 10. Although details will be described later, a plurality of outer peripheral surface recesses 48 (see FIG. 8 and the like described later) for expanding the adhesion area of the adhesive 49 are formed on the outer peripheral surface of the holder 40.

[0050] The adhesive 49 is not particularly limited, but from the viewpoints of adhesiveness, durability, etc., it is preferably mainly composed of a silicone resin. As the silicone-based adhesive, a two-component curable or moisture-curable adhesive can be used. Although the lens 50 of the LED module 2 is fixed by the adhesive 49, the lens 50 is fixed to the holder 40 in order to more reliably prevent the lens 50 from falling off even if the adhesive force decreases due to the aging deterioration of the adhesive 49. Further, by providing the fixing structure between the holder 40 and the lens 50, the distance between the light source unit 20 and the lens 50 is regulated with high precision.

[0051] The LED module 2 is disposed, for example, within a range of 30% or less, or 20% or less of the axial length L of the outer cover 10 from the opening of the outer cover 10. That is, an internal space of 70% or more of the axial length L of the outer cover 10 is occupied by the circuit 30 and the heat sink 25. The components of the LED lamp 1 including the LED module 2, the heat sink 25, the circuit 30, and the circuit holder 35 are substantially all accommodated within the cylinder of the outer cover 10. For this reason, the axial length L of the outer cover 10 is substantially equal to the axial length of the LED lamp 1. The axial length of the LED lamp 1 is not particularly limited, but as an example, it is 50 mm or more and 80 mm or less.

[0052] FIG. 7 is an enlarged view of part A in FIG. 6. As shown in FIG. 7, the lens 50 is fixed to a holder 40 that holds the light source unit 20, and together with the holder 40, constitutes a module. The LED module 2 includes a fixing structure including a locking claw 57 formed on the outer peripheral portion 54 of the lens 50 and a locking hole 45 formed on the cylindrical wall 42 of the holder 40. The lens 50 is fixed to the holder 40 by the locking claw 57 of the lens 50 fitting into the locking hole 45 of the holder 40 and being hooked on the cylindrical wall 42.

[0053] The LED module 2 further includes a load receiving portion for receiving a rotational load acting on the lens 50. As described above, the LED lamp 1 is configured to be detachable from the socket of the lighting fixture by applying a rotational load to the lens 50. The load receiving portion effectively suppresses damage to components due to the rotational load, the dropping off of the lens 50, etc. Although it is also possible to receive the rotational load by an adhesive 49, in that case, there is a concern about the dropping off of the lens 50 particularly when the adhesive 49 deteriorates over time. In the present embodiment, the load receiving portion is constituted by a convex portion 56 protruding from the outer peripheral portion 54 of the lens 50 and a concave portion 44 formed on the cylindrical wall 42 of the holder 40 into which the convex portion 56 fits.

[0054] A plurality of convex portions 56 and locking claws 57 of the lens 50 are formed respectively and arranged alternately along the circumferential direction of the lens 50. Similarly, a plurality of concave portions 44 and locking holes 45 of the holder 40 are formed respectively and arranged alternately along the circumferential direction of the holder 40. In this case, breakage of the LED module 2, dropping off of the lens 50, etc. can be suppressed more effectively. Two locking claws 57 are provided side by side in the first radial direction of the lens 50, and two convex portions 56 are provided side by side in the second radial direction orthogonal to the first radial direction.

[0055] The lens 50 is a Fresnel lens including a plurality of annular convex portions 51a arranged on concentric circles. The Fresnel lens is a lens in which the lens surface is divided concentrically to reduce the thickness and has a sawtooth-shaped cross-sectional shape. The Fresnel structure 51 including the plurality of annular convex portions 51a is formed on the light incident surface of the lens 50 facing the light source portion 20 side. In the lens 50, the diameter of the annular convex portion 51a becomes smaller and the height and width thereof become smaller as it approaches the central axis of the lens 50. The Fresnel structure 51 includes three annular convex portions 51a, and the region surrounded by the annular convex portion 51a having the smallest diameter is a gentle spherical surface bulging in the direction of the light source portion 20.

