TECHNICAL FIELD
[0001] The present invention relates to a safety endcap assembly for use in a light emitting
diode (LED) lamp arrangement, which is arranged to replace a fluorescent lamp in a
luminaire.
BACKGROUND
[0002] Fluorescent lamps are widely used in a variety of locations, such as schools and
office buildings. Although conventional fluorescent lamps have certain advantages,
they also pose certain disadvantages, including disposal problems due to the presence
of toxic materials within the tube. LED-based lamps, or LED tubes, which can be used
as one-for-one replacements for fluorescent tube lamps, have emerged in recent years.
Such LED-based replacement lamps typically include an elongate housing, with LEDs
mounted on a circuit board inside the housing. An endcap is arranged at each longitudinal
end of the housing for connecting the LED circuit board to the luminaire.
[0003] It has been observed that, after the use over a certain time period (e.g. a few months),
a problem of overheating can occur in some of these LED lamps. Such overheating sometimes
causes the LED lamp to melt, or even results in fire and burn hazards.
[0004] The inventors have identified that arcing is a cause of this problem. Arcing, or
arc discharge, is an electrical breakdown of a gas that produces an ongoing electrical
discharge. This occurs when two or more conductors in a circuit are not properly contacted.
When there is a small gap between these conductors, the voltage across them could
break down the gas resistance and create a current-as a small scale lightning. This
current is typically high enough to increase the temperature of the components of
the LED lamp, e.g. the circuit board of LEDs. This increase of temperature entails
the risk of the melting of the LED lamp and the risk of fire and burn hazards.
[0005] Arcing is not assumed to occur in those lamps-most LED lamps are carefully designed
to avoid the presence of any small gap between conductors. According to the design
of these lamps, all conductors are expected to be properly in contact with each other.
Nevertheless, arcing still occurs after a certain time of use.
[0006] As recognized by the inventors, this unexpected behavior lies in an unexpected interaction
between some safety mechanism in modern LED tubes and the fixture of the luminaire.
[0007] User safety is an important aspect when designing LED tubes. If the lamp fixture
is energized when the LED tube is not yet completely installed into the fixture, and
the user happens to grab the LED tube in a wrong position, electrical current can
flow through the user's body and hurts the user. To avoid this risk, there are usually
safety mechanisms in LED lamps which allow the connector pins and the circuit board
of LEDs temporarily disconnected. Such mechanisms are typically designed in accordance
with the standard size of the lamp fixture. However, a side-effect has been observed
by the inventors that the safety mechanism can increase the pressure applied on the
fixture of the luminaire. Due to this increased pressure, the distance between two
ends of the fixture can increase over time. When the distance reaches a certain point,
a gap can be created between the connector pins of the endcap and the LED circuit
board, or between the connector pins and the connectors in the fixture. From there,
arcing can occur.
SUMMARY OF THE INVENTION
[0008] It is therefore an object of the invention to reduce the risk of melting of an LED
lamp and reduce the risk of fire and burn hazards caused by an LED lamp. More specifically,
it is an object of the invention to reduce the risk of arcing in an LED lamp.
[0009] A first aspect of the invention concerns a safety endcap assembly according to claim
1.
[0010] The safety endcap assembly may be arranged at an end of an LED lamp having a plurality
of LEDs. The safety endcap assembly may comprise:
- an endcap base element to be arranged at an end of a housing of the LED lamp;
- a connector pin extending along an axis;
- an endcap cover element moveable relative to the endcap base element along the axis,
between a protracted position, in which the endcap cover element is more away from
the endcap base element, and a retracted position, in which the endcap cover element
is closer to the endcap base element;
- a contact element (which preferably extends along the same axis as the connector pin)
for electrically connecting the connector pin to the LEDs; and
- a switch button moveable (e.g. rotatable) between a first position and a second position.
[0011] The switch button is a physical element which can be moved (e.g. by a user) to a
certain position (e.g. the first position) to block the electrical connection between
the contact element and the LEDs. The switch button preferably comprises a plate-like
portion. The plate-like portion may have a circular shape (e.g. a disk-like shape)
or any other shape, such as a rectangular, triangular, polygonal or irregular shape.
The switch button may be made of an insulating material such as plastic. The movement
of the switch button may include (but is not limited to) a rotation movement, a displacement
movement, or a combination thereof.
