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Configuration composition and function introduction of solar street lamp lighting system

À´Ô´£ºSmart rod net ʱ¼ä£º2023-08-25 10:28:59

Solar street lights are photovoltaic (PV) lighting systems that run off power collected from the conversion of solar energy. These roadway or area lighting systems are generally designed for off-grid applications where grid connected lighting is unavailable, costly or difficult to install. As solid state lighting based on LED technology pushes the boundaries of energy efficiency and life expectancy, there¡¯s a growing trend towards the adoption of solar street lights in applications which were previously the realm of grid-dependent systems. The marriage between LED lighting and photovoltaics not only enabled significantly improved lighting performance but also offers the possibility of new lighting form factors.

In the era of solid state lighting, solar street lights come in two forms of system configuration: the split type and integrated type. A split-type solar street light takes a conventional design, whereas an integrated solar street light is self-contained system that incorporates the photovoltaic module, light engine, battery bank, charge controller, and lighting control components into one compact package.

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While the all-in-one design of integrated solar street lights simplifies installation by eliminating the need for external wiring between the sub-systems as well as lends the light fixtures an architectural appeal, it creates limitations in the size of the photovoltaic array and the storage capacity of the rechargeable batteries. The constraint to the light-receiving surface area of the solar panel, in particular, restricts energy generation of the PV system. As a result, the use of integrated solar street lights is limited to human scale illumination such as walkway, bikeway, local street and residential area lighting.

In order to serve roadway lighting applications that carry a large portion of vehicular traffic or large area lighting applications such as commercial parking lot lighting, the solar lighting system must be capable of producing a substantial amount of lumens at a mount height that allows for a sensible photometric performance. In areas where there are less hours of sun available for energy conversion, a high capacity photovoltaic system is often employed to maximize energy harvesting. The photovoltaic array therefore must be adequately large so as to put a sufficient amount of energy into the batteries, and the all-in-one design becomes meaningless in this case.

1¡¢System configuration

A split-type solar LED street light is such designed that its performance is maximized to meet the requirements of demanding use. The need for this type of products is driven by their increasing deployment in roadway systems and remote areas that are beyond the affordable reach of utility power service and necessitate the use of solar lighting systems with lumen packages and reliability comparable to their grid-dependent counterparts. As the name suggests, a split-type solar street light has a discrete architecture in which the photovoltaic module and luminaire are supported by independent structures.

A typical split-type solar street light has a post top photovoltaic module and arm mounted luminaire. The battery system, depending on the type of its battery chemistry, is either integrated into the luminaire assembly/photovoltaic module or designed as an individual assembly for underground burial, on-pole attachment or base mount. The luminaire is generally mounted on a cantilevered arm designed for maximum efficiency in transverse (across-road) light distributions. It can also be mounted on an architectural or decorative arm such as the crook arm, ribbon arm, straight arm, swept arm, upsweep arm, or uplift adjustable arm.

2¡¢Building blocks

The key functional components of a solar street lighting system include the photovoltaic module, battery system, solar charge controller, and the LED luminaire. The first three components constitute the solar power system. Consistent, reliable operation of the LED luminaire calls for a powerful solar power system.

Split-type solar LED street lights can be designed with the solar panel and battery capacities scaled to operate LED luminaires with a system wattage of up to 100 watts. Off-grid solar power systems must act to smooth out any fluctuations in solar generation and provide continuous release of energy to the load in times of rainy or heavily clouded days. The battery capacity is usually 3 to 6 times of the LED load and ranges from 60Ah to 200Ah. The presence of different types of solar panels, controllers, and batteries causes solar power systems to come in various configurations. The choice of system configuration is dictated by the photovoltaic resource of the geographic location, energy use of the lighting system, maintenance frequency, fixture design, budget, etc.

3¡¢The photovoltaic module

A photovoltaic module or solar panel is constructed from an array of interconnected solar cells. A solar cell consists of two silicon layers doped with electron donor and acceptor materials, respectively. Solar radiation impinging on the surface of, and entering into, the substrate of a solar cell leads to the generation of negatively charged electrons and positively charged holes. The electron and hole pairs migrate to the p-n junction and create a voltage differential between the doped layers.

