Miniature telephoto lens assembly
10795134 ยท 2020-10-06
Assignee
Inventors
Cpc classification
H04N2201/00
ELECTRICITY
Y10T29/4913
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G02B9/00
PHYSICS
G02B13/02
PHYSICS
G02B27/646
PHYSICS
International classification
G02B13/00
PHYSICS
G02B27/00
PHYSICS
G02B13/02
PHYSICS
Abstract
An optical lens assembly includes five lens elements and provides a TTL/EFL<1.0. In an embodiment, the focal length of the first lens element f1<TTL/2, an air gap between first and second lens elements is smaller than half the second lens element thickness, an air gap between the third and fourth lens elements is greater than TTL/5 and an air gap between the fourth and fifth lens elements is smaller than about 1.5 times the fifth lens element thickness. All lens elements may be aspheric.
Claims
1. A lens system, comprising: a lens assembly having an effecting focal length (EFL) and comprising a plurality of refractive lens elements arranged along an optical axis, wherein at least one surface of at least one lens element is aspheric; the lens system further comprising a window positioned between the plurality of lens elements and an image plane; wherein the lens system has a total track length (TTL) of 6.5 millimeters or less, wherein a ratio TTL/EFL<1.0, and wherein the plurality of lens elements comprises, in order from an object side to an image side, a first lens element with a focal length f1 and positive refractive power, a second lens element with a focal length f2 and negative refractive power and a third lens element with a focal length f3, wherein the first lens element has an Abbe number greater than 50 and the second lens element has an Abbe number smaller than 30, wherein either f1, f2 and f3 fulfil the condition 1.2|f3|>|f2|>1.5f1 or f1<TTL/2, wherein a center thickness along the optical axis of each one of the plurality of lens elements is at least 0.2 mm and wherein a lens assembly F # is smaller than 2.9.
2. The lens system of claim 1, wherein the plurality of lens elements further comprises a fourth lens element and a fifth lens element, wherein adjacent lens elements are separated by an air gap and wherein a maximal air gap between lens elements is greater than TTL/5.
3. The lens system of claim 1, wherein the plurality of lens elements further comprises a fourth lens element and a fifth lens element, wherein adjacent lens elements are separated by an air gap, and wherein a minimal air gap between lens elements is smaller than TTL/20.
4. The lens system of claim 1, wherein the third lens element has a negative refractive power.
5. The lens system of claim 1, wherein the first lens element has a convex object-side surface and a convex or concave image-side surface and wherein the second lens element is a meniscus lens having a convex object-side surface.
6. The lens system of claim 2, wherein the third, fourth and fifth lens element are made of plastic.
7. The lens system of claim 2, wherein all the lens elements are made of plastic.
8. The lens system of claim 2, wherein the first lens element has a convex object-side surface and a convex or concave image-side surface and wherein the second lens element is a meniscus lens having a convex object-side surface.
9. The lens system of claim 2, wherein one of the fourth and the fifth lens elements has a positive refractive power and the other of the fourth and fifth lens elements has a negative refractive power, wherein one of the fourth and fifth lens elements is characterized by an Abbe number smaller than 30 and wherein the other of the fourth and fifth lens elements is characterized by an Abbe number greater than 50.
10. The lens system of claim 2, wherein the maximal air gap is between the third and fourth lens elements.
11. The lens system of claim 9 wherein the first lens element has a convex object-side surface and a convex or concave image-side surface and wherein the second lens element is a meniscus lens having a convex object-side surface.
12. The lens system of claim 9, wherein a minimal air gap between lens elements is smaller than TTL/20.
13. The lens system of claim 9, wherein the third, fourth and fifth lens element are made of plastic.
14. The lens system of claim 9, wherein all the lens elements are made of plastic.
15. The lens system of claim 9, wherein the minimal air gap is between the first and second lens elements.
16. The lens system of claim 10, wherein the first lens element has a convex object-side surface and a convex or concave image-side surface and wherein the second lens element is a meniscus lens having a convex object-side surface.
17. The lens system of claim 1, wherein the window is a glass window.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(10) In the following description, the shape (convex or concave) of a lens element surface is defined as viewed from the respective side (i.e. from an object side or from an image side).
