[0001] This present application claims priority of Chinese patent application no.
CN 202510009003.X filed on Jan. 3, 2025, named "An optical assembly", the disclosures of which are incorporated herein by
reference in its entirety.
Field of Invention
[0002] The present application relates to the field of lamps, and in particular to an optical
assembly for illumination.
Background of Invention
[0003] At present, deflected illumination lamps available on the market are usually implemented
by means of mechanical deflection. However, such a manner has the problem of shielding
by mechanical structures during angle adjustment for deflected illumination. For example,
structures such as a lamp mounting frame or a lamp shade may shield the outgoing light
when rotated by a relatively large angle, thereby affecting the illumination effect.
Therefore, deflected lenses are often adopted to solve the problem of shielding caused
by rotation of the lamp. For existing deflected lenses on the market, as shown in
FIG. 1, the light exit surface is generally formed by an array of oblique teeth. For
a light beam, due to the deflection of light rays, the exit range on one side is larger
than that on the other side relative to the beam center, resulting in uneven illumination
on the final irradiation surface.
[0004] Therefore, those skilled in the art are committed to developing an optical assembly
capable of improving illumination uniformity when used for deflected illumination.
Summary of Invention
[0005] In view of the above defects in the prior art, the technical problem to be solved
by the present application is the problem of uneven unilateral illumination after
unilateral deflection of a light beam by a deflected illumination lens.
[0006] To achieve the above objective, in a first aspect, the present application provides
an optical assembly, comprising a first lens disposed in a light exit direction of
a light source and configured to deflect incident light rays after passing through
the first lens. The first lens comprises a first optical surface configured for light
incidence and a second optical surface configured for light exit, wherein the first
optical surface is provided as a microlens array, the second optical surface is provided
as an array of refractive prisms, a plurality of refractive prisms are distributed
in sequence along a longitudinal axis direction, and each refractive prism comprises
a refractive surface extending along a transverse axis direction; in a longitudinal
section perpendicular to the transverse axis direction, the cross-sectional profile
of the first optical surface is formed by a plurality of microlenses connected in
sequence, and each microlens has an outwardly convex curved surface; for a collimated
or nearly collimated light beam incident on the first lens, in said longitudinal section:
a first incident light ray is defined as being incident from one end of the cross-sectional
profile of one microlens of the first optical surface, and the first incident light
ray exits from one refractive prism as a first exit light ray after passing through
the first lens; a second incident light ray is defined as reaching the other end of
the cross-sectional profile of the same microlens, and the second incident light ray
exits from the same or an adjacent refractive prism as a second exit light ray after
passing through the first lens; and the first lens is configured such that the first
exit light ray and the second exit light ray can intersect outside the second optical
surface.
[0007] In an optional embodiment, each microlens has an identical shape, and/or each refractive
prism has an identical shape.
[0008] In an optional embodiment, in the longitudinal section, a third incident light ray
is incident on the microlens along a central axis between the first incident light
ray and the second incident light ray, and exits as a third exit light ray after passing
through the first lens; the first lens is configured such that a relative error between
two included angles formed by the third exit light ray with the first exit light ray
and the second exit light ray respectively in the longitudinal section is less than
5%.
[0009] In an optional embodiment, the third incident light ray coincides with a normal line
at its incident point on the microlens.
[0010] In an optional embodiment, in a cross section perpendicular to the longitudinal axis
direction, the cross-sectional profile of each microlens is a smooth circular arc.
[0011] In an optional embodiment, the refractive surfaces of adjacent refractive prisms
are connected by transition surfaces, and the transition surfaces are arranged parallel
to each other.
[0012] In an optional embodiment, the optical assembly of the present application further
comprises a second lens disposed between the light source and the first lens, the
second lens being configured such that light rays from the light source exit to the
first lens as collimated or nearly collimated light rays after passing through the
second lens; the second lens comprises a light incident portion, a first total reflection
surface and a first light exit surface; the light incident portion is configured to
receive light rays from the light source, the first total reflection surface is configured
to condense part of the incident light from the light source, and the first light
exit surface is configured to refract and exit the light rays reflected by the first
total reflection surface.
[0013] In an optional embodiment, the light incident portion comprises a first light incident
surface and a second light incident surface, the first light incident surface is disposed
around the periphery of the second light incident surface and forms a light source
mounting position; the first light incident surface is arranged corresponding to the
first total reflection surface, and is configured such that part of light rays from
the light source is incident to the first total reflection surface through the first
light incident surface.