Solar cells are primarily made of crystalline silicon (monocrystalline and polycrystalline) and are connected in series and/or in parallel to attain a desired current. A monocrystalline solar cell is fabricated with its silicon wafer cut from a single crystal or ¡®boule¡¯ of silicon. A polycrystalline solar cell is cut from an ingot of melted and recrystallized silicon. Solar cells can also be manufactured by vapor-depositing a thin film of amorphous (non-crystalline) silicon onto a wide choice of surfaces. Monocrystalline solar cells, because of their cell structure and the lack of imperfections, have the highest efficiency of energy conversion. Polycrystalline cells are slightly less efficient than monocrystalline cells but they are cheaper to produce and have a better temperature de-rating co-efficient. Thin film solar cells are the least efficient of the three types, but they¡¯re the least expensive to produce and perform as well as polycrystalline cells under higher temperatures (e.g. 25¡ãC +).

4¡¢Energy storage

The greatest challenge faced in developing solar street lights is energy storage. The energy output from the photovoltaic module is stored in a rechargeable battery or battery bank depending upon the requirements of the system. The capacity and cycle life of the battery is very important as they affect the backup power days and maintenance costs of the street lights.

Though various types of rechargeable batteries exist, the most commonly used battery in the split-type solar street lights is the deep-cycle lead-acid battery. The cost advantage is what this battery chemistry differentiates itself from the competing chemistries. There are two main families of lead-acid batteries: flooded and sealed. Flooded lead-acid batteries immerse electrode plates in a liquid electrolyte, which lends them the ability to operate efficiently even at low temperatures. However, these batteries require regular addition of water in order to replenish the electrolyte lost as gas through the battery¡¯s vents during charging. Sealed lead-acid batteries are also called valve-regulated lead-acid (VRLA) batteries. They work on the recombination principle to prevent the escape of hydrogen and oxygen gases normally lost in the flooded counterpart.

The family of sealed batteries include gel batteries and absorption lass mat (AGM) batteries. Sealed lead-acid batteries are maintenance-free and have a higher energy density, low self-discharge rate and longer cyclic life than flooded lead-acid batteries. However, these batteries do not tolerate overcharging and require controlled charging.

Lithium batteries are finding their way into solar street lighting and have become the dominant choice of battery chemistry for use in all-in-one solar street lights. Their increasing popularity is due to their extremely high specific energy and power density as well as their excellent performance in terms of charge efficiency, charge retention, cycle life, and depth of discharge (DOD). Li-ion batteries are dual intercalation systems that use cathodes and anodes with structures capable of reversibly inserting and extracting lithium cations. Li-ion batteries designed for off-grid applications typically use lithium iron phosphate (LiFePO4) for the cathode positive electrode. The use of Li-ion batteries significantly reduces system size and product complexity of solar street lighting systems. However, battery management systems must be used with Li-ion batteries to protect the electrochemical cells from electrical abuse and provide adequate cycle lifetimes.

5¡¢Solar charge controller

A solar charge controller is placed between the photovoltaic module and battery to monitor and control the power going into and coming out of the battery. It regulates the voltage and current coming from the solar panel and conditions them to ensure the battery is not overcharged. Most charge controllers have load control capability which prevents the connected loads from over-discharging the battery.

Charge controllers are basically DC-DC converters, where pulse width modulation (PWM) and maximum power point tracking (MPPT) technique are used to regulate the switches of the controller. The PWM charge controller uses a metal oxide semiconductor field effect transistor (MOSFET) as the power switch and regulates the output voltage by adjusting the duty cycle of the pulsed signal. The MPPT controller has control circuitry that seeks to find a module voltage at which the solar produces maximum power and uses a switching circuit to convert an input power at a module voltage to an output power for the battery at a load voltage. It tracks the maximum power point produced by a solar panel at all times in order to maximize energy production of the solar panel.

It is generally accepted that MPPT will outperform PWM at low temperatures and produce 10% to 40% more power with the same photovoltaic module than a PWM controller. The benefit of using MPPT controllers is most prominent in high power applications (150W and greater). Unlike the PWM control that requires the input nominal voltage to match battery¡¯s nominal voltage, MPPT control allows the battery to be charged by a photovoltaic module with a substantially higher nominal voltage.