[0012] In an embodiment, the switch button is arranged to disconnect the contact element
from the LEDs when the switch button is in the first position. The switch button may
be arranged in such a way that, as long as the switch button is in the first position,
the contact element is disconnected from the LEDs. In this way, a safe user operation
during installation can be achieved. As long as the switch button is in the first
position, the user can trust that the lamp will not conduct electrical current. This
feature also allows an arrangement of an arcing prevention mechanism, e.g. moving
the switch button to the first position to disconnect the electrical connection when
the risk of arcing increases.
[0013] The safety endcap assembly may further comprise:
- a first spring mechanism for urging the endcap cover element towards the protracted
position; and
- a switch opening mechanism configured such that in case the switch button is in the
second position, and the endcap cover element moves from the retracted position towards
the protracted position over a predetermined distance, the switch button is moved
to the first position.
[0014] The first spring mechanism comprises a spring which can be any type of elastic objects
that store mechanical energy. Examples of the spring include a coil spring, rubber,
a gas spring, etc. In this way, the mechanical energy stored in the spring can be
used to move the endcap cover element relative to the endcap base element to urge
the endcap cover element towards the protracted position.
[0015] The switch opening mechanism may use one or more of any mechanisms described in
US 2016/0290606 A1, herewith incorporated by reference.
[0016] In this way, the first spring mechanism makes it possible to move the endcap cover
element in accordance with the gradual shape change of the fixture, and once this
movement reaches the predetermined distance, the switch opening mechanism can disconnect
the contact element from the LEDs to reduce the risk of arcing.
[0017] Preferably, the switch opening mechanism is configured such that in case the switch
button is in the second position, and the endcap cover element moves from the retracted
position towards the protracted position over the predetermined distance, the switch
button is switched to the first position within 0.5 second. This time period may be
achieved, for example, using a spring biased against the switch button in the second
position. The short time period makes it possible to reliably control the risk of
arcing.
[0018] Preferably, the contact element is connected to the connector pin via a spring which
defines a variable length. The variable length may include a first length, in which
the spring is less compressed (e.g. when the spring in in an uncompressed natural
state), and a second length, in which the spring is more compressed (e.g. when the
endcap cover element is in the retracted position and the switch button is in the
second position). Preferably, the first length, the second length and the predetermined
distance are arranged to satisfy a following inequality:

where D is the predetermined distance, A is the first length, and B is the second
length.
[0019] Similarly to the first spring mechanism, the spring may be any type of elastic objects
that store mechanical energy, such as a coil spring, rubber, a gas spring, etc.
[0020] In this way, as the predetermined distance (which triggers the switch opening mechanism)
is smaller than the tolerance of the safety endcap assembly within which the contact
element and the LEDs can still be reliably connected, the risk of arcing can be further
reduced.
[0021] Preferably, the safety endcap assembly comprises two connector pins, two contact
elements, and two springs. Each spring connects a connector pin to a respective contact
element. This two-pin configuration is similar to conventional fluorescent lamps,
thus allowing a simple manner for the user to install the LED lamp arrangement into
the luminaire.
[0022] In an embodiment, the switch button comprises a hole, wherein, in the first position,
the hole is not aligned with the contact element (and preferably also the connector
pin) in the axis, and in the second position, the hole is aligned with the contact
element (and preferably also the connector pin) in the axis. When the endcap cover
element is in the retracted position and the switch button is in the second position,
the contact element may extend through the hole of the switch button (e.g. to come
into contact with an electrode which is connected to the LEDs.
[0023] In this way, since the hole is not aligned with the contact element in the first
position of the switch button, the contact element can be physically blocked to prevent
an electrical connection or a small gap with an electrode which connects to the LEDs,
and can thus reliably reduce the risk of arcing by moving the switch button to the
first position.
[0024] Preferably, the switch button comprises a first surface and a second surface, wherein
the first surface and the second surface are substantially perpendicular to a direction
in which the contact element extends (e.g. the axis of the connector pin). A distance
between the first surface and the second surface is preferably at least 0.4 mm. This
distance ensures that the risk of arcing is low when the contact element is blocked
in the first position of the switch button.
[0025] In an embodiment, the switch button comprises a hole forming a third surface extending
from the first surface or from the second surface (e.g. extending from the first surface
to the second surface). The third surface preferably forms an angle less than 60 degrees
with respect to the first surface or the second surface.