[0056] The lens 50 has a light emitting surface 52 having a circular shape in plan view. The light emitting surface 52 includes a first region 52a formed along the radial direction of the lens 50 and a second region 52b formed annularly surrounding the first region 52a and inclined so as to approach the light source portion 20 from the boundary of the first region 52a toward the outer peripheral edge of the light emitting surface 52. The light emitting surface 52 further includes a projection 53 for lamp attachment / detachment protruding from the second region 52b. By providing the second region 52b which is an inclined surface on the light emitting surface 52 and forming the projection 53 on the inclined surface, even if the projection 53 is made higher to improve the operability, the projection 53 is less conspicuous and the design property is not impaired.

[0057] The diameter φ1 of the first region 52a is preferably 50% or more of the diameter φ of the exit surface 52, and may be 55% or more and 90% or less, or 60% or more and 85% or less, or 65% or more and 80% or less. If the diameter φ1 of the first region 52a is within this range, it is possible to highly achieve both good optical characteristics of the lens 50 and good operability when attaching and detaching the lamp. The diameter φ1 of the first region 52a is not particularly limited, but when aiming to reduce the diameter of the lighting fixture, for example, it is smaller than the pin-to-pin distance of the pair of base pins 15, and is 15 mm or more and 30 mm or less, or 20 mm or more and 25 mm or less.

[0058] The boundary between the first region 52a and the second region 52b may be formed regardless of the Fresnel structure 51, but is preferably at a position substantially overlapping with the radially inner end of the annular convex portion 51a having the maximum diameter. In this case, the optical design of the lens 50 is easy. In other words, the second region 52b is formed in accordance with the position of the radially inner end of the annular convex portion 51a having the maximum diameter. Most of the light incident on the annular convex portion 51a having the maximum diameter is reflected by the total reflection surface of the annular convex portion 51a and emitted from the second region 52b.

[0059] The inclination angle θ of the second region 52b with respect to the virtual line α along the surface direction of the first region 52a is preferably 5° or more, and more preferably 7° or more. When the width of the second region 52b is the same, the larger the inclination angle θ, the higher the protrusion 53 can be formed. On the other hand, if the inclination angle θ becomes too large, it is assumed that the light emitted from the lens 50 spreads and the illuminance at the target location decreases. The inclination angle θ is, for example, 25° or less, or 20° or less. An example of the preferable range of the inclination angle θ is 5° or more and 25° or less, or 7° or more and 20° or less, or 8° or more and 15° or less.

[0060] The second region 52b may be curved so as to be gently convex along the radial direction of the lens 50, but preferably has no irregularities along the radial direction except for the portion where the protrusion 53 is formed. That is, in the radial cross-section of the lens 50, the second region 52b is formed flat at the inclination angle θ.

[0061] Figures 8 and 9 are perspective views showing an enlarged view of the LED module 2 and its vicinity. Figure 9 shows a state where the lens 50 is removed from the holder 40. As shown in Figures 8 and 9, the LED module 2 is fixed to the heat sink 25. The holder 40 is screwed to the heat sink 25, and the lens 50 is fixed to the heat sink 25 via the holder 40. The light source unit 20 is pressed against the heat sink 25 by the holder 40. As described above, on the light emitting surface 52 of the lens 50, a projection 53 for lamp attachment / detachment protruding from the second region 52b which is an inclined surface is formed. Details of the configuration of the light emitting surface 52 will be shown in FIGS. 10 and 11 described later.

[0062] The LED module 2 includes a locking hole 45 formed in the cylindrical wall 42 of the holder 40 and a locking claw 57 of the lens 50 inserted into the locking hole 45 as a fixing structure for more reliably preventing the lens 50 from falling off. The LED module 2 further includes a recess 44 formed in the cylindrical wall 42 of the holder 40 and a convex portion 56 of the lens 50 fitted into the recess 44 as a load receiving structure for receiving the rotational load applied to the lens 50. When a rotational load acts on the lens 50 during attachment / detachment of the LED lamp 1, the convex portion 56 abuts against the edge of the recess 44 and the rotational load is applied to the cylindrical wall 42 of the holder 40. Thereby, breakage of components (for example, the locking claw 57), detachment of the lens 50, etc. are more reliably prevented.

[0063] As described above, the holder 40 includes a base portion 41 screwed to the heat sink 25 and holding the light source unit 20, and a cylindrical wall 42 erected on the outer peripheral edge of the base portion 41. Two recesses 44 and two locking holes 45 are alternately formed in the cylindrical wall 42 at intervals of about 90° around the central axis of the holder 40. The two recesses 44 have the same shape and size as each other and are formed side by side in the radial direction of the holder 40. Similarly, the two locking holes 45 have the same shape and size as each other and are formed side by side in the radial direction of the holder 40.