Disadvantages aside, PWM controllers are not without their merits. They perform well in warm temperatures (between 45¡ãC and 75¡ãC) and is a good low cost solution for low power (specifically low current) charging applications. PWM controllers have the ability to recover lost battery capacity, increase the charge acceptance of the battery, reduce battery heating and gassing, and deter the formation of sulfate deposits.

6¡¢Load control and connected lighting

The charge controller is at the heart of every solar LED street light. In addition to protecting the battery from overcharge, overdischarge, overload and short circuit conditions, it works with the LED driver or incorporates driver circuitry to provide tight, efficient regulation and control on the current output provided to the LED load. The digital nature of LED technology enables many intelligent lighting features that allow for a more efficient utilization of electricity. Microprocessor controlled algorithms can be programmed to provide automatic dimming based on battery voltage and state of charge, thereby improving battery autonomy and enhancing battery lifespan. Adaptive controls such as motion detection and dusk-to-dawn sensing can be installed so that the LED driver will be able to communicate with its environment and automatically adjust light levels based on occupancy patterns and available daylight. Adding wireless connectivity to solar street lights allows both dynamic control of lights and networking of multiple lighting installations. Through the wireless communication network, the connected installations of solar street lights can easily be monitored, configured and controlled.

7¡¢LED luminaire

A split-type solar LED street light has a self-contained LED assembly (luminaire). The use of a dedicated lighting system allows implementation of high performance thermal and optical systems. A robust thermal path can be constructed to provide adequate conductive and convective transfer of heat generated by the LED when power is applied to the LED junction to produce light. The cooler the semiconductor junction of an LED remains during operation, the better the lumen maintenance and the longer the life of the LED. Effective thermal management makes it possible to use reflective PLCC LED packages which deliver the highest efficacy among all types of LED packages but are prone to accelerated degradation under high thermal and electrical stresses.

Although the robustness of high power LEDs makes them the first choice of light source for outdoor lighting applications, the high luminous efficacy of plastic LED packages makes sound sense in efficient utilization of the captured solar energy and reducing battery DOD for longer autonomy periods and cyclic life. The luminous efficacy of mid-power LEDs has exceeded 200 lm/W and continues to improve toward the practical limit of 255 lm/W for phosphor-converted LED architectures. Beyond improved source efficiency, solar LED street lights typically use precision-molded compound lenses to improve optical delivery efficiency while providing superior photometric distributions tailored specifically to area or street lighting applications.


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2025.02.21
The Future of Smart Light Poles: Illuminating Tomorrow¡¯s Cities

