3535 SMD led diode,UVC LED
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Introduction
In the realm of electronic component advancements, ultra violet LEDs, particularly through the lens of 3535 SMD LED diodes and UVC LED lights, are instrumental in pushing the boundaries of what’s possible. These compact yet powerful sources of light provide a myriad of opportunities for innovations in various industries, ensuring enhanced performance and increased efficiency.
Understanding 3535 SMD LED Diodes
The 3535 SMD (Surface-Mount Device) LED diode is a cornerstone in the electronics sector, known for its compact design and exceptional performance. Here’s why it’s favored:
- Compactness and Power: The 3535 SMD LED is ideal for high-intensity applications where space and power efficiency are paramount.
- High Reliability: These diodes are designed to withstand rigorous operating conditions, making them suitable for both industrial and consumer applications.
- Flexible Applications: From automotive headlights to mobile phones and smart lighting solutions, these LEDs provide versatility without compromising on quality.
Exploring Applications of UVC LED Lights
UVC LEDs produce light in the ultraviolet spectrum and are pivotal in non-visible applications that affect public health and safety:
- Medical Sterilization: UVC LEDs are used in medical sterilization devices to eradicate microbes and viruses efficiently and without chemicals.
- Water Purification Systems: These LEDs are revolutionizing water purification by providing a safe, chemical-free method to cleanse drinking water in both residential and commercial settings.
- Food Safety: In the food industry, UVC LEDs help in extending shelf life and ensuring food safety by neutralizing pathogens on surfaces and packaging.
The Advantages of Ultra Violet LED Technology
The transition to ultra violet LED technology brings forth significant benefits across various sectors:
- Eco-friendly Solution: UV LEDs contain no harmful substances like mercury, making them a safer and more sustainable choice.
- Energy Savings: These LEDs are more energy-efficient than traditional UV lamps, significantly reducing electricity usage.
- Operational Efficiency: With a longer lifespan and lower maintenance requirements, UV LEDs offer greater cost-effectiveness over time.
Case Studies Highlighting the Impact of UV LED Technology
Case Study 1: A leading healthcare provider implemented UVC LED devices across its network of hospitals, achieving a 99% reduction in surface contaminants, thus enhancing patient safety and reducing infection rates.
Case Study 2: An international tech company integrated 3535 SMD LEDs into their new line of smart home devices, which resulted in a 40% increase in product life expectancy and a 30% reduction in energy consumption.
Testimonials from Industry Professionals
Testimonials from key industry players underscore the transformative impact of these technologies:
- “Integrating UVC LED lights into our water purification systems not only increased efficiency but also reduced operational costs,” says a Product Manager at a water treatment facility.
- An R&D Engineer from a leading electronics firm mentioned, “The 3535 SMD LEDs have allowed us to push the boundaries of product miniaturization while improving performance.”
Conclusion
The advancements in 3535 SMD LED diodes and UVC LED lights are setting new standards in the electronics industry, driving innovation, and offering sustainable solutions that benefit both businesses and consumers alike. As these technologies continue to evolve, their integration into diverse applications heralds a bright future for electronics manufacturing.
Call to Action: Stay ahead in the electronics industry. Leverage the latest advancements in 3535 SMD LED diodes and UVC LED technology to enhance your products and operations. Contact us today to explore our solutions!
Features of 3535 SMD UVC LED:
- Compact PLCC6 package: 3.5mm x 3.5mm x 2.8mm.
- Mono-color type with ultra brightness for efficient performance.
- Compatible with automatic placement equipment for easy integration.
- Wide viewing angle for versatile visibility.
- Ideal for backlight and indicator applications.
- Package: 500 pieces per reel.
Possible Applications:
- UVC disinfection systems.
- Sterilization equipment.
- Germicidal lighting.
- Water and air purification systems.
- Medical and laboratory devices.
- Industrial sanitation applications.
- Food and beverage processing.
- Customized UVC projects.