[0064] The recess 44 is formed from the tip of the cylindrical wall 42 and is a depression surrounded by the cylindrical wall 42 on three sides. Since the recess 44 opens toward the lens 50, the convex portion 56 of the lens 50 can be fitted into the recess 44. The locking hole 45 is formed to penetrate the cylindrical wall 42 in the thickness direction and is a through hole surrounded by the cylindrical wall 42 on four sides. The locking claw 57 of the lens 50 is inserted into the locking hole 45 from the inner side in the radial direction of the cylindrical wall 42 and is caught by the edge of the locking hole 45. The gap between the recess 44 and the convex portion 56 in the circumferential direction of the cylindrical wall 42 is smaller than the gap between the locking hole 45 and the locking claw 57 in the circumferential direction. Thereby, the recess 44 and the convex portion 56 function as load receiving portions that receive the rotational load.

[0065] On the outer peripheral surface of the cylindrical wall 42, a plurality of outer peripheral surface recesses 48 are formed to expand the adhesion area of the adhesive 49. The outer peripheral surface recess 48 is a depression recessed inward in the radial direction of the cylindrical wall 42. The outer peripheral surface recess 48 is formed in a groove shape extending in the axial direction of the cylindrical wall 42 and is formed over the entire axial length of the cylindrical wall 42. The shapes and sizes of the respective outer peripheral surface recesses 48 may be different from each other, but in the present embodiment, they are substantially the same. The maximum depth of the outer peripheral surface recess 48 (the length along the radial direction from the outermost peripheral surface to the deepest part of the recess) is preferably 0.3 mm or more and 0.8 mm or less, and the width of the outer peripheral surface recess 48 is preferably 1.0 mm or more and 2.0 mm or less. In this case, the adhesive 49 easily enters the outer peripheral surface recess 48, and the adhesion area of the adhesive 49 is more effectively expanded.

[0066] The outer peripheral surface recesses 48 are formed at regular intervals in the circumferential direction over a wide range of the outer peripheral surface of the cylindrical wall 42 excluding, for example, the portion where the recess 44 and the locking hole 45 are formed and the vicinity thereof. Between the outer peripheral surface recesses 48 adjacent to each other in the circumferential direction of the cylindrical wall 42, there is a surface without a depression located on the same circumference, whereby unevenness is formed along the circumferential direction of the cylindrical wall 42. Further, the interval between the adjacent outer peripheral surface recesses 48 is preferably smaller than the width of the outer peripheral surface recess 48.

[0067] By forming a plurality of outer peripheral surface concave portions 48, the surface area of the outer peripheral surface becomes larger compared to the case where there are no irregularities on the outer peripheral surface, and the area to which the adhesive 49 adheres expands. As a result, the adhesion strength between the inner peripheral surface of the outer cover 10 and the holder 40 increases. The outer peripheral surface concave portion 48 preferably curves toward the inside of the cylindrical wall 42 and is formed in an arc shape in a plan view of the holder 40. In this case, the adhesive 49 easily enters the outer peripheral surface concave portion 48 and adheres to the surface of the concave portion, and the adhesion strength with the outer cover 10 is more effectively improved.

[0068] The lens 50 has an outer peripheral portion 54 formed in a substantially cylindrical shape. The convex portions 56 and the locking claws 57 each project axially from an end portion (one axial end portion) on the side opposite to the light-emitting surface 52 of the outer peripheral portion 54, and are alternately formed at intervals of about 90° around the central axis of the lens 50, two by two. The two convex portions 56 have the same shape and size as each other, and are formed side by side in the radial direction of the lens 50. Similarly, for the two locking claws 57, they have the same shape and size as each other, and are formed side by side in the radial direction of the lens 50. The locking claw 57 is formed to be elastically deformable in the radial direction of the lens 50. When fixing the lens 50 to the holder 40, it bends slightly inward in the radial direction and then returns to its original shape and is inserted into the locking hole 45.

[0069] An outer peripheral convex portion 55 that projects radially outward more than the other axial end portion is formed at one axial end portion of the outer peripheral portion 54. The outer peripheral convex portion 55 is formed by thickening one axial end portion of the outer peripheral portion 54 more than the other end portion. A light-shielding hood fixing portion 60 is formed on the outer peripheral portion 54 by using the outer peripheral convex portion 55. At the lower part of the outer peripheral portion 54, there are portions where the outer peripheral convex portions 55 are not formed at a plurality of locations separated in the circumferential direction, and these portions serve as the light-shielding hood fixing portion 60 into which the engaging protrusion 73 of the light-shielding hood 70 can be inserted. The light-shielding hood 70 is fixed to the lens 50 when the engaging protrusion 73 inserted into the light-shielding hood fixing portion 60 is caught by the outer peripheral convex portion 55.