The Future of Smart Light Poles: Illuminating Tomorrow¡¯s Cities

Imagine walking down a street where the humble streetlight is no longer just a source of light but an intelligent, multi-functional node that enhances safety, delivers information, and contributes to a sustainable city. That¡¯s the promise of smart light poles, and they¡¯re more than just a cool upgrade to urban infrastructure¡ªthey¡¯re the backbone of future smart cities.From improving traffic flow to providing public Wi-Fi, smart light poles represent the kind of innovation that blends cutting-edge technology with practical, everyday needs. Let¡¯s explore how these futuristic light poles will transform urban living in ways that are as exciting as they are impactful.1. A New Role in Urban SafetyTraditional streetlights have always been crucial for safety, but smart light poles will take it a step further. Equipped with cameras, motion sensors, and audio detection capabilities, they¡¯ll become active participants in keeping cities safe.For example, these poles could detect unusual activities like car accidents, loud arguments, or even a person crying for help. They could immediately notify emergency services, providing real-time video footage and location data to responders. Some smart poles could even act as emergency communication hubs, allowing individuals to call for help directly through built-in intercom systems.Beyond emergencies, they can deter crime by adapting their lighting based on activity. Imagine a dimly lit alley that brightens automatically when someone walks through it, creating a safer environment for pedestrians.2. Streamlining Urban TrafficTraffic congestion is a universal headache, but smart light poles could help alleviate this. By integrating sensors, cameras, and communication tools, these poles will monitor real-time traffic conditions and provide data to traffic management systems.Smart light poles can adjust traffic lights based on congestion levels or reroute vehicles during accidents to prevent bottlenecks. They can also relay this information to navigation apps, ensuring drivers get real-time updates on the fastest routes.Even more exciting is their role in autonomous vehicle networks. Smart poles will communicate with self-driving cars, ensuring smooth navigation through busy intersections or alerting vehicles to hazards like pedestrians crossing unexpectedly.3. Public Wi-Fi and ConnectivityIn the age of connectivity, smart light poles could double as public Wi-Fi hotspots. By leveraging 5G technology, these poles will provide high-speed internet access in parks, busy streets, or underserved areas.For cities aiming to close the digital divide, this could be a game-changer. Students, tourists, and residents alike could benefit from always-on connectivity, whether they¡¯re streaming, working remotely, or simply looking up directions.4. Supporting Sustainability GoalsClimate change is driving cities to adopt more sustainable practices, and smart light poles are a natural ally in this effort. Many of these poles will feature energy-efficient LED lights that adjust based on environmental conditions¡ªdim during a full moon, for example, or brighten during heavy fog.Some poles will incorporate renewable energy sources like solar panels or wind turbines, enabling them to power themselves or feed surplus energy back into the grid. In remote areas, self-sufficient smart poles could offer lighting and connectivity without the need for costly infrastructure.By reducing energy consumption and emissions, smart light poles align perfectly with global sustainability goals.5. Personalized Commercial OpportunitiesImagine walking past a smart light pole in a bustling shopping district, and the pole displays a personalized advertisement for a nearby store or restaurant. This could soon be a reality, as smart poles incorporate digital screens and AI-driven advertising algorithms.By analyzing pedestrian data (anonymously, of course), businesses can deliver highly targeted promotions to people passing by. A coffee shop might advertise a discount to a morning commuter, or a clothing store could showcase its latest collection to shoppers during peak hours.This level of personalization creates a win-win situation: businesses increase sales, and consumers receive relevant, timely offers.6. Revolutionizing Emergency Response SystemsNatural disasters and emergencies demand quick action, and smart light poles could play a critical role in coordination and response. For example, during a flood, poles equipped with water-level sensors could monitor rising waters and alert authorities before the situation worsens.Smart poles can also broadcast emergency alerts via built-in speakers or LED screens, providing clear instructions to evacuate or seek shelter. Additionally, they could act as charging stations for mobile devices, ensuring people stay connected when power grids are down.In earthquake-prone areas, poles equipped with seismic sensors could detect tremors and instantly warn residents, buying precious seconds to move to safety.7. Enhancing Pedestrian and Cyclist ExperienceSmart light poles won¡¯t just cater to drivers¡ªthey¡¯ll also significantly improve the experience for pedestrians and cyclists.For instance, these poles could include navigation aids for cyclists, such as LED displays showing bike routes or real-time traffic updates. Pedestrians might benefit from poles equipped with interactive touchscreens providing maps, local event information, or transit schedules.Imagine walking through a city and having access to a multilingual guide right on a pole, helping tourists explore without the need for smartphones.8. Cultural and Aesthetic ContributionsSmart light poles can also contribute to a city¡¯s cultural and aesthetic appeal. Through customizable lighting and digital displays, these poles can enhance the ambiance of public spaces.For example, during holidays or festivals, poles can change their lighting to match the mood¡ªred and green for Christmas, or vibrant colors during a local celebration. They can also display cultural information, such as art, poetry, or historical facts about the area.By combining function with art, smart poles will transform cityscapes into more engaging and beautiful environments.9. Boosting Public Health InitiativesHealth monitoring might not be the first thing that comes to mind when you think of smart light poles, but they could play a significant role in this area. Poles equipped with air quality sensors can monitor pollution levels and share this data with city authorities and residents in real time.Imagine receiving an alert from a nearby pole advising you to avoid outdoor exercise due to high pollution levels¡ªor directing you to a less polluted route for your morning jog.During pandemics, smart poles could even serve as temperature scanning checkpoints, helping to identify areas with potential outbreaks.10. Future-Proof Communication InfrastructureThe rollout of 5G networks is just the beginning. As communication technologies continue to evolve, smart light poles will serve as scalable infrastructure for future innovations.Their modular designs will allow for easy upgrades, whether it¡¯s for deploying 6G networks or supporting entirely new types of wireless communication. By acting as a flexible foundation, smart poles will ensure cities remain technologically competitive for decades to come.The Road AheadThe beauty of smart light poles lies in their versatility. They aren¡¯t just about lighting streets¡ªthey¡¯re about creating safer, smarter, and more sustainable communities. As cities around the world invest in these technologies, we¡¯ll see a future where urban infrastructure does more than serve¡ªit interacts, adapts, and supports.But like all innovations, challenges remain. Privacy concerns, cost barriers, and integration hurdles must be addressed. However, with proper regulations and collaboration between governments, tech companies, and citizens, these obstacles are surmountable.Smart light poles represent the kind of innovation that gets us excited about the future. They¡¯re proof that even the simplest parts of our cities can be reimagined to create a better world.So, the next time you see a streetlight, take a moment to think: What could it be doing for you tomorrow?
2025.01.08
The innovative integration of smart light poles + drone inspections is used in low-altitude economy