[0014] In an optional embodiment, the second lens comprises an optical axis that coincides
with its central axis and a second light exit surface passed through by the optical
axis; the second light exit surface is configured to converge part of light rays incident
through the light incident portion and emit the converged light rays to the first
lens; the first total reflection surface is arranged at an outer side of the second
lens, and the first light exit surface is connected between the second light exit
surface and the first total reflection surface.
[0015] In an optional embodiment, the second lens is a rotary body taking the optical axis
as a central axis.
[0016] In a second aspect, the present application further provides a lamp comprising the
optical assembly as described above.
Technical effects of the present invention
[0017] The optical assembly of the present application achieves deflected illumination through
the first lens, and the second lens assists in providing collimated or nearly collimated
light rays incident on the first lens. The exit light is deflected and distributed
homogenously, making it suitable for lamps such as downlights whose angle adjustment
is limited due to shielding after rotation. It can still irradiate the irradiation
surface uniformly when the lamp tube is obliquely directed toward the irradiation
surface.
Overview on drawings
[0018] Hereinafter, the disclosure will be disclosed with reference to the drawings and
exemplary embodiments, from which further features, technical effects and problems
to be solved will become apparent. In the drawings:
- FIG. 1
- is a schematic diagram of the irradiation light path of a polarizing lens in the prior
art.
- FIG. 2
- is a schematic diagram showing the longitudinal section structure and optical principle
of the first lens in the optical assembly of the present application.
- FIG. 3
- is a structural schematic diagram of the first lens in the optical assembly of the
present application.
- FIG. 4
- is an enlarged schematic diagram of portion D in FIG. 3.
- FIG. 5
- is a longitudinal section structural schematic diagram of another embodiment of the
optical assembly of the present application.
- FIG. 6
- is a schematic diagram of a specific structure of the optical assembly in FIG. 5.
[0019] Wherein:
100 first lens, 1 first optical surface, 11 microlens, 2 second optical surface, 21
refractive prism, 211 refractive surface, 212 transition surface, 200 second lens,
201 light incident portion, 202 optical axis, 3 first total reflection surface, 4
first light exit surface, 5 first light incident surface, 6 second light incident
surface, 7 second light exit surface, 300 irradiation surface, A1 first incident light
ray, A2 first exit light ray, B1 second incident light ray, B2 second exit light ray,
C1 third incident light ray, C2 third exit light ray, Y longitudinal axis direction,
X transverse axis direction.
[0020] Throughout the drawings, like reference numerals designated identical or substantially
equivalent elements or groups of elements.
Detailed description of preferred embodiments
[0021] Specific embodiments of the present disclosure will be further described in detail
below based on the accompanying drawings. It should be understood that the descriptions
of the embodiments of the present disclosure herein are not intended to limit the
protection scope of the present disclosure.
[0022] The terms used in the following embodiments are intended only to describe the purpose
of a particular embodiment and are not intended to limit this disclosure. The terms
"one", "a" and "this" of singular forms used in this specification and the appended
claims of this disclosure are also intended to include plural forms, unless otherwise
specified in the context clearly. It should also be understood that in the following
embodiments of this disclosure, "at least one" and "one or more" mean one or two or
more. The term "and/or" describes an association relationship for describing associated
objects and represents that three relationships may exist. For example, A and/or B
may represent the following three cases: Only A exists, both A and B exist, and only
B exists, where A and B may be singular or plural. The character "/" generally indicates
an "or" relationship between the associated objects.
[0023] Reference to "one embodiment", "some embodiments" or the like described in this specification
means that one or more embodiments of this disclosure include a particular feature,
structure, or characteristic described with reference to the embodiment. Therefore,
the expressions "in one embodiment", "in some embodiments", "in some other embodiments"
that appear in different parts of this specification do not necessarily mean reference
to the same embodiment, but mean "one or more embodiments but not all embodiments",
unless otherwise specially emphasized. The terms "include", "comprise", "have", and
variations thereof mean "include, but are not limited to", unless otherwise specifically
emphasized.
[0024] As shown in FIGS. 2 to 4, an optical assembly provided by the present application
comprises a first lens 100 disposed in a light exit direction of a light source and
configured to deflect incident light rays after passing through the first lens 100.
The first lens 100 comprises a first optical surface 1 for light incidence and a second
optical surface 2 for light exit, wherein the first optical surface 1 is provided
as an array of a plurality of microlenses 11 arranged in a plane, and the second optical
surface 2 is provided as an array of refractive prisms 21 arranged. On the second
optical surface 2, a plurality of refractive prisms 21 are distributed in sequence
along a longitudinal axis direction Y, and each refractive prism 21 comprises a refractive
surface 211 extending along a transverse axis direction X. In a longitudinal section
perpendicular to the transverse axis direction X, the cross-sectional profile of the
first optical surface 1 is formed by a plurality of microlenses 11 connected in sequence.