(11) In embodiment 100, all lens element surfaces are aspheric. Detailed optical data is given in Table 1, and the aspheric surface data is given in Table 2, wherein the units of the radius of curvature (R), lens element thickness and/or distances between elements along the optical axis and diameter are expressed in mm Nd is the refraction index. The equation of the aspheric surface profiles is expressed by:
(12)
where r is distance from (and perpendicular to) the optical axis, k is the conic coefficient, c=1/R where R is the radius of curvature, and a are coefficients given in Table 2. In the equation above as applied to embodiments of a lens assembly disclosed herein, coefficients .sub.1 and .sub.7 are zero. Note that the maximum value of r max r=Diameter/2. Also note that Table 1 (and in Tables 3 and 5 below), the distances between various elements (and/or surfaces) are marked Lmn (where m refers to the lens element number, n=1 refers to the element thickness and n=2 refers to the air gap to the next element) and are measured on the optical axis z, wherein the stop is at z=0. Each number is measured from the previous surface. Thus, the first distance 0.466 mm is measured from the stop to surface 102a, the distance L11 from surface 102a to surface 102b (i.e. the thickness of first lens element 102) is 0.894 mm, the gap L12 between surfaces 102b and 104a is 0.020 mm, the distance L21 between surfaces 104a and 104b (i.e. thickness d2 of second lens element 104) is 0.246 mm, etc. Also, L21=d.sub.2 and L51=d.sub.5. L11 for lens element 102 is indicated in
(13) TABLE-US-00001 TABLE 1 Radius R Distances Diameter # Comment [mm] [mm] Nd/Vd [mm] 1 Stop Infinite 0.466 2.4 2 L11 1.5800 0.894 1.5345/57.095 2.5 3 L12 11.2003 0.020 2.4 4 L21 33.8670 0.246 1.63549/23.91 2.2 5 L22 3.2281 0.449 1.9 6 L31 12.2843 0.290 1.5345/57.095 1.9 7 L32 7.7138 2.020 1.8 8 L41 2.3755 0.597 1.63549/23.91 3.3 9 L42 1.8801 0.068 3.6 10 L51 1.8100 0.293 1.5345/57.095 3.9 11 L52 5.2768 0.617 4.3 12 Window Infinite 0.210 1.5168/64.17 3.0 13 Infinite 0.200 3.0
(14) TABLE-US-00002 TABLE 2 Conic coefficient # k .sub.2 .sub.3 .sub.4 .sub.5 .sub.6 2 0.4668 7.9218E03 2.3146E02 3.3436E02 2.3650E02 9.2437E03 3 9.8525 2.0102E02 2.0647E04 7.4394E03 1.7529E02 4.5206E03 4 10.7569 1.9248E03 8.6003E02 1.1676E02 4.0607E02 1.3545E02 5 1.4395 5.1029E03 2.4578E01 1.7734E01 2.9848E01 1.3320E01 6 0.0000 2.1629E01 4.0134E02 1.3615E02 2.5914E03 1.2292E02 7 9.8953 2.3297E01 8.2917E02 1.2725E01 1.5691E01 5.9624E02 8 0.9938 1.3522E02 7.0395E03 1.4569E02 1.5336E02 4.3707E03 9 6.8097 1.0654E01 1.2933E02 2.9548E04 1.8317E03 5.0111E04 10 7.3161 1.8636E01 8.3105E02 1.8632E02 2.4012E03 1.2816E04 11 0.0000 1.1927E01 7.0245E02 2.0735E02 2.6418E03 1.1576E04
Embodiment 100 provides a field of view (FOV) of 44 degrees, with EFL=6.90 mm, F #=2.80 and TTL of 5.904 mm Thus and advantageously, the ratio TTL/EFL=0.855. Advantageously, the Abbe number of the first, third and fifth lens element is 57.095. Advantageously, the first air gap between lens elements 102 and 104 (the gap between surfaces 102b and 104a) has a thickness (0.020 mm) which is less than a tenth of thickness d.sub.2 (0.246 mm). Advantageously, the Abbe number of the second and fourth lens elements is 23.91. Advantageously, the third air gap between lens elements 106 and 108 has a thickness (2.020 mm) greater than TTL/5 (5.904/5 mm). Advantageously, the fourth air gap between lens elements 108 and 110 has a thickness (0.068 mm) which is smaller than 1.5d.sub.5 (0.4395 mm).