[0070] On the outer peripheral surface of the lens 50, an outer peripheral surface knurl 63 for light diffusion extending in the axial direction of the lens 50 is formed. A part of the light beam emitted from the light source unit 20 is emitted from the outer peripheral surface of the lens 50, and as a result, streaks may appear on the irradiation surface. By forming the outer peripheral surface knurl 63, the light emitted from the outer peripheral surface of the lens 50 can be diffused, effectively suppressing the streaks on the irradiation surface. The outer peripheral surface knurl 63 is preferably formed in a region of the outer peripheral portion 54 close to the emission surface 52. In the present embodiment, it is formed from the boundary position with the emission surface 52 to the boundary position with the outer peripheral convex portion 55.

[0071] The outer peripheral surface knurl 63 is a surface uneven structure for light diffusion, preferably formed by fine linear convex portions or concave portions. Note that the fine linear concave portion can be referred to as a groove. In the present embodiment, a plurality of grooves formed in a substantially V shape in a plan view of the lens 50 are continuously formed in the circumferential direction of the outer peripheral surface. In this case, the boundary positions of adjacent grooves become convex portions, and a fine surface uneven structure with unevenness repeated in the circumferential direction is formed on the outer peripheral surface of the lens 50. That is, it can also be said that the outer peripheral surface knurl 63 has convex portions in a substantially V shape in a plan view continuously formed in the circumferential direction.

[0072] The outer peripheral surface knurl 63 is preferably formed over the entire circumference of the outer peripheral surface. The widths and depths of the grooves constituting the outer peripheral surface knurl 63 are substantially the same. For example, the depth of the groove is 0.3 mm or more and 0.7 mm or less, and the width of the groove is 0.5 mm or more and 2.0 mm or less. In the present embodiment, the pitch of the grooves in the circumferential direction (the distance between the centers in the width direction of adjacent grooves) is the same as the groove width, but the grooves may be formed at a predetermined interval in the circumferential direction. The pitch of the fine linear convex portions or concave portions in the circumferential direction is preferably 0.5 mm or more and 3.0 mm or less, for example. The grooves constituting the outer peripheral surface knurl 63 are formed with the same width as the convex portions or concave portions constituting the knurl 62 of the second region 52b described later.

[0073] FIG. 10 is a perspective view of the lens 50, and FIG. 11 is an enlarged view of the projection 53 of the lens 50 and its vicinity. As shown in FIGS. 10 and 11, on the light-emitting surface 52 of the lens 50, there are a first region 52a having a circular shape in plan view and a second region 52b having an annular shape in plan view surrounding the first region 52a. The second region 52b is a slope that gradually approaches the holder 40 from the first region 52a side toward the outer peripheral portion 54 side, in other words, a slope that is inclined so as to be away from the opening of the outer cover 10. The inclination angle θ (see FIG. 7) of the second region 52b is preferably constant over the entire circumference of the second region 52b. Further, the first region 52a has a perfect circular shape in plan view, and the width of the second region 52b formed in an annular shape is constant over the entire circumference.

[0074] On the first region 52a of the light-emitting surface 52, dimples 61 for light diffusion are formed. The first region 52a is a light-transmitting region that overlaps the light source unit 20, but the light source unit 20 can be hidden by the light diffusion of the dimples 61. The dimples 61 are a fine surface uneven structure for light diffusion, and are preferably formed by a plurality of convex portions or concave portions having a circular shape or a polygonal shape in plan view. The dimples 61 are preferably composed of regularly formed convex portions or concave portions. Each convex portion or each concave portion constituting the dimples 61 is formed regularly and continuously with substantially the same size. The diameter of the circumscribed circle of each convex portion or each concave portion is, for example, 0.2 mm or more and 1.0 mm or less.