On the first optical surface 1, each microlens 11 has an outwardly convex curved surface,
and in the aforesaid longitudinal section, the profile of the first optical surface
1 is shown to be formed by a plurality of microlenses 11 distributed and connected
longitudinally.
[0025] For a collimated or nearly collimated light beam incident on the first lens 100,
within the range of the cross-sectional profile of one microlens 11 in the longitudinal
section, a first incident light ray A1 is defined as being incident from one end of
the cross-sectional profile of the microlens 11, and a light ray exiting from one
refractive prism 21 of the second optical surface 2 after the first incident light
ray A1 passes through the first lens 100 is defined a first exit light ray A2. A second
incident light ray B1 is defined as reaching the other end of the cross-sectional
profile of the same microlens 11, and the second incident light ray B1 exits from
the same or an adjacent refractive prism 21 defined as a second exit light ray B2
after passing through the first lens 100. Compared with the prior art shown in FIG.
1, the first lens 100 of the present application is configured such that the first
exit light ray A2 and the second exit light ray B2 can intersect outside the second
optical surface 2.
[0026] Regarding the structures of the first optical surface 1 and the second optical surface
2, as an optional embodiment, the first lens 100 may be configured such that each
microlens 11 on the first optical surface 1 has an identical shape, each refractive
prism 21 on the second optical surface 2 may also be configured to have an identical
shape, or the surfaces on both sides may each be provided as arrays of identical shapes.
As shown in FIGS. 3 and 4, on the first optical surface 1, the microlenses 11 are
arranged in identical shapes and connected in sequence along both the longitudinal
axis direction Y and the transverse axis direction X, thereby forming a uniform grid-like
structure.
[0027] The first lens 100 of the present application is configured to change the distribution
range of the exit light rays in such a manner that the first incident light ray A1
and the second incident light ray B1 intersect after being refracted and exiting.
This is different from the prior art in FIG. 1. For collimated and nearly collimated
incident light rays from a single light source, which are generally parallel light
or slightly divergent light rays, the incident and refracted light rays remain divergent
with the combination of a flat surface and refractive prisms alone in FIG. 1, whereas
the exit light rays of the present application can intersect after passing through
the first lens 100, thereby changing the divergence of the light beam.
[0028] Optionally, in the longitudinal section, a third incident light ray C1 is incident
on the microlens 11 along the central axis between the first incident light ray A1
and the second incident light ray B1, and exits as a third exit light ray C2 after
passing through the first lens 100. The first lens 100 is configured such that the
relative error between the two included angles formed by the third exit light ray
C2 with the first exit light ray A2 and the second exit light ray B2 respectively
in the longitudinal section is less than 5%, so that the third exit light ray C2 is
located substantially at the center of the exiting light beam. The aforesaid light
distribution is applicable to any longitudinal section.
[0029] It can be understood that, for a light beam incident on the microlens 11, the first
incident light ray A1 and the second incident light ray B1 are located at the two
side edges of the light beam, and the third incident light ray C1 is located at the
center of the light beam. After being refracted by the microlens 11, the original
collimated or nearly collimated light beam is converged to a certain extent, and the
first incident light ray A1 and the second incident light ray B1 converge toward the
center of the light beam, thus having different incident angles on the refractive
prisms 21 of the second optical surface 2. After refraction, the deflection angle
of the first exit light ray A2 is larger than that of the second exit light ray B2,
so that the entire light beam is converged after refraction and then exits obliquely
as a conical light beam. By setting the shape of the corresponding incident microlens
11 and the inclination angle of the refractive surface 211 of the exiting refractive
prism 21, the included angle α between the third exit light ray C2 and the first exit
light ray A2 and the included angle β between the third exit light ray C2 and the
second exit light ray B2 are made approximately equal, so that the exiting light beam
is uniformly distributed with the third exit light ray C2 as the center, which can
ensure that the upper and lower light spot ranges are the same during forward irradiation.
[0030] For example, in one embodiment of the present application, in the light path of FIG.
2, among the aforesaid light rays passing through the first lens 100, the included
angle α is 10.08°, the included angle β is 9.73°, while the included angles upon incidence
into the first lens 100 are 5.12° and 4.5° respectively. Therefore, after the light
rays are redistributed by the first lens 100, the difference between the two included
angles is significantly reduced.