[0026] In this way, the third surface can form an edge which is sharp enough to cut into
a contact between the contact element and an electrode connecting to the LEDs. This
allows the switch button to force itself into the first position for disconnecting
the contact element from the LEDs to reduce the risk of arcing.
[0027] In an embodiment, the switch opening mechanism comprises:
- a second spring mechanism for urging the switch button towards the first position;
- a switch arresting mechanism configured to arrest the switch button in the closed
position when the endcap cover element is in the retracted position, and to release
the switch button, in case the endcap cover element moves from the retracted position
towards the protracted position over the predetermined distance.
[0028] The second spring mechanism may comprise a spring which may be any type of elastic
objects that store mechanical energy. Examples of the spring include a coil spring,
rubber, a gas spring, etc. In this way, the mechanical energy stored in the second
spring mechanism can be used to force the switch button into the first position when
the risk of arcing increases.
[0029] The switch opening mechanism may comprise an cantilevered beam or a torsion spring
(e.g. in the second spring mechanism). In this way, the switch opening mechanism can
be implemented in an simple and inexpensive manner.
[0030] The switch opening mechanism may comprise an elongated protrusion or recess (e.g.
in the switch arresting mechanism) for arresting the switch button, wherein the protrusion
or recess has a length substantially equal to the predetermined distance. This physical
implementation of the predetermined distance can allow the switch opening mechanism
to be triggered reliably.
[0031] In an embodiment, in the protracted position, the switch button is covered by the
endcap cover element, and in the retracted position the switch button is exposed.
This increases the user safety during the installation.
[0032] The safety endcap may further be configured such that the LEDs are only connected
to the connector pin when the endcap cover element is in the retracted position and
the switch button is in the second position. This mechanism adds another layer of
security.
[0033] A second aspect of the invention concerns an LED lamp arrangement configured to be
fit in a lamp fixture, the LED lamp arrangement comprising:
- a housing;
- a plurality of LEDs arranged in the housing;
- a safety endcap assembly according to the first aspect of the invention; and
- an electrode (which may be an element of the safety endcap assembly) for electrically
connecting the contact element to the LEDs.
[0034] In an embodiment, the switch button comprises a hole, wherein, when the endcap cover
element is in the retracted position and the switch button is in the second position,
the contact element extends through the hole of the switch button to come into contact
with the electrode.
[0035] In an embodiment, the switch button comprises a first surface and a second surface,
wherein the first surface and the second surface are substantially perpendicular to
the axis, and wherein the contact between the contact element and the electrode is
arranged in a space between the first surface and the second surface.
[0036] The switch button may comprise a hole forming a third surface extending from the
first surface to the second surface, wherein the third surface forms an edge arranged
to break the contact between contact element and the electrode.
[0037] The switch button may comprise a portion which forms a blade, and the contact between
the contact element and the electrode and the blade defined by the switch button may
be arranged in substantially the same cross-section.
[0038] These measures, alone or in combination, make it possible for the switch button to
reliably cut into the contact between the contact element and the electrode when the
switch opening mechanism moves the switch button from the second position to the first
position. In this way, the switch button can reliably break the contact element and
the electrode apart to disconnect the electrical connection and further reduce the
risk of arcing.
[0039] In an embodiment, with the endcap cover element in its protracted position the LED
tube assembly does not fit in the lamp fixture; and with the endcap cover element
in its retracted position the LED tube assembly fits in the lamp fixture. This increases
the user safety.
[0040] A third aspect of the invention comprises a method for operating an LED lamp arrangement
comprising a safety endcap assembly according to the first aspect of the invention,
in a luminaire, the method comprising:
- moving the endcap cover element towards the protracted position in accordance with
shape change of a fixture of the luminaire; and
- moving the switch button from the second position to the first position, in case the
switch button is in the second position, and the endcap cover element moves from the
retracted position towards the protracted position over a predetermined distance,
the switch button is switched to the first position.
BRIEF DESCRIPTION OF THE DRAWINGS
[0041] The advantages of this invention will be apparent upon consideration of the following
detailed disclosure of exemplary non-limiting embodiments of the invention, especially
when taken in conjunction with the accompanying drawings wherein:
FIG. 1 shows an embodiment of the LED lamp 1 which comprises a safety endcap assembly
according to the invention.