[0075] The surface of the fine convex portions or concave portions constituting the dimples 61 is preferably gently curved. In this case, the boundary portion between the convex portions becomes a concave portion, or the boundary portion between the concave portions becomes a convex portion, and a fine surface uneven structure is formed. In the present embodiment, convex portions having a regular hexagonal shape in plan view are formed without gaps over the entire area of the first region 52a. Each convex portion constituting the dimples 61 has substantially the same size and is partitioned by a regular hexagonal groove. That is, each side of the hexagon is shared by adjacent convex portions. The length of one side of the hexagon is, for example, 0.2 mm or more and 1.0 mm or less. Note that the dimples 61 may be formed by concave portions having a regular hexagonal shape in plan view.

[0076] In the second region 52b of the light-emitting surface 52, a protrusion 53 for lamp attachment / detachment is further formed. When attaching / detaching the LED lamp 1 to / from the socket of the lighting fixture, especially when the outer cover 10 cannot be gripped during lamp attachment / detachment as exemplified in the downlight shown in FIG. 2, the protrusion 53 is used to perform a rotation operation of the LED lamp 1. Since the protrusion 53 is formed in the second region 52b located on the outer side in the radial direction of the light-emitting surface 52, the rotation operation of the lens 50 is easy and a large rotational load can be applied. Since the LED module 2 is provided with a load-receiving portion, even if a large rotational load acts on the lens 50, damage to components, detachment of the lens 50, etc. can be more reliably prevented.

[0077] The protrusions 53 extend long in the radial direction of the lens 50, and two or more are formed so as to be arranged in the radial direction with the first region 52a therebetween. Three or more protrusions 53 may be formed, but two are preferable from the viewpoint of achieving both design and operability. In the present embodiment, two protrusions 53 having the same shape and size extend in the radial direction from the outer peripheral edge facing the radial direction of the light-emitting surface 52. By forming the pair of protrusions 53 to be long in the radial direction from the outer peripheral edge of the light-emitting surface 52, a large rotational load can be applied to the lens 50, and attachment / detachment of the LED lamp 1 becomes easy.

[0078] Preferably, the protrusion 53 does not protrude significantly more in the direction of the opening of the outer cover 10 than the first region 52a. The protrusion 53 may have a height exceeding the virtual line α (see FIG. 7) along the surface direction of the first region 52a, but the upper end of the protrusion 53 (the portion closest to the opening of the outer cover 10) is preferably located within a range of 3 mm or less from the virtual line α. On the other hand, if the height H of the protrusion 53 becomes too low, the operability decreases, so the height H is preferably 1.5 mm or more. An example of a suitable height H of the protrusion 53 is, for example, 1.3 mm or more and 2.0 mm or less at the highest portion.

[0079] If the height H of the protrusion 53 is within the above range, while ensuring good operability, the protrusion 53 becomes less conspicuous. Note that the height H of the protrusion 53 is the length along the axial direction of the lens 50 from the upper surface of the second region 52b where the protrusion 53 does not exist to the upper surface of the protrusion 53. Here, the upper surface means the surface facing the direction of the opening of the outer cover 10. The height H of the protrusion 53 may be constant along the radial direction of the lens 50, or may gradually increase toward the outer side in the radial direction.

[0080] The protrusion 53 is preferably formed such that it does not protrude from within the cylinder of the outer cover 10, or the protruding length from within the cylinder of the outer cover 10 is 3 mm or less, more preferably 1 mm or less. In this case, the protrusion 53 is less conspicuous and good design can be obtained. Although the protruding length of the protrusion 53 can also be suppressed by separating the first region 52a of the lens 50 from the opening of the outer cover 10, the distance along the axial direction from the opening of the outer cover 10 to the first region 52a is preferably 1 mm or more and 10 mm or less.

[0081] From the viewpoint of operability, the length R of the protrusion 53 along the radial direction of the lens 50 is preferably 4.0 mm or more. From the viewpoint of achieving both operability and design, the length R of the protrusion 53 is preferably 3.5 mm or more and 5.0 mm or less, and more preferably 4.3 mm or more and 4.6 mm or less. The length R of the protrusion 53 is, for example, 9% or more and 13% or less of the diameter of the emission surface 52, and 50% or more and 80% or less of the width of the second region 52b. The protrusion 53 may be formed over the entire width of the second region 52b, but in this embodiment, it is formed with a length that does not reach the boundary position with the first region 52a beyond 50% or 60% of the width of the second region 52b from the outer peripheral edge of the emission surface 52.

