[0001] The subject of invention is a mirror with back illumination where a mirror plate
is a fragment of a surface conducting light emitted to the area in front of the mirror.
[0002] Solutions of illuminated mirrors are known in which on the mirror plate there are
light-conducting chemically or mechanically matted surfaces without a reflective layer.
Light-conductive surfaces illuminate the area in front of the mirror with the use
of light sources, such as light-emitting diodes (LEDs), mounted on the back of the
mirror. One of such solutions, shown in the German utility model No.
DE 202004000705U, has a rectangular mirror plate supported in a frame by a channel-shaped section,
covering edges of the mirror plate with its arm ends. There is free space between
the frontal surfaces of mirror edges and section centre in which strips of light-emitting
diodes (LEDs) are affixed to an inner surface of a web. Parallel to the edge of the
mirror plate is a rectangular, frame-like light-conductive surface illuminating the
area in front of the mirror by means of LED light-beam introduced circumferentially
in the direction parallel to a transparent surface of the mirror plate.
[0003] The German patent No.
DE 102007010419 discloses a cosmetic mirror with back illumination. A concave, circular plate of
a magnifying mirror is mounted circumferentially on a light-conductive ring, embedded
in a plastic shield which covers it from behind. Inside the shield there is a circular
peripheral wall with a ring and an affixed LED string which emits light through the
back wall of the ring towards a viewer's side. The central part of a circular cover
is mounted from behind, which enables electrical equipment, a power adapter, and mounting
elements to be tightly sealed.
[0004] The Polish patent application for invention No. P-398408 describes a back-illuminated
mirror with a light-conductive carrier plate. The mirror plate from behind has a tightly
attached shield which covers the entire surface of the plate. The shield is a thin-walled
plastic fitting, vacuum-thermoformed from a sheet. The peripheral edge of a rim is
covered with a flexible and springy U-shaped seal. The seal is fastened with bolt
connectors affixed to the mirror plate. Electric lighting system components are installed
between the mirror plate and the shield.
[0005] Similar to the above patent descriptions, the mirror according to the invention has
a transparent mirror plate with a reflective layer and at least one freely shaped
light-conductive surface, illuminated from behind by a strip of light-emitting diodes
(LEDs) and enclosed in a sealed shield in the form of a thin-walled vacuum-thermoformed
plastic fitting. The essence of the invention lies in the fact that the shield has
at least one lighting channel covering the light-conductive surface along its edges.
The lighting channel shape is similar in its cross-section to a letter C and its side
walls are ended with an outwardly directed rim, adjacent to the mirror plate. The
LED strips are affixed to the inner surface of both side walls of the lighting channel.
[0006] The shield is preferably made of a material with a low absorption of light, especially
in white.
[0007] It is also beneficial when the shield is connected with the mirror plate by means
of bolt connectors which are glued to the mirror plate and which press down the shield
by preloading washers embedded in hollows and by a seal affixed under the rim.
[0008] Another advantageous solution features a shield whose edges are glued to the mirror
plate.
The mirror can be suspended by means of hanging holes made in the shield. Around these
holes the wall is reinforced by a glued metal plate or by Z-shaped metal hangers with
a height greater than the shield thickness, which have one arm affixed to the back
surface of the mirror plate, in a fragment with a reflective layer, and which have
a hanging hole in a corner of the second arm.
[0009] Interior design is enhanced by a version where a decorative motif, rich in colours
and design elements, with a light-conductive layer is applied on the inner side of
the mirror plate, within the light-conductive surface.
[0010] The mirror according to the invention is useful for cosmetic treatments when it has
a round magnifying mirror affixed to the mirror surface. Preferably, around the magnifying
mirror is a coaxial annular light-conductive surface which is covered by a round shield
with a rim glued to the mirror plate and forming the lighting channel with the LED
strip, affixed to the peripheral inner surface of the side wall.
[0011] The presented mirror according to the invention emits light by diffuse radiation
directed orthogonally towards the mirror plate, with homogeneous luminosity. The light
is energy efficient due to the fact that space of the lighting channel is reduced
to the cross-wise dimension of the light-conductive surface. The lighting channel
has a low-absorption surface, and white shield material is especially preferred. The
structure is light with a thin mirror, and a vacuum-thermoformed shield made of a
thin plastic plate is inexpensive and flexible when changing the design.
[0012] The mirror according to the invention is described on the example of several design
versions shown in the figure. Individual figures show as follows:
- Fig. 1, 2 and 3 - a rectangular bathroom mirror, respectively, in front view, rear
view, and cross-section along the AA line indicated in Fig. 2,
- Fig. 4, 5, 6 and 7 - a round wall mirror, respectively, in front view, rear view,
and in fragmentary sections indicated in Fig. 5 by C-C and D-D letters,
- Fig. 8 and 9 - a rectangular decorative mirror in front and rear view,
- Fig. 10, 11 and 12 - a cosmetic mirror with illuminated space in front of the affixed
magnifying mirror, in front and rear view and in cross-section indicated by E-E letters.