Figs. 2A-2C show an embodiment of the safety endcap assembly according to the invention.
Figs. 3A-3D shows an operation of an embodiment of the safety endcap according to
the invention.
Fig. 4 shows another embodiment of the safety endcap assembly according to the invention.
Figs. 5A - 5G show several states and a corresponding operation of a similar embodiment
of the safety endcap assembly as Fig. 4.
Figs. 6A - 6B schematically shows an embodiment of a spatial relationship between
elements of a safety endcap assembly according to the invention.
Figs. 7A - 7B show two embodiments of a contact element and a switch button in the
safety endcap assembly according to the invention.
DETAILED DESCRIPTION OF PREFERRED EMBODIMENTS
[0042] Fig. 1 shows an embodiment of the LED lamp arrangement 1 according to the invention.
The LED lamp arrangement 1 comprises a housing 3, a plurality of LEDs arranged in
the housing 3, a first endcap assembly 9 and a second endcap assembly 25. In the embodiment
shown, the second endcap assembly 25 is a safety endcap assembly 200 according to
the invention.
[0043] In the embodiment shown, the LED lamp 1 is an elongated tube, in which the housing
3 has an elongate shape. The LED lamp 1 may also have other shapes, such as a circular
shape.
[0044] Figs. 2A-2C show an embodiment of the safety endcap assembly 200 according to the
invention. This embodiment may be used in the LED lamp arrangement 1 as shown in Fig.
1.
[0045] In the embodiment shown, the safety endcap assembly 200 comprises two connector pins
205, 207 a switch button 213, an endcap base element 201 to be arranged at an end
of the housing 3 of the LED lamp 1, and an endcap cover element 203.
[0046] The endcap base element 201 and an endcap cover element 203 may be arranged to move
relative to each other. In the embodiment shown, the endcap cover element 203 is arranged
to slide along a circumferential wall 201b of the endcap base element 201. The relative
movement between the endcap base element 201 and the endcap cover element 203 defines
a protracted position (as shown in Fig. 2A), and a retracted position (as shown in
Figs. 2B and 2C). In the protracted position, the endcap cover element 203 is more
away from the endcap base element 201; in the retracted position, the endcap cover
element 203 is closer to the endcap base element 201.
[0047] The switch button 213 is moveable in two or more positions, including a first position
and a second position. The movement may include (but is not limited to) a rotation
movement. In the embodiment shown, the switch button 213 can be rotated from the first
position (as shown in Figs. 2A and 2B) to the second position (as shown in Fig. 2C).
The relative movement between the endcap base element 201 and the endcap cover element
203, together with the movement (e.g. rotation) of the switch button 213, makes it
possible to define at least 2 x 2 = 4 operation states. This degree of freedom can
ensure the user safety during installation, and additionally allows a switch opening
mechanism to be arranged to open the switch when the risk of arcing increases.
[0048] In a preferred embodiment, the safety endcap is configured such that the LEDs are
only connected to the connector pins 205, 207 when both of the following conditions
are met: (1) the endcap cover element 203 is in the retracted position, and (2) the
switch button 213 is in the second position. The advantage of this arrangement is
two-fold. First, this provides a double security to the user. As long as the switch
button 213 is in the first position, the user can feel free to install the lamp without
having to worry about the electrical shock. Second, a mechanism can be added to move
the switch button 213 from the second position to the first position (thereby disconnecting
the LEDs from the connector pins) when there is an increasing risk of arcing. In this
way, the risk of arcing can be reduced.
[0049] Optionally, as shown in the dotted line in Fig. 2A, in the protracted position, the
switch button 213 is hidden, for example covered by a circumferential wall of the
endcap cover element 203. This way provides an additional layer of safety for the
installation, because it reduces the risk that user accidentally rotates the switch
button 213.
[0050] In embodiments shown above and below, the safety endcap assembly comprises two connector
pins 205, 207. In this case, the LED lamp arrangement 1 has two pins on each side,
i.e. four pins in total, just like a typical fluorescent lamp. In this way the user
can install the LED lamp in a simple manner just like in the case of fluorescent lamps.
Alternatively, the safety endcap assembly may have only one connector pin.
[0051] Figs. 3A-3D shows an operation of a similar embodiment of the safety endcap assembly
according to the invention. The safety endcap assembly in this embodiment may comprise
one or more features of the embodiment in Figs. 2A - 2C.