[0082] The upper surface of the protrusion 53 may be formed parallel to the radial direction of the lens 50, or may be inclined in the same direction as the portion of the second region 52b where the protrusion 53 does not exist. In the present embodiment, since the inclination angle of the upper surface of the protrusion 53 is smaller than the inclination angle θ of the second region 52b, the height H of the protrusion 53 gradually increases toward the outer side in the radial direction. Since the protrusion 53 is a portion touched by the user's finger, it is preferable that the corners of the protrusion 53 are chamfered and rounded. The width (thickness) of the protrusion 53 may be such that it is not damaged by the load applied to the protrusion 53. As an example, it is 0.2 mm or more and 0.4 mm or less. The width of the protrusion 53 may increase toward the outer side in the radial direction of the lens 50.

[0083] In the second region 52b, a diffraction grating 62 for light diffusion extending in the radial direction of the lens 50 is formed. The diffraction grating 62 is a surface uneven structure for light diffusion, and is preferably formed by fine linear convex portions or concave portions extending in the radial direction. By forming the fine linear diffraction grating 62 extending in the same direction as the protrusion 53, the protrusion 53 can be made less conspicuous. The width of the fine linear convex portion or concave portion constituting the diffraction grating 62 is preferably approximate to the width of the protrusion 53, and is 70% or more and 130% or less, or 80% or more and 120% or less of the width of the protrusion 53. It may be the same as the width of the protrusion 53, or may be smaller than the width of the protrusion 53. The width of the fine linear convex portion or concave portion is, for example, 0.5 mm or more and 2.0 mm or less.

[0084] The diffraction grating 62 is formed continuously in the circumferential direction of the second region 52b over the entire area of the second region 52b. In the present embodiment, fine linear convex portions extending in the radial direction of the lens 50 are continuously formed over the entire area of the second region 52b except for the portion where the protrusion 53 is formed, without gaps, in the circumferential direction of the second region 52b. Further, since the convex portions constituting the diffraction grating 62 are formed radially around the center in the radial direction of the emission surface 52, they gradually widen toward the outer side in the radial direction. The maximum width of the convex portion is the same as the width of the groove constituting the outer peripheral surface diffraction grating 63, and is arranged such that the center in the width direction of the convex portion coincides with the deepest part of the groove of the outer peripheral surface diffraction grating 63.

[0085] The surface of the linear convex portion constituting the roulette 62 is, for example, gently curved. In this case, the boundary portion between adjacent convex portions becomes a concave portion (groove), and a fine surface uneven structure in which unevenness is repeated in the circumferential direction of the second region 52b is formed. In the present embodiment, the widths of the respective convex portions are substantially the same, and the pitch and width of the convex portions in the circumferential direction are the same. Note that the linear convex or concave portions may be formed at predetermined intervals in the circumferential direction. The pitch of the linear convex or concave portions in the circumferential direction is preferably, for example, 0.5 mm or more and 3.0 mm or less.

[0086] As described above, the LED lamp 1 is configured to be detachable from the socket by applying a rotational load to the lens 50, and the holder 40 and the lens 50 are provided with load receiving portions for receiving the rotational load acting on the lens 50. Since the load receiving portion receives the rotational load acting on the lens 50, problems such as breakage and dropping of components during attachment and detachment of the lamp can be effectively suppressed. The LED lamp 1 can be easily attached to the socket using the protrusion 53 formed on the lens 50 and can also be easily removed from the socket.

[0087] Note that the above embodiment can be appropriately modified in design without impairing the object of the present disclosure. For example, when the heat generation amount of the light source portion is small, the heat sink may be downsized or omitted. It is also possible to give the heat sink the function of a circuit holder. Further, instead of the lens 50, it is also possible to use a lens that does not have at least one of the protrusion for lamp attachment / detachment and the light shielding hood fixing portion.