The innovative integration of smart light poles + drone inspections is used in low-altitude economy

With the continuous advancement of smart cities and the rapid development of low-altitude economy, the innovative integration of smart light poles and drones has become a field that has attracted much attention. Low-altitude economy refers to a variety of economic activities carried out using low-altitude airspace. As one of the new digital, informatized and intelligent infrastructures, smart light poles, combined with drone technology, not only provide important information collection and transmission nodes for the low-altitude economy, injecting new vitality, but also further improve urban management. efficiency and open up more commercial applications.1. The innovative integration of smart light poles + drones. Smart light poles serve as lifting ¡°airports¡± for drones.Smart light poles can integrate drone take-off and landing platforms to provide a safe take-off and landing environment for drones. More importantly, smart light poles as infrastructure are widely distributed in cities. This advantage greatly reduces the cost of new drone sites and improves resource utilization. At the same time, by adding charging facilities to smart light poles, drones can be charged anytime and anywhere, further improving work efficiency.2. Data collection and transmissionUAV smart light poles can monitor and transmit a variety of information such as urban environmental data, traffic data, and people flow data in real time by integrating various sensors and communication equipment. These data provide necessary data support for drones, allowing them to perform various tasks more accurately. At the same time, various sensors carried by drones can also monitor the urban environment in real time, providing richer and more comprehensive data support for smart light poles. In addition, through the information release screen of smart light poles, drones can achieve more convenient urban management data interaction.3. Application scenario expansionThe integration and innovation of smart light poles and drones can meet the needs of different scenarios. In the field of public security, they can be used to assist police patrols, search for missing persons, etc.; in the field of agricultural environment, they can be used for pesticide spraying, crop monitoring, etc., to improve the level of agricultural refinement and production efficiency; in the construction of smart cities, they can be used To enhance the image of the city and make urban management more efficient and intelligent. Application cases of smart light pole + drone4. The application of smart light poles + drones is an innovative practice that combines advanced technology and intelligent applications. The following are some implementation cases:China's first "smart street light + drone inspection" road, Yueqing Electric City Avenue in Wenzhou, Zhejiang In July 2021, Yueqing Electric City Avenue in Wenzhou, Zhejiang became China's first road equipped with drone inspection during the construction of a smart street light project Officially opened to traffic, a small airport with drones installed on the center pole lights on Electric City Avenue serves as the take-off and landing platform for the drone automatic inspection system. By presetting the trajectory of the drone, the drone can undertake a large part of the inspection tasks in the later operation and maintenance work, mainly including scheduled inspections and emergency inspections.5. "Smart light pole + drone + Beidou", Beidou smart integrated light pole application in Quzhou, Zhejiang, ChinaIn April 2023, in Zhangshu Bay, Yancun, Yanjiang Highway (Kecheng Section), Quzhou City, Zhejiang, China, every morning and evening rush hour comes, the small iron box on the top of the Beidou Smart Integrated Light Pole automatically opens, and the drone inside takes up work. , inspect the surrounding roads once each, covering a radius of 7 kilometers along the way within 1 hour of working time. During drone inspection operations, if there is a serious congestion, the drone will hover close to observe, synchronize with the Beidou big data platform at the rear, and use the megaphone on board to cooperate with traffic control personnel to divert traffic."Smart light pole + drone application system" Shaanxi Xixian New District Energy Jinmao District Shaanxi Data collected by high-definition dome cameras installed on smart light poles built next to the platform. The standing smart light poles and equipped high-definition dome cameras penetrate into every corner of the highway, streets, parks and other areas under the jurisdiction. In the fields of municipal administration, transportation, security, environmental protection and other fields, they can provide public facility monitoring, real-time information release, smart security, and convenience for the people. Charging, emergency calling, weather and air monitoring and other functions.In summary, the integration of smart light poles and drones has shown great potential in urban management. This integration also provides more possibilities for public services. At the same time, the integration of smart light poles and drones also Promoted the development of related industrial chains. The innovative integration of smart light poles and drones in the low-altitude economy represents an important technological progress in the construction of smart cities, bringing unprecedented convenience and efficiency to urban management, public services and multiple industries. With the continuous advancement of technology and the continuous expansion of applications, this integration method will show broader prospects and greater potential. The low-altitude economy has emerged. Let us join hands to witness how the intelligent light of smart light poles and drones complement each other in this grand blueprint, and jointly create a brilliant future.
2024.05.30
Solar lawn lamp market demand analysis