[0052] Fig. 3A shows a default state in this embodiment. The default state may be the state
before the LED lamp is installed onto the fixture 302, 303 of the luminaire 301. In
this embodiment, the default state corresponds to the state Fig. 2A, i.e. the endcap
cover element 203 is in the protracted position, and the switch button 213 is in the
first position. In this state, the LEDs are disconnected from the connector pins 205,
207.
[0053] Fig. 3B shows a state in which the LED lamp is placed into the luminaire. In this
embodiment, this states is similar to the state in Fig. 2B, i.e. the endcap cover
element 203 is in the retracted position, and the switch button 213 is in a first
position. In a preferred embodiment, as long as the switch button 213 remains in the
first position (as the case in Figs. 3A and Fig. 3B), the LEDs remains disconnected
during the installation. In this way, the user does not need to worry about the electrical
shock when he puts the lamp into the fixture, which corresponds to the transition
from Figs. 3A to 3B.
[0054] Fig. 3C shows a state in which the LEDs are ready to operate. In this embodiment,
this state is similar to the state in Fig. 2C, i.e. the endcap cover element 203 is
in the retracted position, and the switch button 213 is in a second position. In this
state, the connector pins 205, 207 are connected to the LEDs for conducting the current.
[0055] Fig. 3D shows a state after a certain time of use and a switch opening mechanism
has been triggered to avoid arcing. The switch opening mechanism may use one or more
of the same mechanisms as described in
US 2016/0290606 A1, herewith incorporated by reference. As shown in the figure, the fixture 302, 303
of the luminaire no longer maintains its shape, e.g. due to a pressure applied on
the fixture 302, 303. Accordingly, the endcap cover element 203 moves from the retracted
position towards the protracted position over a certain distance. The safety endcap
assembly according to the invention is designed such that, when this distance reaches
a predetermined threshold, the switch button 213 automatically switches back to the
first position, thereby disconnecting the LEDs. In this way, the LEDs can be disconnected
before the deformation of the luminaire reaches the point at which arcing starts to
occur.
[0056] Fig. 4 shows another embodiment of the safety endcap assembly 200 according to the
invention. This embodiment may comprise one or more features as described above under
Figs. 1, 2A - 2C, 3A - 3D, and may further comprise some more details as will be described
below.
[0057] In the embodiment shown in Fig. 4, each connector pin 205, 207 is connected to an
electrically conductive connection spring 221, 223. Each spring 221, 223 is in turn
connected to an electrically conductive contact element 217, 219. This makes it possible
for the connector pin 205 to establish an electrical connection with the LEDs via
the connection spring 221, 223 and the contact element 217, 219. The connection springs
221, 223 and the contact elements 217, 219 extend through holes 218, 220 in the endcap
cover element 203 towards the switch button 213.
[0058] In this embodiment, the switch button 213 also comprises two holes. When the switch
button is in the second position, the two holes are aligned with the contacting elements
218, 220. This allows the contacting elements 217, 219 to extends through the holes
of the switch button 213 to come into contact with electrodes 229, 231, which are
electrically connected to the LEDs.
[0059] In the embodiment shown, the safety endcap assembly 200 further comprises a spring
45 for pushing the endcap cover element 203 and a spring 215 for rotating the switch
button 213. The spring 45 functions to urge the endcap cover element 203 towards the
protracted position, and the spring 215 functions to urge the switch button 213 towards
the first position. Spring 215 is activated when the endcap cover element 203 moves
from the retracted position towards the protracted position over a predetermined distance.
In this way, spring 45 gradually moves the endcap cover element 203 towards the protracted
position as the fixture 302, 303 deforms, and when this movement reaches the predetermined
distance, the spring 215 is activated and moves the switch button 213 to the first
position, thereby disconnecting the LEDs from the connector pins 205, 207 to avoid
arcing.
[0060] In the embodiment shown, the spring 45 is a coiled spring, and the spring 215 is
a torsion spring. Other types of springs can also be used. For example, spring 215
may be implemented as a coil spring configured to generate a torque on the switch
button 213. One or both of springs 45 and 215 may also be replaced by one or more
of other components which perform similar functions. For example, grooves may be arranged
on a side surface of the switch button 213 to rotate the switch button as the spring
45 pushes the endcap cover element 203.
