Transmission-type non-refrigeration passive athermalization long-wave infrared optical system

A long-wave infrared and optical system technology, applied in optics, optical components, instruments, etc., can solve the problems of image quality non-uniformity, high price, processing, and detection difficulties, so as to eliminate thermal difference and avoid uniformity Good, simple and compact structure

Inactive Publication Date: 2014-08-20
SOUTH WEST INST OF TECHN PHYSICS
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  • Abstract
  • Description
  • Claims
  • Application Information

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Problems solved by technology

The corresponding shortcomings are either that the binary optical surface is more difficult in the processing, detection and processing of the optical system, or the performance of the large-aperture chalcogenide glass lens material is unstable, and the processing and coating of the optical system are difficult, and like T

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  • Transmission-type non-refrigeration passive athermalization long-wave infrared optical system
  • Transmission-type non-refrigeration passive athermalization long-wave infrared optical system
  • Transmission-type non-refrigeration passive athermalization long-wave infrared optical system

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Embodiment Construction

[0016] In order to further clearly illustrate the present invention, specific embodiments will be provided below and combined with the accompanying drawings to describe the technical solution, but they should not be construed as limiting the present invention.

[0017] refer to figure 1 A transmissive uncooled passive athermalized long-wave infrared optical system described, from the infinite object plane 1 to the detector focal plane 8, adopts a deformed Petzwan structure, including: positive power in the Petzwan structure The front group, that is, the dome cover 2 of zinc sulfide material, the first meniscus positive lens 3 of zinc selenide material, the meniscus negative lens 4 of zinc sulfide material, the second meniscus positive lens 5 of chalcogenide glass GASIR1 material and The concave negative lens 6 of germanium material; the rear group of the positive refractive power in the Petzwan structure, that is, the biconvex positive lens 7 of zinc selenide material, use 4 k...

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Abstract

The invention provides a transmission-type non-refrigeration passive athermalization long-wave infrared optical system. According to the optical system, the chalcogenide glass caliber is small, and the optical system has the optical passive athermalization performance and can be used for a non-refrigeration long-wave infrared detector in the 8 micron-12 micron long-wave infrared band. According to the technical scheme, infinite parallel light enters a crescent positive lens (3) with the maximum caliber from an object plane through a spherical cover, so that convergent light is formed; the convergent light enters a crescent negative lens (4), so that the convergence angles are reduced, and part of chromatic aberrations, thermal aberrations and monochromatic aberrations are corrected; the convergence angles are increased through a second crescent positive lens (5) which is purely spherical; through a concave surface negative lens (6) behind the second crescent positive lens (5), the thermal aberrations are balanced, the monochromatic aberrations are reduced, and the convergence angles of the light are reduced; the light enters a rear set, which is a biconvex positive lens (7), of a Petzval structure, and the residual chromatic aberrations, thermal aberrations and monochromatic aberrations of the system are balanced furthermore; imaging is conducted on a detector focal plane (8), and the whole imaging process is completed.

Description

technical field [0001] The invention relates to a transmission type uncooled passive athermalization long-wave infrared optical system, especially a transmission type optical system capable of optical passive athermalization performance in the 8μm-12μm long-wave infrared band and the temperature range of -45-60°C. Background technique [0002] When the optical instrument is used in a large temperature range, the thermal expansion and contraction of the lens barrel material, the optical material, and the temperature refractive index coefficient of the optical material will change the focal power of the lens, resulting in defocusing and deteriorating the imaging quality. Especially for infrared optical systems, due to the commonly used infrared optical materials, such as germanium materials, the refractive index temperature coefficient dn / dT is as high as 386×10-6 / K, which is nearly 80 times that of visible light glass dn / dT, and has a large When changing, the refractive index...

Claims

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Application Information

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IPC IPC(8): G02B13/14G02B13/18G02B13/06G02B1/00
Inventor 邓键郭立新李华秦忠洋吴晔
Owner SOUTH WEST INST OF TECHN PHYSICS
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