视频免费1区二区三区-99免费精品在线视频-国产精品一级aaaa片在线看-免费一区二区三区在线视频-香蕉视频在线网站-亚洲一区国产av-日本高清色视频在线观看免费-成人午夜在线视频-黄色国产在线观看免费-精品国产高清av在线-色综合久久丁香婷婷-呦系列视频一区二区三区-午夜影院中文字幕-99国产资源-91观看在线-国产精品久久久久久久久免费观看-久久九精品-国产高清日韩欧美-97综合网-99爱免费视频-色婷婷精品av-五月婷伊人-欧美日韩国产一区二-亚洲久爱-97色在线观看免费视频-久久精品99成人中文字幕880-好男人资源视频在线播放-91香蕉视频污污-精品一区二区三区四区视频观看-日韩中文字幕资源站

撥號18861759551

你的位置:首頁 > 技術文章 > 單色光學像差

技術文章

單色光學像差

技術文章

Chromatic and Monochromatic Optical Aberrations

Designing optical systems is never an easy task; even perfectly designed systems contain optical aberrations. The trick is in understanding and correcting for these optical aberrations in order to create an optimal system. To do so, consider the types of aberrations present in optical systems.

 

Optical aberrations are deviations from a perfect, mathematical model. It is important to note that they are not caused by any physical, optical, or mechanical flaws. Rather, they can be caused by the lens shape itself, or placement of optical elements within a system, due to the wave nature of light. Optical systems are typically designed using first order or paraxial optics in order to calculate image size and location. Paraxial optics does not take into account aberrations; it treats light as a ray, and therefore omits the wave phenomena that cause aberrations.

 

Optical aberrations are named and characterized in several different ways. For simplicity, consider aberrations divided into two groups: chromatic aberrations (present when using more than one wavelength of light) and monochromatic aberrations (present with a single wavelength of light).

 

CHROMATIC ABERRATIONS

Chromatic aberrations are further classified into two types: transverse and longitudinal. Longitudinal can then be either primary or secondary longitudinal chromatic aberration.

 

Transverse chromatic aberration (TCA) occurs when the size of the image changes with wavelength. In other words, when white light is used, red, yellow, and blue wavelengths focus at separate points in a vertical plane (Figure 1). In optical terms, 656.3nm (red) is referred to as C light, 587.6nm (yellow) as d light, and 486.1nm (blue) as F light. These designations arise from their hydrogen emission lines for C & F lights and helium for d light.

 

Longitudinal chromatic aberration (LCA) occurs when different wavelengths focus at different points along the horizontal optical axis as a result of dispersion properties of the glass. The refractive index of a glass is wavelength dependent, so it has a slightly different effect on where each wavelength of light focuses, resulting in separate focal points for F, d, and C light along a horizontal plane (Figure 2).

Figure 1: Transverse Chromatic Aberration of a Single Positive Lens

Figure 2: Longitudinal Chromatic Aberration of a Single Positive Lens

Figure 3: Achromatic Doublet Lens Correcting for Primary Longitudinal Chromatic Aberration

Primary LCA correction is usually performed using an achromatic doublet lens, which is made of positive and negative lens elements of different refractive indices (Figure 3). This type of correction forces F and C light to focus at the same place, but has little effect on the location of the d light focus, which leaves residual chromatic aberration.

 

In order to correct this residual LCA, a more complex lens or lens system must be used to shift the focus of d light to be at the same axial location as the F and C focus. This type of correction is usually achieved by using an apochromatic lens, which is corrected such that three wavelengths focus at the same point, or a superachromatic lens, which is corrected such that four wavelengths focus at the same point. Figures 4a – 4d show a comparison in focus shift between the aforementioned types of lens systems.

Figure 4a: Focus Shift Illustration of No Aberration Correction with a Singlet Lens

Figure 4b: Focus Shift Illustration of Primary Longitudinal Chromatic Aberration Correction with an Achromatic Lens

Figure 4c: Focus Shift Illustration of Secondary Longitudinal Chromatic Aberration Correction with an Apochromatic Lens

Figure 4d: Focus Shift Illustration of Secondary Longitudinal Chromatic Aberration Correction with a Superachromatic Lens

 

MONOCHROMATIC ABERRATIONS

By far, monochromatic aberrations outnumber chromatic aberrations. Therefore, they are labeled with wavefront coefficients in addition to names. For example, spherical aberration has a wavefront coefficient of W040. This wavefront coefficient arises from the mathematical summation that gives the actual difference between the perfect and aberrated wavefronts:

In Equation 1, Wklm is the wavefront coefficient, H is the normalized image height, ρ is the location in the pupil, and θ is the angle between the two, which arrives due to the dot product of the two vectors. Once the wavefront coefficient is known, the order number can be determined by adding l and k. However, this will always create an even number. Since optical aberrations are often referred to as first, third, fifth order, etc, if k + l = 2, it is a first order aberration, if k + l = 4, it is a third order, etc. Generally, only first and third order aberrations are necessary for system analysis. Higher order aberrations exist, but are not commonly corrected in optical systems because of the complication this adds to the system. Usually, the complexity of correcting higher order aberrations is not worth the image quality improvement. Common third order monochromatic aberrations and their corresponding coefficients and equations are listed in table 1.