[0061] In the embodiment shown, the electrodes 229, 231 are arranged in the safety endcap
assembly. These electrodes may alternatively be arranged outside the safety endcap
assembly, e.g. as a part of the LED circuit board in the LED lamp arrangement 1.
[0062] Figs. 5A - 5G show several states and a corresponding operation of an embodiment
of the safety endcap assembly according to the invention. The safety endcap assembly
in this embodiment may comprise one or more features as described under Fig. 4.
[0063] Fig. 5A shows a state in which the endcap cover element 203 is in the protracted
position and the switch button 213 is in the first position (similar to Figs. 2A and
3A). In this state, the connection springs 221, 223 are not compressed, and the contact
elements 217, 219 are not in contact with the front surface of the switch button 213.
[0064] Fig. 5B shows a state in which endcap cover element 203 is in the retracted position
and the switch button 213 in the first position (similar to Figs. 2B and 3B). In this
state, the connection springs 221 and 223 are compressed to push the contact elements
217, 219 against the front surface of the switch button 213, because the holes of
the switch button 213 are not aligned with the contact elements 217.
[0065] Fig. 5C shows a state in which the endcap cover element 203 is in the retracted position
and the switch button 213 in the second position (similar to Figs. 2C and 3C). In
this position, the holes of the switch button 213 are aligned with the contact elements.
The tips of the contact elements 217, 219 are thus pushed through the holes by the
connection springs 221, 223, allowing the contact elements 217, 219 to come into contact
with the electrodes 229, 231, thereby connecting to the LEDs.
[0066] As shown in Figs. 5C and 5D, in the second position of the switch button 213, the
spring 215 is biased. In this state, the spring 215 carries an energy for forcing
the switch button 213 into the first position. To maintain the switch button 213 in
the second position when the LED lamp is installed, the safety endcap assembly 200
further comprises a switch arresting mechanism 239 that locks the switch button 213
in the second position.
[0067] An example of the switch arresting mechanism 239 is a lock as shown in Figs. 5D and
5E. In this embodiment, the lock comprises a protrusion arranged to engage with the
switch button 213 when the endcap cover element 203 is in the retracted position.
Alternatively, the lock may comprise a recess. The lock has a length substantially
equal to the predetermined distance. This allows the switch arresting mechanism 239
to continue to arrest the switch button 213 as the endcap cover element 203 moves,
until the movement reaches the predetermined distance.
[0068] As shown in Fig. 5F, the spring 45 is arranged to assert a spring force between the
endcap base element 201 and the endcap cover element 203. As the luminaire fixture
changes its shape, the spring 45 pushes the endcap cover element 203 away from the
endcap base element 201, as shown in Arrow I. In the embodiment shown, the mechanical
lock 239 is arranged in the endcap cover element 203 and the switch 213 is arranged
in the endcap base element 203.
[0069] As shown in Fig. 5G, as the endcap cover element 203 moves over a predetermined distance
D, the switch button 213 is no longer locked by the switch arresting mechanism 239.
As a result, the spring 215 rotates the switch button 213 from the second position
to the first position (as shown in Arrow J). In this embodiment, the spring force
provided by spring 215 is arranged to overcome the spring force generated by the springs
221, 223, to allow the switch button 213 to break the contact between the electrodes
229, 231 and the contact elements 217, 219 so as to disconnect these elements.
[0070] Figs. 6A - 6B show an embodiment of a safety endcap assembly which can tolerate the
deformation of the fixture of a luminaire. The figures show a connector pin 207, a
spring 223, a switch button 213, an electrode 231 and a switch arresting mechanism
239. These elements may have the same structure and/or function as in Figs. 5A - 5G.
This embodiment may also comprise any other elements described above.
[0071] In this embodiment, spring 223 defines a variable length. Due to different degrees
of the compression of the connection springs 221, 223, the distance between the connector
pins 205, 207 and the contact elements 217, 219 can vary. In this way, as the endcap
cover element 203 moves towards the protracted position (e.g. due to the deformation
of the luminaire fixture), the contact elements 217, 219 can remain in contact with
the electrodes 229, 231 to tolerate the deformation.
