Operation of Electronic Devices for Controlling Led Light Sources When the Environment Temperature Changes
Abstract
:1. Introduction
- (1)
- Drivers that do not compensate for changes in electrical and lighting parameters when the network voltage changes, this also includes simple linear ballast circuits without current stabilization (linear drivers);
- (2)
- Linear drivers with LED current stabilization, where resistors are usually used as current feedback (linear driver circuits). Such drivers are most often built according to the high-voltage compensating scheme current stabilizers, where the compensating one’s were gradually connected with the LEDs element (field effect transistor);
- (3)
- impulse drivers built, for example, with generators with wide pulse modulation (PWM), where the load current is determined by the density output pulses at a constant value of their frequency (IS drivers). They are mainly used in power chains of more powerful lighting devices, for example, in street lights or floodlights. They have a relatively high efficiency (up to 95%).
- definitioning the effect of ambient temperature on the parameters of LED lighting devices built on different types of drivers;
- estimate of the ability of various driver schemes used to power LEDs to stabilize the operating current not only when the supply voltage changes, but also when the ambient temperature changes;
- definitioning the adequacy of the influence of temperature on the parameters of LED devices only according to those characteristics that are given in the technical documentation on one or another type of LEDs (datasheet), based on the obtained experimental temperature characteristics;
- development of constructive proposals for the structure of drivers of LED light sources, which could partially or completely compensate for temperature efficiency radiation intensity of LEDs when the temperature regime of their operation changes.
2. Investigation of Temperature Dependence of Current and Luminous Flux
2.1. Investigation of Temperature Dependence of Current and Luminous Flux of LED Lamps Based on Linear Drivers
2.2. The Investigation of Temperature Dependencies of the Current and Luminous Flux of the LED Lamp Built on IC Driver with Voltage Pulse-Width Modulation of the Voltage on LEDs
2.3. Study of Temperature Dependence of Current and Luminous Flux of LED Spotlight SDO 06-20
2.4. Investigation of the Temperature Dependence of Current and Luminous Flux of LED Spotlight Feron LL6020 LED
3. Results and Discussions
3.1. Validation with Experiment Results
3.2. Advantages and Disadvantages of the Proposed Approach to the Temperature Effect Compensation
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Belyakova, I.; Piscio, V.; Maruschak, P.; Shovkun, O.; Medvid, V.; Markovych, M. Operation of Electronic Devices for Controlling Led Light Sources When the Environment Temperature Changes. Appl. Syst. Innov. 2023, 6, 57. https://doi.org/10.3390/asi6030057
Belyakova I, Piscio V, Maruschak P, Shovkun O, Medvid V, Markovych M. Operation of Electronic Devices for Controlling Led Light Sources When the Environment Temperature Changes. Applied System Innovation. 2023; 6(3):57. https://doi.org/10.3390/asi6030057
Chicago/Turabian StyleBelyakova, Iryna, Vadim Piscio, Pavlo Maruschak, Oleksandr Shovkun, Volodymyr Medvid, and Mariya Markovych. 2023. "Operation of Electronic Devices for Controlling Led Light Sources When the Environment Temperature Changes" Applied System Innovation 6, no. 3: 57. https://doi.org/10.3390/asi6030057
APA StyleBelyakova, I., Piscio, V., Maruschak, P., Shovkun, O., Medvid, V., & Markovych, M. (2023). Operation of Electronic Devices for Controlling Led Light Sources When the Environment Temperature Changes. Applied System Innovation, 6(3), 57. https://doi.org/10.3390/asi6030057