Aberration Name

Wavefront Coefficient

Equation

Tilt

W111

W111Hρcos(θ)

Defocus

W020

W020ρ2

Spherical

W040

W040ρ4

Coma

W131

W131Hρ3cos(θ)

Astigmatism

W222

W222H2ρ2cos2(θ)

Field Curvature

W220

W220H2ρ2

Disortion

W311

W311H3ρcos(θ)

Table 1: Common Third Order Optical Aberrations

 

Optical and imaging systems can contain multiple combinations of optical aberrations. These optical aberrations can be classified into either chromatic or monochromatic. Aberrations will always degrade image quality, and a very large portion of optical design is focused on recognizing and reducing these aberrations. The first step in correcting for aberrations is to understand the different types and how they affect system performance. With this knowledge, one can then design the best system possible. For in-depth information on identifying and correcting for chromatic and monochromatic aberrations, view Comparison of Optical Aberrations.

聯系我們

地址:江蘇省江陰市人民東路1091號1017室 傳真:0510-68836817 Email:sales@rympo.com
24小時在線客服,為您服務!

版權所有 © 2026 江陰韻翔光電技術有限公司 備案號:蘇ICP備16003332號-1 技術支持:化工儀器網 管理登陸 GoogleSitemap

在線咨詢
QQ客服
QQ:17041053
電話咨詢
0510-68836815
關注微信
主站蜘蛛池模板: 国产原创在线 | 免费看国产视频 | 国产破处视频在线播放 | 97超级碰碰| 久久久高清一区二区三区 | 国产99久久精品一区二区永久免费 | av电影在线观看完整版一区二区 | 久久久国产精品亚洲一区 | 五月激情片 | 最近中文字幕完整视频高清1 | 丁香九月激情综合 | 久久精品人人做人人综合老师 | 免费精品 | 亚洲精品男人天堂 | 中文字幕一区在线观看视频 | 久久艹欧美 | 午夜av色| 99超碰在线播放 | 国产伦精品一区二区三区无广告 | 国产伦精品一区二区三区照片91 | 国产精品av免费观看 | 欧美精品久久人人躁人人爽 | av 一区 二区 久久 | 精品一区二区精品 | 国产91在| 在线观看黄网站 | 亚洲精选视频在线 | 三级在线播放视频 | 欧美日本不卡 | 五月婷婷综合色拍 | 久久久免费国产 | 一区二区精品久久 | 日三级在线 | 欧美日韩久久一区 | 黄色一区三区 | 日本在线观看黄色 | 欧美影片 | 亚洲免费小视频 | 人人爽久久涩噜噜噜网站 | 国产99久久久国产精品免费看 | 国产精品入口a级 | 亚洲精品视频在线观看免费视频 | 久久成人亚洲欧美电影 | h视频在线看 | 国产资源在线视频 | 色综合五月天 | 日韩欧美在线视频一区二区 | 日韩精品91偷拍在线观看 | 久久国产欧美日韩 | 波多野结衣在线中文字幕 | 免费久久久久久久 | 欧美另类成人 | 成人av中文字幕 | 又黄又爽又刺激的视频 | 午夜久操 | 日韩av免费一区 | 首页中文字幕 | 乱子伦av| 亚洲精品乱码久久久久久蜜桃欧美 | 99热在线国产精品 | 日韩午夜大片 | 国产黄色电影 | 黄色a在线观看 | 欧美日韩不卡在线 | 热久久免费视频精品 | 奇米影视999| 天天色天天搞 | 四虎5151久久欧美毛片 | 成人午夜精品 | 99视频网址 | 亚洲精品色视频 | 久久久网| 久久成人精品视频 | 久久久久欧美精品 | 97超碰成人在线 | 91超碰在线播放 | 激情xxxx| 91精彩在线视频 | 国产成人精品综合久久久久99 | 日韩免费小视频 | 久久久午夜精品理论片中文字幕 | 日日干天夜夜 | 99国产在线观看 | 在线观看免费av网 | 日韩精品视频在线观看网址 | 亚洲aⅴ免费在线观看 |