Metrics of non-visual effects of light

被引:0
|
作者
Nazarenko, L. [1 ]
Felonenko, D. [1 ]
Liashenko, O. [1 ]
机构
[1] OM Beketov Natl Univ Urban Econ Kharkiv, Chornoglazivska Str 17, UA-61002 Kharkiv, Ukraine
来源
UKRAINIAN METROLOGICAL JOURNAL | 2024年 / 04期
关键词
melanopsin; white LEDs; melanopic illumination;
D O I
10.24027/2306-7039.4.2024.319171
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The discovery of a new photoreceptor ipRGC (melanopsin) and the associated non-visual impact of the lighting environment on human well-being and health has led to a significant amount of research in the field of the connection between the parameters of light sources and human biological activity. The results of studying the non-visual effect of light are successfully applied in circadian lighting, which is based on changing the correlated colour temperature (CCT) of light sources of indoor lighting system during the day in accordance with the natural change of this parameter, and contribute to maintaining the biological processes of vigilance and preparation for sleep. However, the study of the light sources parameters for indoor lighting that can affect human well-being is not limited only to their CCT. After more detailed study of the radiation spectrum influence on the concentration and dynamics of melanopsin, the International Commission on Illumination (CIE) has proposed an algorithm for determining the melanopic irradiance and melanopic illuminance precisely by the spectral distribution of irradiation sources. To quantify the ratio of the non-visual impact of the lighting environment parameters on human well-being, the ratio of the melanopic flux M to the photopic luminous flux P for a test light source, which is a dimensionless quantity, can be used as a new ratio M/P. By definition, this ratio is normalized to 1 for the reference daylight illuminant D65. This ratio can be applied for creating a new lighting metric that can characterize LED light sources in terms of its potential for non-visual impact depending on its spectral characteristics. Moreover, new metrics of non-visual light impact will be helpful for the implementation of integrative lighting principles declared by the CIE as balance between human well-being, health, and functioning lighting for achieving the energy savings and reducing the impact on environment by applying LED systems with the considered characteristics.
引用
收藏
页码:36 / 42
页数:7
相关论文
共 50 条
  • [21] Correspondence: Designing and specifying light for melatonin suppression, non-visual responses and integrative lighting solutions - establishing a proper bright day, dim night metrology
    Schlangen, L. J. M.
    Belgers, S.
    Cuijpers, R. H.
    Zandi, B.
    Heynderickx, I
    LIGHTING RESEARCH & TECHNOLOGY, 2022, 54 (08) : 761 - 777
  • [22] The non-visual opsins: eighteen in the ancestor of vertebrates, astonishing increase in ray-finned fish, and loss in amniotes
    Beaudry, Felix Emile Gastonguay
    Iwanicki, Tom W.
    Zelada Mariluz, Bertha Ruth
    Darnet, Sylvain
    Brinkmann, Henner
    Schneider, Patricia
    Taylor, John Stewart
    JOURNAL OF EXPERIMENTAL ZOOLOGY PART B-MOLECULAR AND DEVELOPMENTAL EVOLUTION, 2017, 328 (07) : 685 - 696
  • [23] Expression of Non-visual Opsins Opn3 and Opn5 in the Developing Inner Retinal Cells of Birds. Light-Responses in Muller Glial Cells
    Rios, Maximiliano N.
    Marchese, Natalia A.
    Guido, Mario E.
    FRONTIERS IN CELLULAR NEUROSCIENCE, 2019, 13
  • [24] Functional inhibition of deep brain non-visual opsins facilitates acute long day induction of reproductive recrudescence in male Japanese quail
    Perez, Jonathan H.
    Tolla, Elisabetta
    Bishop, Valerie R.
    Foster, Russell G.
    Peirson, Stuart N.
    Dunn, Ian C.
    Meddle, Simone L.
    Stevenson, Tyler J.
    HORMONES AND BEHAVIOR, 2023, 148
  • [25] A visual circuit related to the periaqueductal gray area for the antinociceptive effects of bright light treatment
    Hu, Zhengfan
    Mu, Yima
    Huang, Lu
    Hu, Yuqing
    Chen, Zhiqing
    Yang, Yan
    Huang, Xiaodan
    Fu, Yunwei
    Xi, Yue
    Lin, Song
    Tao, Qian
    Xu, Fuqiang
    So, Kwok-Fai
    Ren, Chaoran
    NEURON, 2022, 110 (10) : 1712 - +
  • [26] Editorial: Translation and Processing of Light by the Non-image Forming Visual System-Context, Mechanisms and Applications
    Rahman, Shadab A.
    Fernandez, Fabian-Xose
    Spitschan, Manuel
    FRONTIERS IN NEUROLOGY, 2021, 12
  • [27] Divergent photic thresholds in the non-image-forming visual system: entrainment, masking and pupillary light reflex
    Butler, Matthew P.
    Silver, Rae
    PROCEEDINGS OF THE ROYAL SOCIETY B-BIOLOGICAL SCIENCES, 2011, 278 (1706) : 745 - 750
  • [28] New prospectives on light adaptation of visual system research with the emerging knowledge on non-image-forming effect
    Wang, Shuxiao
    Zhao, Jianping
    FRONTIERS IN BUILT ENVIRONMENT, 2022, 8
  • [29] Seeing the light: a photonic visual prosthesis for the blind
    Degenaar, Patrick
    Grossman, Nir
    McGovern, Brian
    Neil, Mark
    Drakakis, Emmanuel
    Nikolic, Konstantin
    PHOTONS AND NEURONS, 2009, 7180
  • [30] Non-circadian direct effects of light on sleep and alertness: Lessons from transgenic mouse models
    Hubbard, Jeffrey
    Ruppert, Elisabeth
    Gropp, Claire-Marie
    Bourgin, Patrice
    SLEEP MEDICINE REVIEWS, 2013, 17 (06) : 445 - 452