(15) The focal length (in mm) of each lens element in embodiment 100 is as follows: f1=2.645, f2=5.578, f3=8.784, f4=9.550 and f5=5.290. The condition 1.2|f3|>|f2|<1.5f1 is clearly satisfied, as 1.28.787>5.578>1.52.645. f1 also fulfills the condition f1<TTL/2, as 2.645<2.952.
(16) Using the data from row #2 in Tables 1 and 2, L1e in lens element 102 equals 0.297 mm, yielding a center-to-edge thickness ratio L11/L1e of 3.01.
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(18) In embodiment 200, all lens element surfaces are aspheric. Detailed optical data is given in Table 3, and the aspheric surface data is given in Table 4, wherein the markings and units are the same as in, respectively, Tables 1 and 2. The equation of the aspheric surface profiles is the same as for embodiment 100.
(19) TABLE-US-00003 TABLE 3 Radius R Distances Diameter # Comment [mm] [mm] Nd/Vd [mm] 1 Stop Infinite 0.592 2.5 2 L11 1.5457 0.898 1.53463/56.18 2.6 3 L12 127.7249 0.129 2.6 4 L21 6.6065 0.251 1.91266/20.65 2.1 5 L22 2.8090 0.443 1.8 6 L31 9.6183 0.293 1.53463/56.18 1.8 7 L32 3.4694 1.766 1.7 8 L41 2.6432 0.696 1.632445/23.35 3.2 9 L42 1.8663 0.106 3.6 10 L51 1.4933 0.330 1.53463/56.18 3.9 11 L52 4.1588 0.649 4.3 12 Window Infinite 0.210 1.5168/64.17 5.4 13 Infinite 0.130 5.5
(20) TABLE-US-00004 TABLE 4 Conic coefficient # k .sub.2 .sub.3 .sub.4 .sub.5 .sub.6 2 0.0000 2.7367E03 2.8779E04 4.3661E03 3.0069E03 1.2282E03 3 10.0119 4.0790E02 1.8379E02 2.2562E02 1.7706E02 4.9640E03 4 10.0220 4.6151E02 5.8320E02 2.0919E02 1.2846E02 8.8283E03 5 7.2902 3.6028E02 1.1436E01 1.9022E02 4.7992E03 3.4079E03 6 0.0000 1.6639E01 5.6754E02 1.2238E02 1.8648E02 1.9292E02 7 8.1261 1.5353E01 8.1427E02 1.5773E01 1.5303E01 4.6064E02 8 0.0000 3.2628E02 1.9535E02 1.6716E02 2.0132E03 2.0112E03 9 0.0000 1.5173E02 1.2252E02 3.3611E03 2.5303E03 8.4038E04 10 4.7688 1.4736E01 7.6335E02 2.5539E02 5.5897E03 5.0290E04 11 0.00E+00 8.3741E02 4.2660E02 8.4866E03 1.2183E04 7.2785E05
Embodiment 200 provides a FOV of 43.48 degrees, with EFL=7 mm, F #=2.86 and TTL=5.90 mm Thus and advantageously, the ratio TTL/EFL=0.843. Advantageously, the Abbe number of the first, third and fifth lens elements is 56.18. The first air gap between lens elements 202 and 204 has a thickness (0.129 mm) which is about half the thickness d.sub.2 (0.251 mm). Advantageously, the Abbe number of the second lens element is 20.65 and of the fourth lens element is 23.35. Advantageously, the third air gap between lens elements 206 and 208 has a thickness (1.766 mm) greater than TTL/5 (5.904/5 mm). Advantageously, the fourth air gap between lens elements 208 and 210 has a thickness (0.106 mm) which is less than 1.5d.sub.5 (0.495 mm).
(21) The focal length (in mm) of each lens element in embodiment 200 is as follows: f1=2.851, f2=5.468, f3=10.279, f4=7.368 and f5=4.536. The condition 1.21f31>|f2|<1.5f1 is clearly satisfied, as 1.210.279>5.468>1.52.851. f1 also fulfills the condition f1<TTL/2, as 2.851<2.950.