[0031] By designing the inclination angle of the refractive surface 211, the magnitudes
of the included angle α between the third exit light ray C2 and the first exit light
ray A2 and the included angle β between the third exit light ray C2 and the second
exit light ray B2 can be further adjusted, and the refractive prisms 21 of the second
optical surface 2 can be designed according to actual lighting requirements. Further
preferably, the cross-sectional profile of the microlens 11 in the longitudinal section
may be a smooth arc, and the third incident light ray C1 coincides with the symmetry
axis of the first incident light ray A1 and the second incident light ray B1. For
a microlens 11 with a symmetrical shape and a symmetry axis parallel to the incident
direction, the third incident light ray C1 coincides with the normal line at its incident
point on the microlens 11. In this way, the included angle α and the included angle
β in the exiting light rays are approximately equal.
[0032] As shown in FIGS. 3 and 4, on the first optical surface 1, each microlens 11 comprises
a smooth outwardly convex curved surface. Optionally, in a cross section perpendicular
to the longitudinal axis direction Y, the cross-sectional profile of each microlens
11 is a smooth circular arc, and the profile of the microlens 11 is symmetrical. The
refractive surfaces 211 of adjacent refractive prisms 21 are connected by transition
surfaces 212, and the transition surfaces 212 are arranged parallel to each other.
To reduce stray light caused by refraction of light rays on the transition surfaces
212 when passing through the first lens 100, the transition surfaces 212 are arranged
parallel or nearly parallel to the direction of the optical axis 202 of the first
lens 100.
[0033] In the optical assembly of the present application, the first lens 100 is suitable
for deflecting collimated or nearly collimated light, and the optical axis 202 of
the first lens 100 is parallel to or coincident with the optical axis 202 of the light
source.
[0034] The optical assembly further comprises a second lens 200 disposed between the light
source and the first lens 100, as shown in FIG. 5. The second lens 200 is configured
such that light rays from the light source exit to the first lens 100 as collimated
or nearly collimated light rays after passing through the second lens 200. The optical
axis 202 of the second lens 200 is parallel to or coincident with the optical axis
202 of the light source, and may optionally be a TIR lens. Specifically, the second
lens 200 comprises a light incident portion 201, a first total reflection surface
3 and a first light exit surface 4. The light incident portion 201 is configured to
receive light rays from the light source, the first total reflection surface 3 is
configured to condense part of the incident light from the light source, and the first
light exit surface 4 is configured to refract and exit the light rays reflected by
the first total reflection surface 3.
[0035] In an optional embodiment, the light incident portion 201 comprises a first light
incident surface 5 and a second light incident surface 6. The first light incident
surface 5 is disposed around the periphery of the second light incident surface 6
and forms a light source mounting position. The first light incident surface 5 is
arranged corresponding to the first total reflection surface 3, and is configured
such that part of light rays from the light source is incident to the first total
reflection surface 3 through the first light incident surface 5.
[0036] The second lens 200 comprises an optical axis 202 that coincides with its central
axis and a second light exit surface 7 passed through by the optical axis 202. The
second light exit surface 7 is configured to converge part of light rays incident
through the light incident portion 201 and emit the converged light rays to the first
lens 100. The first total reflection surface 3 is arranged at an outer side of the
second lens 200, and the first light exit surface 4 is connected between the second
light exit surface 7 and the first total reflection surface 3. Specifically, in an
integrated structure, the first total reflection surface 3 is configured the outer
wall of the second lens 200 so as to totally reflect light rays inside the second
lens 200. As shown in FIG. 6, the second light exit surface 7 is provided as an outwardly
convex surface, which has the effect of converging and emitting light rays. In this
way, light rays emitted from the light source at the light source mounting position
are converted into collimated or nearly collimated light rays and exit to the first
lens 100 after passing through the second lens 200. Optionally, the second lens 200
is a rotary body taking the optical axis 202 as a central axis.
[0037] In the optical assembly provided by the present application, the second lens 200
converges light from an LED light source into a small angle and emits it onto the
first lens 100, and the first lens 100 deflects the emitted light. When the optical
assembly is arranged in a lamp in this manner, polarized illumination can be achieved
when the optical axis 202 of the second lens 200 is concentric with the optical axis
of the lamp body and the optical axis of the first lens 100 is parallel to or coincident
with the optical axis 202 of the second lens 200. When the lamp body is deflected
by a certain angle, the light spot can irradiate the irradiation surface 300 forwardly,
as shown in FIG. 2. The optical assembly is suitable for lamps such as downlights
with limited angle adjustment, and can still uniformly irradiate the irradiation surface
300 when the lamp tube cannot directly point to the irradiation surface 300.