Electrical-optical characteristics:
Article No | color | material | wavelength | apperance | v_typ | v_max | luminous_min | luminous_typ | degree |
---|---|---|---|---|---|---|---|---|---|
BL-LS3535E0G1UVC-30D |
UVC 265-285nm |
265-285nm |
Water Clear |
6.8 |
10 |
15 |
120 |
Package configuration & Internal circuit diagram
Partno description:
More Information
Lens Color:
Code | D | T | C | W | E | |
Meaning | color Diffused | Color Tinted | Water Clear | Water Diffused | Orange diffused |
Absolute maximum ratings (Ta=25°C)
Parameter | SR | LR | UR | UE | UY | UG | PG | BG | B | UB | UV | W | Unit |
Forward Current I F | 25 | 25 | 25 | 30 | 30 | 30 | 30 | 30 | 30 | 30 | 30 | 30 | mA |
Power Dissipation P d | 60 | 60 | 60 | 65 | 65 | 75 | 110 | 110 | 120 | 120 | 120 | 120 | mW |
Reverse Voltage V R | 5 | 5 | 5 | 5 | 5 | 5 | 5 | 5 | 5 | 5 | 5 | 5 | V |
Peak Forward Current I PF (Duty 1/10 @1KHZ) | 150 | 150 | 150 | 150 | 150 | 150 | 150 | 100 | 100 | 100 | 100 | 100 | mA |
Operation Temperature T OPR | -40 to +80 | °C | |||||||||||
Storage Temperature T STG | -40 to +85 | °C | |||||||||||
Lead Soldering Temperature T SOL | Max.260+-5°C for 3 sec Max. (1.6mm from the base of the epoxy bulb) | °C |
Related Information
Applied for:
The LEDs described here are intended to be used for ordinary electronic equipment (such as office equipment,
communication equipment and household applications). Consult Betlux’s Sales in advance for information on
applications in which exceptional reliability is required, particularly when the failure or malfunction of the LEDs
may directly jeopardize life or health (such as in aviation, transportation, traffic control equipment, medical
and life support systems and safety devices).
CAUTIONS for Through-Hole LED Lamps
1. Application
The LEDs described here are intended to be used for ordinary electronic equipment (such as office equipment, communication equipment and household applications). Consult Betlux’s Sales in advance for information on applications in which exceptional reliability is required, particularly when the failure or malfunction of the LEDs may directly jeopardize life or health (such as in aviation, transportation, traffic control equipment, medical and life support systems and safety devices).
2. Storage
The storage ambient for the LEDs should not exceed 30℃ temperature or 70% relative humidity. It is
recommended that LEDs out of their original packaging are used within three months
For extended storage out of their original packaging, it is recommended that the LEDs be stored in a sealed
container with appropriate desiccant or in a desiccator with nitrogen ambient.
3. Cleaning
Use alcohol-based cleaning solvents such as isopropyl alcohol to clean the LED if necessary
4. Lead Forming & Assembly
During lead forming, the leads should be bent at a point at least 3mm from the base of LED lens. Do not use
the base of the leadframe as a fulcrum during forming.
Lead forming must be done before soldering, at normal temperature.
During assembly on PCB, use minimum clinch force possible to avoid excessive mechanical stress.
Soldering
When soldering, leave a minimum of 2mm clearance from the base of the base of the lens to the soldering point. Dipping the lens into the solder must be avoided.
Do not apply any external stress to the lead frame during soldering while the LED is at high temperature.
Recommended soldering conditions:
IR Reflow Soldering (for SMD display) | Wave Soldering | Soldering Iron | |||
Pre-Heat | 150-180°C | Pre-Heat | 100°C Max. | Temperature | 300°C Max. |
Pre-Heat Time | 120sec Max. | Pre-Heat Time | 60sec Max. | ||
Peak Temperature | 260°C Max. | SolderWave | 260°C Max. | Soldering Time | 3sec Max.(one time only) |
Soldering Time | 10 sec Max. | Soldering Time | 5sec Max. |
Note: Excessive soldering temperature and/or time might result in deformation of the LED lens or failure of the LED
ESD(Electrostatic Discharge)
Static Electricity or power surge will damage the LED.
Suggestions to prevent ESD (Electrostatic Discharge):
n Use a conductive wrist band or anti-electrostatic glove when handling these LEDs
n All devices, equipment, and machinery must be properly grounded
n Work tables, storage racks, etc. should be properly grounded
n Use ion blower to neutralize the static charge which might have built up on surface of the LED’s
plastic lens as a result of friction between LEDs during storage and handling
ESD-damaged LEDs will exhibit abnormal characteristics such as high reverse leakage current,
low forward voltage, or “no light on” at low currents. To verify for ESD damage, check for “light on”
and Vf of the suspect LEDs at low currents.