[0072] To avoid arcing, this tolerance is preferably larger than the predetermined distance
(D), to ensure that the contact elements 217, 219 and the electrodes 229, 231 stay
in contact until the switching opening mechanism is activated. In this embodiment,
the variable length defined by the connection springs 221, 223 include a first length
(A) (which may correspond to the natural state of the springs 221, 223 in the absence
of an external force), as shown in Fig. 6A, and a second length (B) (which may correspond
to the compression state of the springs 221, 223 when the endcap cover element 203
is in the retracted position and the switch button 213 is in the second position),
as shown in Fig. 6B.
[0073] In this embodiment, the connection springs 221, 223 are configured such that the
first length A, the second length B and the predetermined distance D (e.g. the length
of the protrusion or recess in the switch opening mechanism 239) satisfy to the following
inequality:

[0074] In this way, as the predetermined distance D is less than the difference between
the first length A and the second length B, at the point when the switch opening mechanism
is activated, the contact element 217, 219 and the electrodes 229, 231 can remain
in contact with each other. In this way, the switch button 213 can act to disconnect
the contact element 217, 219 from the electrodes 229, 231 before arcing occurs.
[0075] Figs. 7A and 7B show two embodiments of the switch button 213, a contact element
219 and an electrode 231 according to the invention. These elements may be used in
the safety endcap assembly as described above.
[0076] In the embodiments shown, the holes of the switch button 213 is arranged in substantially
the same position in the longitudinal axis as the contact between the respective contact
elements 217, 219 and electrodes 229, 231, to ensure that the switch button 213 can
cut into the contact.
[0077] In both embodiments shown, the switch button 213 comprises a first surface 213a,
a second surface 213b, and a third surface 213 which defines the hole of the switch
button 213. The third surface 213 extends from the first surface 213a towards the
second surface 213b. The third surface 213c forms an angle ϕ with respect to the first
surface 213a. This angle ϕ is preferably less than 60 degrees.
[0078] Preferably, the third surface 213c and the first surface 213a or second surface 213b
define a blade or an edge, as shown in Fig. 7B.
[0079] In this way, the blade or edge makes it easier for the switch button 213 to cut into
the position, to ensure that the of the third surface 213c comes into contact with
the tip of the contact element 217, 219, to assert a force to push back the contact
elements 217, 219 in the direction hey extend. The decrease of the angle ϕ increases
the force component in this direction, so smaller angle ϕ (e.g. less than 60 degrees)
makes it easier for the switch button 213 to force itself between the contact elements
217, 219 and the electrodes 229, 231.
[0080] As shown in both Figs. 7A and 7B, the tip of the contact elements 217, 219 are preferably
dome shaped. In these embodiments, when the switch button 213 is moved towards the
first position, the sloped portion will hit the dome shaped tip of the contact elements
217, 219 and assert a force in the direction of the connection springs 221, 223. The
more towards the top of the dome, the easier the switch button 213 can push back the
contact elements 217, 219.
[0081] While the principles of the invention have been set out above in connection with
specific embodiments, it is to be understood that this description is merely made
by way of example and not as a limitation of the scope of protection, which is determined
by the appended claims.
1. A safety endcap assembly (25, 200) to be arranged at an end of an LED lamp (1) having
a plurality of LEDs, the safety endcap assembly (25, 200) comprising:
- an endcap base element (201) to be arranged at an end of a housing (3) of the LED
lamp;
- a connector pin (205, 207) extending along an axis;
- an endcap cover element (203) moveable relative to the endcap base element (201)
along the axis, between a protracted position, in which the endcap cover element (203)
is more away from the endcap base element (201), and a retracted position, in which
the endcap cover element (203) is closer to the endcap base element (201);
- a contact element (217, 219) for electrically connecting the connector pin (205,
207) to the LEDs;
- a switch button (213) movable between a first position and a second position,
wherein the switch button (213) is arranged to disconnect contact element (217, 219)
from the LEDs when the switch button (213) is in the first position, and
wherein the safety endcap assembly further comprises:
- a first spring mechanism (45) for urging the endcap cover element towards the protracted
position; and
- a switch opening mechanism configured such that in case the switch button is in
the second position, and the endcap cover element moves from the retracted position
towards the protracted position over a predetermined distance, the switch button is
moved to the first position,
characterized in that
the contact element (217, 219) is connected to the connector pin (205, 207) via a
spring (221, 223), wherein the spring (221, 223) defines a variable length, including
a first length, in which the spring (221, 223) is less compressed, and a second length,
in which the spring (221, 223) is more compressed, wherein the first length, the second
length and the predetermined distance are arranged to satisfy a following inequality:

where D is the predetermined distance, A is the first length, and B is the second
length.
