LED Luminaires: Many Chips—Many Photometric and Lighting Simulation Issues to Solve
Abstract
:1. Introduction
2. The Need to Change the Traditional Understanding of the Coordinate System for a Luminaire
3. The Dependence of the Photometric Test Distance on the Geometrical Configuration of the LED Matrix
3.1. The Photometric Test Distance
3.2. The Laboratory Experiment
- δPTD—is the relative difference of photometric test distance [%];
- PTDM—is the measured photometric test distance [m];
- PTDC—is the calculated photometric test distance [m].
3.3. The Results of the Experiment and Discussion
LENS TYPE | HPD Datasheet * [°] | Dmin Measured [°] | LINEAR LED LUMINAIRE | SURFACE LED LUMINAIRE | ||
---|---|---|---|---|---|---|
PTD Calculated [m] | PTD Measured [m] | PTD Calculated [m] | PTD Measured [m] | |||
S = 35 mm/L = 140 mm | S = 50 mm/L = 100 mm | |||||
L1 | 8.5° | 4.6° | 1.74 | 1.77 | 1.24 | 1.30 |
L2 | 14° | 8.3° | 0.97 | 1.10 | 0.69 | 0.80 |
L3 | 30° | 11.1° | 0.72 | 0.77 | 0.51 | 0.70 |
L4 | 45° | 30.1° | 0.26 | 0.50 | 0.19 | 0.40 |
L5 | 70° | 47.8° | 0.16 | 0.50 | 0.11 | 0.40 |
WL | 120° | 54.0° | 0.14 | 0.32 | 0.10 | 0.40 |
S = 105 mm/L = 420 mm | S = 105 mm/L = 210 mm | |||||
L1 | 8.5° | 4.6° | 5.21 | >5 ** | 2.60 | 2.52 |
L2 | 14° | 8.3° | 2.91 | 3.10 | 1.45 | 1.52 |
L3 | 30° | 11.1° | 2.16 | 2.40 | 1.08 | 1.12 |
L4 | 45° | 30.1° | 0.78 | 0.90 | 0.39 | 0.50 |
L5 | 70° | 47.8° | 0.47 | 0.67 | 0.24 | 0.40 |
WL | 120° | 54.0° | 0.41 | 0.67 | 0.21 | 0.51 |
S = 210 mm/L = 840 mm | S = 210 mm/L = 420 mm | |||||
L1 | 8.5° | 4.6° | 10.41 | >5 ** | 5.21 | >5 ** |
L2 | 14° | 8.3° | 5.82 | >5 ** | 2.91 | 3.80 |
L3 | 30° | 11.1° | 4.31 | 4.57 | 2.16 | 3.10 |
L4 | 45° | 30.1° | 1.56 | 1.70 | 0.78 | 1.00 |
L5 | 70° | 47.8° | 0.95 | 1.60 | 0.47 | 1.00 |
WL | 120° | 54.0° | 0.82 | 1.20 | 0.41 | 0.90 |
4. The Need for the Photometric Separation of Each Single Diode
- The model of the luminous intensity distribution of the entire lamp usually assumes that the light is emitted from the geometric center point of the luminaire;
- The values of the calculated lighting parameters in the areas of the illuminated object close to the luminaire are different when compared with the reality confirmed by measurements;
- The simulation image of a spotlight is different from its real observed appearance.
- A—a photometric file of the luminaire obtained for far-field photometry with the light emitting from a point;
- B—a photometric file of the luminaire obtained for far-field photometry with the light emitting from a rectangular strip with a length and width corresponding to the dimensions of the luminaire;
- C—a photometric file of the luminaire obtained for near-field photometry with the light emitting from a point;
- D—a photometric file of the luminaire obtained for near-field photometry with the light emitting from a rectangular strip with a length and the width corresponding to the dimensions of the luminaire;
- E—five photometric files of a single diode with the light emitting from a point;
- F—five photometric files of a single diode with the light emitting from a circle with the area corresponding to the output area of the lens of one diode.
- EP—illuminance at point P of the object;
- EP,i—illuminance from the following LED chip;
- n—number of LED chips;
- IP,i,nf—luminous intensity of the i-th diode in the direction of point P according to the near-field model;
- IP,i,ff—luminous intensity of the i-th diode in the direction of point P according to the far-field model;
- rP,i—distance of the i-th diode from point P;
- fa—approximation function of the mid-field region model.
5. Conclusions
- The coordinate system for multi-source luminaires should be definitively determined by their manufacturer. It needs to be marked in the technical documentation and related to the coordinate system for the plane shaping the luminous intensity distribution of a single LED chip.
- The photometric test distance of multi-source LED luminaires should be verified in an experimental way by a photometric laboratory. This helps to define the near-field or far-field photometry and prepare the proper, high-quality input data such as photometric files for different distances.
- The simulations of the effects of a lighting solution with multi-source LED luminaires should be performed with the greatest of care for the realism of the obtained effect. Therefore, the appropriate photometric data for the proper distance need to be used. The manufacturers of lighting equipment should specify the distance for which the measurements of the luminous intensity distributions were taken. They should also provide various photometric files for the designer’s use. Therefore, the lighting designer responsible for a given project should use the appropriate photometric files of the luminaires according to the real distance they will work in.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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TYPE | CASE | Number of .ies Files | Total Luminous Flux [lm] | EMIT LIGHT FORM | Lavg [cd/m2] | Lmax [cd/m2] | Lmax/Lavg [-] |
---|---|---|---|---|---|---|---|
FAR-FIELD | A | 17 | 17 × 195 = 3315 lm | POINT | 12.34 | 34.62 | 2.81 |
B | RECTANGLE | 12.30 | 22.71 | 1.85 | |||
NEAR-FIELD | C | 17 | 17 × 195 = 3315 lm | POINT | 12.49 | 24.14 | 1.93 |
D | RECTANGLE | 12.49 | 22.81 | 1.83 | |||
LED | E | 85 | 85 × 39 = 3315 lm | POINT | 12.29 | 24.32 | 1.98 |
F | CIRCLE | 12.66 | 25.49 | 2.01 |
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Skarżyński, K.; Żagan, W.; Krajewski, K. LED Luminaires: Many Chips—Many Photometric and Lighting Simulation Issues to Solve. Energies 2021, 14, 4646. https://doi.org/10.3390/en14154646
Skarżyński K, Żagan W, Krajewski K. LED Luminaires: Many Chips—Many Photometric and Lighting Simulation Issues to Solve. Energies. 2021; 14(15):4646. https://doi.org/10.3390/en14154646
Chicago/Turabian StyleSkarżyński, Krzysztof, Wojciech Żagan, and Kamil Krajewski. 2021. "LED Luminaires: Many Chips—Many Photometric and Lighting Simulation Issues to Solve" Energies 14, no. 15: 4646. https://doi.org/10.3390/en14154646
APA StyleSkarżyński, K., Żagan, W., & Krajewski, K. (2021). LED Luminaires: Many Chips—Many Photometric and Lighting Simulation Issues to Solve. Energies, 14(15), 4646. https://doi.org/10.3390/en14154646