The Vf of “good” LEDs should be>2.0V@0.1mA for InGaN product and >1.4V@0.1mA for AlInGaP
product.
Drive Method
An LED is a current-operated device. In order to ensure intensity uniformity on multiple LEDs connected in
parallel in an application, it is recommended that a current limiting resistor be incorporated in the drive circuit,
in series with each LED as shown in Circuit A below.
When selecting power for LED systems, it’s essential to understand several key parameters to ensure safe operation, longevity, and optimal performance. Here are some steps and considerations for LED power selection:
- Determine the Forward Voltage (Vf) of the LED(s):
Each LED has a forward voltage, which is the voltage at which the LED operates when the current is flowing through it. This value can typically be found in the LED’s datasheet.
- Determine the Forward Current (If) of the LED(s):
The forward current is the current at which the LED is designed to operate. Running an LED at higher than its rated current can reduce its lifespan and increase the heat it produces.
- Decide on the Configuration:
Series Configuration: When LEDs are connected in series, the forward voltages add up, but the current remains the same.
Parallel Configuration: When LEDs are connected in parallel, the forward voltage remains the same, but the currents add up. This configuration can be risky because if one LED fails or has a slightly lower forward voltage, it can cause the other LEDs to draw more current.
Calculate Total Power Requirements:
Power (W) = Total Forward Voltage (V) x Total Forward Current (A)
For example, if you have three LEDs connected in series, each with a forward voltage of 3V and a forward current of 20mA, the total power requirement would be:
Power = (3V + 3V + 3V) x 20mA = 9V x 0.02A = 0.18W
- Select an Appropriate Power Supply:
- Voltage Rating: The power supply voltage should match or slightly exceed the total forward voltage of your LED configuration.
- Current Rating: The power supply’s current rating should meet or exceed the total forward current of your LED configuration.
- Safety Margin: It’s a good practice to select a power supply that can provide at least 20% more power than your calculated requirement. This ensures the power supply isn’t operating at its maximum capacity, which can extend its life and ensure safer operation.
- Consider Additional Features:
- Dimming Capability: If you want to control the brightness of your LEDs, choose a power supply with dimming capabilities.
- Overcurrent and Overvoltage Protection: To protect your LEDs, select a power supply with built-in protection mechanisms.
- Thermal Management: Ensure that the power supply has adequate cooling, especially if it will be enclosed or in a location with limited airflow.
- Regulation and Efficiency:A power supply with good regulation will maintain a consistent voltage output despite variations in the load. High efficiency ensures minimal power is wasted as heat.
- Physical Size and Form Factor:Depending on where you plan to place the power supply, its size and shape may be critical factors.
In summary, when selecting power for LED systems, understanding your LED’s requirements and the configuration you plan to use is essential. Then, pick a power supply that meets those needs with some added safety margin, keeping in mind any additional features or constraints relevant to your project.
Here are some well-regarded brands in the industry:
- Mean Well: One of the most recognized brands in the LED power supply industry, Mean Well offers a wide range of products suitable for both indoor and outdoor applications. Their units often come with features like overcurrent protection, dimming capabilities, and high efficiency.
- Tridonic: A global leader in lighting technology, Tridonic offers LED drivers and power supplies that cater to various lighting solutions, from simple setups to advanced smart lighting systems.
- Philips Advance Xitanium: Philips is a well-known brand in the lighting industry, and their Xitanium series of LED drivers are known for reliability and performance. They cater to both indoor and outdoor LED applications.
- Osram: Another giant in the lighting industry, Osram offers a range of LED drivers and power supplies suitable for various applications, including architectural and street lighting.
- LIFUD: Specializing in LED drivers, LIFUD is known for its high-quality products that cater to both commercial and residential LED lighting solutions.
- MOSO: This brand offers a variety of LED drivers, especially for outdoor and industrial applications. Their products are known for durability and performance.
- TDK-Lambda: With a history in power electronics, TDK-Lambda offers a range of power supplies and LED drivers suitable for various applications, emphasizing reliability and advanced features.