[0088] The present disclosure will be further described by the following embodiments. Configuration 1: An LED lamp detachable from a socket, comprising a light source unit including an LED element, a holder for holding the light source unit, a circuit for supplying power to the light source unit, a lens fixed to the holder for controlling light emitted from the light source unit, a bottomed cylindrical outer cover for housing the light source unit, the holder, the circuit, and the lens, and base pins protruding from the outer cover and electrically connected to the circuit, configured to be detachable from the socket by applying a rotational load to the lens, and the holder and the lens are provided with load receiving portions for receiving the rotational load acting on the lens. Configuration 2: The LED lamp according to Configuration 1, wherein the holder is formed in a bottomed cylindrical shape, and the load receiving portion is composed of a convex portion protruding from the outer peripheral portion of the lens and a concave portion formed in the cylindrical wall of the holder into which the convex portion fits. Configuration 3: The LED lamp according to Configuration 2, further comprising a fixing structure including a locking claw formed on the outer peripheral portion of the lens and a locking hole formed in the cylindrical wall of the holder into which the locking claw is inserted. Configuration 4: The LED lamp according to Configuration 3, wherein a plurality of the convex portions and the locking portions are respectively formed and arranged alternately along the circumferential direction of the holder. Configuration 5: The LED lamp according to any one of Configurations 2 to 4, wherein an adhesive is filled in the gap between the holder and the outer cover, and a plurality of concave portions for expanding the adhesion area of the adhesive are formed on the outer peripheral surface of the cylindrical wall of the holder. Configuration 6: The LED lamp according to any one of Configurations 1 to 5, wherein an outer peripheral surface knurl for light diffusion extending in the axial direction of the lens is formed on the outer peripheral surface of the lens. Configuration 7: The LED lamp according to any one of Configurations 1 to 6, wherein a protrusion used when attaching and detaching the lamp and on which a rotational load acts is formed on the light emitting surface of the lens.

Description of Reference Numerals

[0089] 1 LED lamp 2 LED module 10 Outer cover 11 Large diameter portion 12 Small-diameter part 12a Through-hole 13 Protrusion 13a Projection 14 Protrusion inside the cylinder 15 Base pin 20 Light source part 21 LED element 22 Substrate 25 Heat sink 26 Base part 26a Threaded hole 26b Wiring insertion hole 27 Cylinder wall 28 Locking hole 29 Guide groove 30 Circuit 31 Circuit board 32 Circuit component 35 Circuit holder 36 Substrate fixing part 37 Base pin fixing part 38 Fixed piece 39 Flange 40 Holder 41 Base part 42 Cylinder wall 43 Opening 44 Recess 45 Locking hole 46 Screw 47 Screw insertion hole 48 Outer peripheral surface recess 49 Adhesive 50 Lens 51 Fresnel structure 51a Annular protrusion 52 Exit surface 52a First region 52b Second region 53 Projection 54 Outer peripheral part 55 Outer peripheral protrusion 56 Protrusion 57 Locking claw 60 Light-shielding hood fixing part 61 Dimple 62 Knurling 63 Outer peripheral surface knurling 70 Light-shielding hood 71 Light-shielding part 72 Insertion part 73 Engagement protrusion 100 Connecting appliance 101 Socket 102 Plug 103 Shaft 104 Wiring duct rail 110 Downlight frame

Claims

1. An LED lamp detachable from a socket, comprising: a light source unit including an LED element; a holder for holding the light source unit; a circuit for supplying power to the light source unit; a lens fixed to the holder for controlling light emitted from the light source unit; a bottomed cylindrical outer cover for housing the light source unit, the holder, the circuit, and the lens; a base pin protruding from the outer cover and electrically connected to the circuit; and configured to be detachable from the socket by applying a rotational load to the lens, wherein the holder and the lens are provided with load receiving portions for receiving the rotational load acting on the lens. An LED lamp.

2. The holder is formed in a bottomed cylindrical shape, wherein the load receiving portion is composed of a convex portion protruding from an outer peripheral portion of the lens and a concave portion formed in a cylindrical wall of the holder and into which the convex portion fits. The LED lamp according to claim 1.

3. The LED lamp according to claim 2, further comprising a fixing structure including a locking claw formed on an outer peripheral portion of the lens and a locking hole formed in a cylindrical wall of the holder into which the locking claw is inserted.

4. The LED lamp according to claim 3, wherein a plurality of the convex portions and the locking portions are respectively formed and arranged alternately along a circumferential direction of the lens.

5. A gap between the holder and the outer cover is filled with an adhesive, wherein a plurality of concave portions for expanding an adhesion area of the adhesive are formed on an outer peripheral surface of a cylindrical wall of the holder. The LED lamp according to any one of claims 2 to 4.

6. An outer peripheral surface knurl for light diffusion extending in an axial direction of the lens is formed on an outer peripheral surface of the lens. The LED lamp according to any one of claims 1 to 4.

7. A protrusion used when the lamp is attached and detached and on which a rotational load acts is formed on a light emitting surface of the lens. The LED lamp according to any one of claims 1 to 4.

Citation Information

Patent Citations

  • Heat exchanger, method of manufacturing the same, and air conditioner including the heat exchanger

    JP2010156525A