DS326 BRIDGELUX | Alldatasheet

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BXRC-27S|30S|35S|40S|50S|57S|65S Bridgelux Gen 7 Vero13 Thrive™ Array Product Data Sheet DS326

Bridgelux Thrive™ combines unique chip, phosphor and packaging technology to closely match the spectra of natural light over the visible wavelength range. Thrive can be used in constant color point luminaires to bring full spectrum natural light indoors or in tunable white luminaires to incorporate circadian elements that may impact human well-being. The high fidelity spectral output of Thrive creates stunning environments with excellent color rendering and outstanding TM30 metrics. Thrive is available in both SMD components and LED arrays to enable a broad range of lighting applications including retail, hospitality, office, education, architectural, museums, healthcare and residential lighting.

Features

  • Engineered spectrum to closely match natural light
  • CRI >95, R1-R15 >90, high Rf and Rg values
  • High efficacy full spectrum solution
  • No violet chip augmentation
  • Hot color targeted
  • Form factor consistent with existing Bridgelux COB arrays
  • Broad product platform availability (SMDs and COBs) Benefits
  • Full consistent spectrum with fewer spectral spikes
  • Natural and vivid color rendering
  • Greater energy savings, lower utility costs
  • Economical, high efficiency solution
  • Uniform and consistent white light at application conditions
  • Ease of design and rapid go-to-market
  • Enables greater design flexibility and platform color consistency Vero® Thrive

The part number designation for Bridgelux COB arrays is explained as follows: BXRC – 30 S 2001 – C – 7 3 1 2 3 4 – 5 6 7 8 9 10 11 – 12 – 13 14 Product Family CCT Bin Options 2 = 2 SDCM 3 = 3 SDCM 4 = 4 SDCM Flux Indicator 2001 = 2000 lm Minimum CRI S = Thrive Array Configuration Nominal CCT 27 = 2,700K 30 = 3,000K 35 = 3,500K 40 = 4,000K 50 = 5,000K 57 = 5,700K 65 = 6,500K Gen 7 2D Bar code provides full manufacturing traceability Polarity indication marks simplify manufacturing operator instructions Optics location/mounting features Mounting holes Zhaga Book 3 compatible mounting locations Solderless connector port enables simplified manufacturing processes, reduced inventory carrying costs and can enable field upgradability Optional Molex Pico-EZmate™ connector harness (sold separately) Thermally isolated solder pads reduce manufacturing cycle time and complexity Tc Measurement point Correlates to the true case temperature on the back surface of the LED array Radial die configuration improves lumen density and beam control Top side part number marking improves inventory management and outgoing quality control Vero 13 is the second smallest form factor in the Vero family of the next generation solid state light sources. In addition to delivering the performance and light quality required for many lighting applications, Vero incorporates several features to simplify the design integration and manufacturing process, accelerate time to market and reduce system costs. Please visit www.bridgelux.com for more information on the Vero Series family of products.

The following product configurations are available: Table 1: Selection Guide, Pulsed Measurement Data (Tc= 25°C) Part Number1,6 Nominal CCT1 (K) CRI2 Nominal Drive Current3 (mA) Typical Vf (V) Typical Pulsed Flux4,5,6,7 Tc = 25ºC (lm) Minimum Pulsed Flux6,7,8 Tc = 25ºC (lm) Typical Power (W) Typical Efficacy (lm/W) Typical Photosynthetic Photon Flux (PPF) Typical Photon Efficiency (µmol/J) BXRC-27S2001-C-73 2700 95 630 34.4 2330 2002 21.7 108 40.66 2.06 BXRC-30S2001-C-73 3000 95 630 34.4 2520 2136 21.7 116 43.05 2.16 BXRC-35S2001-C-73 3500 95 630 34.4 2612 2299 21.7 121 43.23 2.15 BXRC-40S2001-C-73 4000 95 630 34.4 2661 2342 21.7 123 43.31 2.14 BXRC-50S2001-C-74 5000 95 630 34.4 2774 2441 21.7 128 45.47 2.22 BXRC-57S2001-C-74 5700 95 630 34.4 2810 2473 21.7 130 46.20 2.24 BXRC-65S2001-C-74 6500 95 630 34.4 2782 2448 21.7 128 45.74 2.22 Table 2: Selection Guide, Stabilized DC Test Performance (Tc= 85°C)4,5,6 Part Number1,6 Nominal CCT1 (K) CRI2 Nominal Drive Current3 (mA) Typical Vf (V) Typical DC Flux4,5,6,7 Tc = 85ºC (lm) Minimum DC Flux6,7,8,9 Tc = 85ºC (lm) Typical Power (W) Typical Efficacy (lm/W) Typical Photosynthetic Photon Flux (PPF) Typical Photon Efficiency (µmol/J) BXRC-27S2001-C-73 2700 95 630 33.7 2120 1801 21.2 100 36.99 1.91 BXRC-30S2001-C-73 3000 95 630 33.7 2293 1922 21.2 108 39.18 2.01 BXRC-35S2001-C-73 3500 95 630 33.7 2377 2092 21.2 112 39.34 2.00 BXRC-40S2001-C-73 4000 95 630 33.7 2421 2131 21.2 114 39.40 1.99 BXRC-50S2001-C-74 5000 95 630 33.7 2524 2221 21.2 119 41.67 2.08 BXRC-57S2001-C-74 5700 95 630 33.7 2557 2250 21.2 120 42.04 2.09 BXRC-65S2001-C-74 6500 95 630 33.7 2532 2228 21.2 119 41.63 2.06 Notes for Table 1 & 2: 1. Product CCT is hot targeted at Tj= 85°C. Nominal CCT as defined by ANSI C78.377-2011. 2. All CRI values are measured at Tj = Tc = 25°C. CRI values are minimums. Bridgelux maintains a ± 3 tolerance on CRI values. 3. Drive current is referred to as nominal drive current. 4. Products tested under pulsed condition (10ms pulse width) at nominal test current where Tj (junction temperature) = Tc (case temperature) = 25°C. Typical stabilized DC performance values are provided as reference only and are not a guarantee of performance. 5. Typical performance values are provided as a reference only and are not a guarantee of performance. 6. Typical performance is estimated based on operation under DC (direct current) with LED array mounted onto a heat sink with thermal interface material and the case temperature maintained at 85°C. Based on Bridgelux test setup, values may vary depending on the thermal design of the luminaire and/or the exposed environment to which the product is subjected. 7. Bridgelux maintains a ±7% tolerance on flux measurements. 8. Minimum flux values at the nominal test current are guaranteed by 100% test. 9. Minimum flux values at elevated temperatures are provided for reference only and are not guaranteed by 100% production testing. Based on Bridgelux test setup, values may vary depending on the thermal design of the luminaire and/or the exposed environment to which the product is subjected.