[0013] The bathroom mirror illustrated in Fig. 1, 2 and 3 has a rectangular mirror plate
(1) with two light-conductive surfaces (2) in a form of two strips parallel to lateral
vertical edges. The back surface of the mirror plate (1) is covered with a shield
(3), which is vacuum-thermoformed from a thin sheet of white plastic and positioned
on a wooden form. The shield (3) has two cavities on both sides with a shape similar
in its cross-section to a letter C, covering the light-conductive surfaces (2) along
their edges and forming channels (4) for light emitted by LED strings (5) which are
affixed to the inner surface of side walls (6). Side walls (6) of lighting channels
(4) are ended with outwardly directed rims (7) which are adjacent to the mirror plate
(1). The shield (3) is connected to the mirror plate (1) by means of bolt connectors
(8) which are glued to the mirror plate (1) and which press down the shield (3) by
preloading washers (10) embedded in hollows (9) and by a seal (11) affixed under the
rim (7). The shield (3) also features hanging holes (12), around which the wall is
reinforced by a glued metal plate (13). The shaping of the central part of the shield
(3) between the lighting channels (4) - hollows (9), hanging holes (12), and horizontal
cavities in which the electrical equipment with a power adapter (17) is mounted, make
the shield (3) rigid, tight and allow for the safe use of the mirror in rooms exposed
to high humidity.
[0014] A round wall mirror illustrated in Fig. 4, 5, 6 and 7 has a light-conductive surface
(2) in the form of a concentric ring at the outer edge of the mirror plate (1). This
version features a shield (3) which covers only the peripheral surface of the lighting
channel (4), affixed with its rim (7) to the mirror plate (1). The central part of
the mirror plate (1) is open and features affixed two hangers (14) in the upper part
and two spacers (16) in the lower part, all of which are spaced at the corners of
a square, and a power adapter (17) in the middle. Z-shaped, bent hangers (14) from
sheet metals have a height greater than the shield (3) thickness, are affixed with
one arm to the back surface of the mirror plate (1), and have a hanging hole (12)
in a corner of the second arm.
[0015] A decorative mirror illustrated in Fig. 8 and 9 has two light-conductive surfaces
(2). The one with a larger surface area is located on the left vertical side of the
mirror and, on the inner side of a mirror plate (1), it features an affixed film with
a decorative motif (15) printed with the use of light-conductive paints. The second
light-conductive surface (2), in the form of a horizontal strip located along the
upper edge of the mirror plate (1), has an illuminating function only. Both surfaces
are covered with two different shields (3), affixed to the mirror plate (1). As in
the case of the above-described mirrors, hangers (14) and spacers (16) are glued to
the mirror plate in the open space between the shields (3).
[0016] The last exemplary version of the invention relates to a cosmetic mirror with a mirror
plate (1) in the form of a triangle with rounded corners. Near one of the corners,
the mirror plate (1) has a round, spherical and concave magnifying mirror (18) affixed.
Around it there is an annular light-conductive surface (2), covered by a round shield
(3) from behind. On the circumference, the shield (3) is affixed to the mirror plate
(1) by a rim (7), and its inner surface forms a lighting channel (4) with a LED strip
(5) glued to the peripheral inner surface of the side wall (6). In the lower corner,
in the mirror plate (1), there is an access hole for the current switch (19) of back
lighting.
List of figure markings
[0017]
- 1. mirror plate
- 2. light-conductive surface
- 3. shield
- 4. lighting channel
- 5. LED strip
- 6. side wall
- 7. rim
- 8. bolt connector
- 9. hollow
- 10. preloading washer
- 11. seal
- 12. hanging hole
- 13. metal plate
- 14. hanger
- 15. decorative motif
- 16. spacer
- 17. power adapter
- 18. magnifying mirror
- 19. current switch
1. A mirror with back illumination having a transparent plate with a reflective layer
and at least one freely shaped light-conductive surface, illuminated from behind by
a strip of light-emitting diodes (LEDs) and enclosed in a sealed shield in the form
of a thin-walled vacuum-thermoformed plastic fitting, wherein the shield (3) has at
least one lighting channel (4) covering a light-conductive surface (2) along its edges.
The lighting channel (4) shape is similar in its cross-section to a letter C whose
side walls (6) are ended with an outwardly directed rim (7), adjacent to the mirror
plate (1). The LED strips (5) are affixed to the inner surface of both side walls
(6) of the lighting channel (4).
2. A mirror according to claim 1 characterised in that its shield (3) is made of a material with a low absorption of light, especially in
white.
3. A mirror according to claim 1 characterised in that a shield (3) is connected with a mirror plate (1) by means of bolt connectors (8)
which are glued to the mirror plate (1) and which press down the shield (3) by preloading
washers (10) embedded in hollows (9) and by a seal (11) affixed under a rim (7).
4. A mirror according to claim 1 characterised in that a rim (7) of a shield (3) is glued to a mirror plate (1).
5. A mirror according to claim 1 or claim 2 or claim 3 or claim 4, characterised in that two hanging holes (12) are made in a shield (3) and around them a wall is reinforced
by a glued metal plate (13).
6. A mirror according to claim 1 or claim 2 or claim 3 or claim 4, characterised in that Z-shaped metal hangers (14) with a height greater than a shield (3) thickness have
one arm affixed to the back surface of a mirror plate (1), in a fragment with a reflective
layer, and which have a hanging hole (12) in a corner of the second arm.
7. A mirror according to claim 1, characterised in that a light-conductive surface (2) on an inner side of a mirror plate (1) has a decorative
motif (15) printed with the use of light-conductive paints.
8. A mirror according to claim 1, characterised in that a mirror plate (1) has a round magnifying mirror (18) affixed, around which there
is an annular light-conductive surface (2), covered by a round shield (3) from behind.
On the circumference, a shield (3) is affixed to the mirror plate (1) by a rim (7),
and its inner surface forms a lighting channel (4) with a LED strip (5) glued to a
peripheral inner surface of a side wall (6).