(22) Using the data from row #2 in Tables 3 and 4, L1e in lens element 202 equals 0.308 mm, yielding a center-to-edge thickness ratio L11/L1e of 2.916.
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(24) In embodiment 300, all lens element surfaces are aspheric. Detailed optical data is given in Table 5, and the aspheric surface data is given in Table 6, wherein the markings and units are the same as in, respectively, Tables 1 and 2. The equation of the aspheric surface profiles is the same as for embodiments 100 and 200.
(25) TABLE-US-00005 TABLE 5 Radius R Distances Diameter # Comment [mm] [mm] Nd/Vd [mm] 1 Stop Infinite 0.38 2.4 2 L11 1.5127 0.919 1.5148/63.1 2.5 3 L12 13.3831 0.029 2.3 4 L21 8.4411 0.254 1.63549/23.91 2.1 5 L22 2.6181 0.426 1.8 6 L31 17.9618 0.265 1.5345/57.09 1.8 7 L32 4.5841 1.998 1.7 8 L41 2.8827 0.514 1.63549/23.91 3.4 9 L42 1.9771 0.121 3.7 10 L51 1.8665 0.431 1.5345/57.09 4.0 11 L52 6.3670 0.538 4.4 12 Window Infinite 0.210 1.5168/64.17 3.0 13 Infinite 0.200 3.0
(26) TABLE-US-00006 TABLE 6 Conic coefficient # k .sub.2 .sub.3 .sub.4 .sub.5 .sub.6 2 0.534 1.3253E02 2.3699E02 2.8501E02 1.7853E02 4.0314E03 3 13.473 3.0077E02 4.7972E03 1.4475E02 1.8490E02 4.3565E03 4 10.132 7.0372E04 1.1328E01 1.2346E03 4.2655E02 8.8625E03 5 5.180 1.9210E03 2.3799E01 8.8055E02 2.1447E01 1.2702E01 6 0.000 2.6780E01 1.8129E02 1.7323E02 3.7372E02 2.1356E02 7 10.037 2.7660E01 1.0291E02 6.0955E02 7.5235E02 1.6521E02 8 1.703 2.6462E02 1.2633E02 4.7724E04 3.2762E03 1.6551E03 9 1.456 5.7704E03 1.8826E02 5.1593E03 2.9999E03 8.0685E04 10 6.511 2.1699E01 1.3692E01 4.2629E02 6.8371E03 4.1415E04 11 0.000 1.5120E01 8.6614E02 2.3324E02 2.7361E03 1.1236E04
Embodiment 300 provides a FOV of 44 degrees, EFL=6.84 mm, F #=2.80 and TTL=5.904 mm Thus and advantageously, the ratio TTL/EFL=0.863. Advantageously, the Abbe number of the first lens element is 63.1, and of the third and fifth lens elements is 57.09. The first air gap between lens elements 302 and 304 has a thickness (0.029 mm) which is about 1/10.sup.th the thickness d.sub.2 (0.254 mm). Advantageously, the Abbe number of the second and fourth lens elements is 23.91. Advantageously, the third air gap between lens elements 306 and 308 has a thickness (1.998 mm) greater than TTL/5 (5.904/5 mm). Advantageously, the fourth air gap between lens elements 208 and 210 has a thickness (0.121 mm) which is less than 1.5d.sub.5 (0.6465 mm).
(27) The focal length (in mm) of each lens element in embodiment 300 is as follows: f1=2.687, f2=6.016, f3=6.777, f4=8.026 and f5=5.090. The condition 1.2|f3|>|f2|<1.5f1 is clearly satisfied, as 1.26.777>6.016>1.52.687. f1 also fulfills the condition f1<TTL/2, as 2.687<2.952.
(28) Using the data from row #2 in Tables 5 and 6, L1e in lens element 302 equals 0.298 mm, yielding a center-to-edge thickness ratio L11/L1e of 3.08.
(29) While this disclosure has been described in terms of certain embodiments and generally associated methods, alterations and permutations of the embodiments and methods will be apparent to those skilled in the art. The disclosure is to be understood as not limited by the specific embodiments described herein, but only by the scope of the appended claims.