[0038] The above are only preferred embodiments of the present disclosure, and are not intended
to limit the protection scope of the present disclosure. Any modifications, equivalent
replacements or improvements within the spirit of the present disclosure are included
within the scope of the claims of the present disclosure.
1. An optical assembly, comprising a first lens (100) disposed in a light exit direction
of a light source and configured to deflect incident light rays after passing through
the first lens (100), the first lens (100) comprising a first optical surface (1)
configured for light incidence and a second optical surface (2) configured for light
exit, wherein,
the first optical surface (1) is provided as an array of microlenses (11), and the
second optical surface (2) is provided as an array of refractive prisms (21); a plurality
of refractive prisms (21) are distributed in sequence along a longitudinal axis direction,
and each refractive prism (21) comprises a refractive surface (211) extending along
a transverse axis direction; in a longitudinal section perpendicular to the transverse
axis direction, the cross-sectional profile of the first optical surface (1) is formed
by a plurality of microlenses (11) connected in sequence, and each microlens (11)
has an outwardly convex curved surface;
for a collimated or nearly collimated light beam incident on the first lens (100),
in said longitudinal section, a first incident light ray is defined as being incident
from one end of the cross-sectional profile of one microlens (11) of the first optical
surface (1), and the first incident light ray exits from one refractive prism (21)
as a first exit light ray after passing through the first lens (100); a second incident
light ray is defined as reaching the other end of the cross-sectional profile of the
same one microlens (11), and the second incident light ray exits from the same or
an adjacent refractive prism (21) as a second exit light ray after passing through
the first lens (100);
wherein the first lens (100) is configured such that the first exit light ray and
the second exit light ray intersect outside the second optical surface (2).
2. The optical assembly according to claim 1, wherein each microlens (11) has an identical
shape, and/or each refractive prism (21) has an identical shape.
3. The optical assembly according to claim 1 or 2, wherein, in the longitudinal section,
a third incident light ray is incident on the microlens (11) along a central axis
between the first incident light ray and the second incident light ray, and exits
as a third exit light ray after passing through the first lens (100); the first lens
(100) is configured such that a relative error between two included angles formed
by the third exit light ray with the first exit light ray and the second exit light
ray respectively in the longitudinal section is less than 5%.
4. The optical assembly according to claim 3, wherein the third incident light ray coincides
with a normal line at its incident point on the microlens (11).
5. The optical assembly according to any one of claims 1 to 4, wherein, in a cross section
perpendicular to the longitudinal axis direction, the cross-sectional profile of each
microlens (11) is a smooth circular arc.
6. The optical assembly according to any one of claims 1 to 5, wherein the refractive
surfaces (211) of adjacent refractive prisms (21) are connected by transition surfaces
(212), and the transition surfaces (212) are arranged parallel to each other.
7. The optical assembly according to any one of claims 1 to 6, wherein it further comprises
a second lens (200) disposed between the light source and the first lens (100), the
second lens (200) being configured such that light rays from the light source exit
to the first lens (100) as collimated or nearly collimated light rays after passing
through the second lens (200);
the second lens (200) comprises a light incident portion (201), a first total reflection
surface (3) and a first light exit surface (4); the light incident portion (201) is
configured to receive light rays from the light source, the first total reflection
surface (3) is configured to condense part of the incident light from the light source,
and the first light exit surface (4) is configured to refract and exit the light rays
reflected by the first total reflection surface (3).
8. The optical assembly according to claim 7, wherein the light incident portion (201)
comprises a first light incident surface (5) and a second light incident surface (6),
the first light incident surface (5) being disposed around the periphery of the second
light incident surface (6) and forming a light source mounting position; the first
light incident surface (5) is arranged corresponding to the first total reflection
surface (3), and is configured such that part of light rays from the light source
is incident to the first total reflection surface (3) through the first light incident
surface (5).
9. The optical assembly according to claim 7 or 8, wherein the second lens (200) comprises
an optical axis (202) that coincides with its central axis and a second light exit
surface (7) passed through by the optical axis (202); the second light exit surface
(7) is configured to converge part of light rays incident through the light incident
portion (201) and emit the converged light rays to the first lens (100); the first
total reflection surface (3) is arranged at an outer side of the second lens (200),
and the first light exit surface (4) is connected between the second light exit surface
(7) and the first total reflection surface (3).
10. The optical assembly according to claim 9, wherein the second lens (200) is configured
a rotary body taking the optical axis (202) as a central axis.
11. A lamp, comprising the optical assembly according to any one of claims 1 to 10.