European Product Registry for Energy Labeling The European Product Registry for Energy Labeling (EPREL) is defined in the EU Regulation 2017/1369 to provide import- ant energy efficiency information to consumers. Together with Energy Labeling Regulation ELR (EU) 2019/2015 which was amended by regulation (EU) 2021/340 for energy labelling of light sources, manufacturers are required to declare an ener- gy class based on key technical specifications from each of their product and register it in an open data base managed by EPREL It is now a legal requirement for a vendor of light sources to upload information about their products into the EPREL database before placing these products on the market in the EU. Table 3 below provides a list of part numbers that are in compliance with ELR and are currently listed in the EPREL data- base. At Bridgelux, we are fully committed to supplying products that are compliant with pertinent laws, rules, and obligation imposed by relevant government bodies including the European Energy Labeling regulation. Customers can use these products with full confidence for any projects that fall under the ELR. Table 3: Part numbers registered in European Product Registry for Energy Labeling PART NUMBER1 CCT (K) CRI Current2 (mA) Vf (V) Useful flux3 (Φuse) at 85C (lm) Pow- er (W) Efficacy (lm/W) Energy efficiency class4 Regis- tration No URL to Product Information Sheet in EPREL Database Notes for Table 3: 1. All device listed here must be disposed as e-waste upon its end of life according to local country guideline in each country. 2. For information on performance values at alternative drive conditions. please refer to the Product Selection Guide, Absolute Maximum Rating Table and Performance Curves in this data sheet. 3. For a definition of useful luminous flux (ΦΦuse), please see the ELR regulations at https:/ /tinyurl.com/4b6zvt4m. 4. EPREL requires an arrow symbol containing the letter of the energy efficiency class to be displayed. on technical promotional material. Refer to this energy efficiency class column for specific energy efficiency class on each part number.