Solar lawn lamp market demand analysis

Solar lawn lamp is a kind of green energy lamps, with safety, energy saving, environmental protection, easy to install and so on. Solar lawn lamp is mainly composed of light source, controller, battery, solar cell module and lamp body and other components. Under the light irradiation, the energy is stored in the battery through the solar cell, and in the absence of light, the battery energy is sent into the load LED through the controller, which is suitable for green grass beautification lighting.(1) The scale of foreign market demandIn developed countries such as the United States, Japan and the European Union, the demand for solar lawn lights has shown a rapid growth trend in recent years. Solar lawn lamp style is simple, there is no long cable, there is a battery inside, during the day to absorb daylight reserve, whenever the dusk light will be lit, emit soft light, generally can last 8h.Europe is very green, high lawn coverage. Some cities and villages in Europe are full of lawns, and many urban parks take lawns as the protagonist, becoming the best place for people to relax and entertain. In addition, the villa building lawn area is also very large. Today, with the rapid development of the solar photovoltaic industry, the utilization rate of solar lawn lights in Europe ranks among the top in the world, and solar lawn lights have become a part of the green landscape in Europe.More than 90% of solar lawn lights sold in the United States use nickel-cadmium batteries as energy storage batteries. Solar lawn lights can only use nickel-cadmium batteries with a capacity between 600 and 900m Ah. Due to the nickel-cadmium battery (1.2V) has a memory effect, which will lead to a significant reduction in the capacity of the battery without full discharge, and nickel-cadmium batteries contain toxic substances, the United States gradually began to ban nickel-cadmium batteries, which will make the United States solar lawn lamp market demand structure has changed, and the replacement demand has increased the market demand for solar lawn lamps.In Japan and South Korea, urban street planning and design, improvement projects and long-term management reflect the people-oriented design concept, quality awareness of excellence, exquisite and harmonious street landscape, functional service facilities, highly civilized public quality, in the road greening, park greening and other lawns have been widely used solar lawn lights.The annual import of solar lawn lights from China has exceeded 100 million, and this market will continue to maintain a rapid growth trend in the next few years.(2) The scale of domestic market demandSolar lawn lights are mainly used in urban lawns, including green Spaces such as squares, parks, communities, and roads. The acceleration of urbanization and the improvement of urban green space have stimulated the development of lawn production and scientific research. There are already thousands of enterprises engaged in lawn supply across the country, of which there are dozens of backbone enterprises of about 1,000 acres. The annual output of domestic lawn has exceeded 200 million square meters.(3) The growth of demand for solar lawn lamp productsChina's solar energy industry is developing rapidly, and the potential demand for solar energy products in the domestic market is also huge. In recent years, solar lawn lights are widely used at home and abroad because of their energy-saving, environmental protection, convenient installation and other characteristics, although the application of our products has not been fully popularized, but its demand potential is huge. With the further increase of urban green area, the domestic market will further increase the supply demand for solar lawn lights.
2023.10.10
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