2. The safety endcap assembly (25, 200) according to claim 1, wherein the switch button
(213) comprises a hole, wherein, in the first position, the hole is not aligned with
the contact element in the axis, and in the second position, the hole is aligned with
the contact element in the axis,
wherein, when the endcap cover element (203) is in the retracted position and the
switch button (213) is in the second position, the contact element (217, 219) extends
through the hole of the switch button.
3. The safety endcap assembly (25, 200) according to claim 1 or 2, wherein the switch
button comprises a first surface and a second surface, wherein the first surface and
the second surface are substantially perpendicular to the axis, and wherein a distance
between the first surface and the second surface is at least 0.4 mm.
4. The safety endcap assembly according to claim 3, wherein the switch button (213) comprises
a hole forming a third surface extending from the first surface to the second surface,
wherein the third surface forms an angle less than 60 degrees with respect to the
first surface or the second surface.
5. The safety endcap assembly according to any of the preceding claims, wherein the switch
opening mechanism comprises:
- a second spring mechanism (215) for urging the switch button towards the first position;
- a switch arresting mechanism (239) configured to arrest the switch button in the
closed position when the endcap cover element is in the retracted position, and to
release the switch button, in case the endcap cover element moves from the retracted
position towards the protracted position over the predetermined distance.
6. The safety endcap assembly according to any of the preceding claims, wherein the switch
opening mechanism comprises an cantilevered beam or a torsion spring.
7. The safety endcap assembly according to any of the preceding claims, wherein the switch
opening mechanism comprises an elongated protrusion or recess for arresting the switch
button (213), wherein the protrusion or recess has a length substantially equal to
the predetermined distance.
8. The safety endcap assembly (25, 200) according to any of the preceding claims, wherein
the safety endcap is configured such that the LEDs are only connected to the connector
pin (205, 207) when the endcap cover element (203) is in the retracted position and
the switch button (213) is in the second position.
9. The safety endcap assembly according to any of the preceding claims, wherein, in the
protracted position, the switch button is covered by the endcap cover element, and
in the retracted position, the switch button is exposed.
10. An LED lamp arrangement configured to be fit in a fixture of a luminaire, the LED
lamp arrangement comprising:
- a housing;
- a plurality of LEDs arranged in the housing;
- a safety endcap assembly according to any of claims 1 - 9 on at least one end of
the housing; and
- an electrode (229, 231) for electrically connecting the contact element (217, 219)
to the LEDs.
11. The LED lamp arrangement according to claim 10, wherein the switch button (213) comprises
a hole, wherein, when the endcap cover element (203) is in the retracted position
and the switch button (213) is in the second position, the contact element (217, 219)
extends through the hole of the switch button to come into contact with the electrode
(229,231).
12. The LED lamp arrangement according to claim 10 or 11, wherein the switch button comprises
(213) a first surface and a second surface, wherein the first surface and the second
surface are substantially perpendicular to the axis, and wherein the contact between
the contact element (217, 219) and the electrode (229, 231) is arranged in a space
between the first surface and the second surface.
13. The LED lamp arrangement according to claim 12, wherein the switch button (213) comprises
a hole forming a third surface extending from the first surface to the second surface,
wherein the third surface forms an edge arranged to break the contact between contact
element (217, 219) and the electrode (229, 231).
14. The LED lamp arrangement according to any of claims 10-13, wherein with the endcap
cover element in its protracted position the LED tube assembly does not fit in the
lamp fixture; and with the endcap cover element in its retracted position the LED
tube assembly fits in the lamp fixture.
15. A method for operating an LED lamp arrangement in a luminaire, the LED lamp arrangement
comprising a safety endcap assembly (25, 200) according to any of claims 1 - 9, he
method comprising:
- moving the endcap cover element (203) towards the protracted position in accordance
with shape change of a fixture of the luminaire; and
- moving the switch button (213) from the second position to the first position, in
case the switch button is in the second position, and the endcap cover element moves
from the retracted position towards the protracted position over a predetermined distance,
the switch button is switched to the first position.