Performance at Commonly Used Drive Currents Vero Thrive LED arrays are tested to the specifications shown using the nominal drive currents in Table 1. Vero Thrive LED Arrays may also be driven at other drive currents dependent on specific application design requirements. The performance at any drive current can be derived from the current vs. voltage characteristics shown in Figure 11 and the flux vs. current characteristics shown in Figure 12. The performance at commonly used drive currents is summarized in Table 4. Table 4: Product Performance at Commonly Used Drive Currents Part Number CRI Drive Current1 (mA) Typical Vf Tc = 25ºC (V) Typical Power Tc = 25ºC (W) Typical Flux2 Tc = 25ºC (lm) Typical DC Flux3 Tc = 85ºC (lm) Typical Efficacy Tc = 25ºC (lm/W) BXRC-27S2001-C-73 95 315 33.2 10.1 1202 1117 119 420 33.6 14.1 1600 1464 113 630 34.4 21.7 2330 2120 108 945 35.6 33.3 3329 3017 100 1260 36.6 45.0 4332 3815 96 BXRC-30S2001-C-73 95 315 33.2 10.1 1301 1208 128 420 33.6 14.1 1730 1583 123 630 34.4 21.7 2520 2293 116 945 35.6 33.3 3601 3263 108 1260 36.6 45.0 4685 4126 104 BXRC-35S2001-C-73 95 315 33.2 10.1 1348 1252 133 420 33.6 14.1 1793 1641 127 630 34.4 21.7 2612 2377 121 945 35.6 33.3 3732 3382 112 1260 36.6 45.0 4857 4276 108 BXRC-40S2001-C-73 95 315 33.2 10.1 1373 1275 135 420 33.6 14.1 1827 1672 129 630 34.4 21.7 2661 2421 123 945 35.6 33.3 3802 3446 114 1260 36.6 45.0 4947 4356 110 BXRC-50S2001-C-73 95 315 33.2 10.1 1432 1329 141 420 33.6 14.1 1905 1743 135 630 34.4 21.7 2774 2524 128 945 35.6 33.3 3964 3592 119 1260 36.6 45.0 5158 4542 115 BXRC-57S2001-C-73 95 315 33.2 10.1 1450 1347 143 420 33.6 14.1 1929 1765 137 630 34.4 21.7 2810 2557 130 945 35.6 33.3 4015 3639 121 1260 36.6 45.0 5224 4600 116 BXRC-65S2001-C-73 95 315 33.2 10.1 1436 1333 142 420 33.6 14.1 1910 1748 135 630 34.4 21.7 2782 2532 128 945 35.6 33.3 3975 3603 120 1260 36.6 45.0 5173 4555 115 Notes for Table 4: 1. Alternate drive currents are provided for reference only and are not a guarantee of performance. 2. Bridgelux maintains a ± 7% tolerance on flux measurements. 3. Typical stabilized DC performance values are provided as reference only and are not a guarantee of performance.

Electrical Characteristics

Table 7: Electrical Characteristics Part Number Drive Current (mA) Forward Voltage Pulsed, Tc = 25ºC (V) 1, 2, 3, 8 Typical Coefficient of Forward Voltage4 ∆Vf/∆Tc (mV/ºC) Typical Thermal Resistance Junction to Case5,6 Rj-c (ºC/W) Driver Selection Voltages7 (V) Minimum Typical Maximum Vf Min. Hot Tc = 105ºC (V) Vf Max. Cold Tc = -40ºC (V) BXRC-xxx2001-C-7x Notes for Table 7: 1. Parts are tested in pulsed conditions, Tc = 25°C. Pulse width is 10ms. 2. Voltage minimum and maximum are provided for reference only and are not a guarantee of performance. 3. Bridgelux maintains a tester tolerance of ± 0.10V on forward voltage measurements. 4. Typical coefficient of forward voltage tolerance is ± 0.1mV for nominal current. 5. Thermal resistance values are based from test data of a 3000K 80 CRI product. 6. Thermal resistance value was calculated using total electrical input power; optical power was not subtracted from input power. The thermal interface material used during testing is not included in the thermal resistance value. 7. Vf min hot and max cold values are provided as reference only and are not guaranteed by test. These values are provided to aid in driver design and selection over the operating range of the product. 8. This product has been designed and manufactured per IEC 62031:2018. This product has passed dielectric withstand voltage testing at 1160 V. The working voltage designated for the insulation is 80V d.c. The maximum allowable voltage across the array must be determined in the end product application.

Table 8: Maximum Ratings Parameter Maximum Rating LED Junction Temperature (Tj) 150°C Storage Temperature -40°C to +105°C Operating Case Temperature1 (Tc) 105°C Soldering Temperature2 300°C or lower for a maximum of 6 seconds Maximum Drive Current3 1260mA Maximum Peak Pulsed Drive Current4 1800mA Maximum Reverse Voltage5 -60V Notes for Table 8: 1. For IEC 62717 requirement, please consult your Bridgelux sales representative. 2. Refer to Bridgelux Application Note AN31: Handling and Assembly of Vero, Vero SE and Vesta SE LED Modules. 3. Arrays may be driven at higher currents however lumen maintenance may be reduced. 4. Bridgelux recommends a maximum duty cycle of 10% and pulse width of 20 ms when operating LED Arrays at maximum peak pulsed current specified. Maximum peak pulsed currents indicate values where LED Arrays can be driven without catastrophic failures. 5. Light emitting diodes are not designed to be driven in reverse voltage and will not produce light under this condition. Maximum rating provided for reference only.

Table 9: Eye Safety Risk Group (RG) Classifications Part Number Drive Current 5 (mA) CCT1,5 2700K/3000K 4000K2 5000K3 6500K4 BXRC-xxx200x-C-7x

630 RG1 RG1 RG1 RG1

945 RG1 RG1 RG2 RG2

1260 RG1 RG2 RG2 RG2

Notes for Table9: 1. Eye safety classification for the use of Bridgelux Vero Series LED arrays is in accordance with specification IEC/TR 62778: Application of IEC 62471 for the assessment of blue light hazard to light sources and luminaires. 2. For products classified as RG2 at 4000K, Ethr= 1847.5 lx. 3. For products classified as RG2 at 5000K Ethr= 1315.8 lx. 4. For products classified as RG2 at 6500K, Ethr= 1124.5 lx. 5. Please contact your Bridgelux sales representative for Ethr values at specific drive currents and CCTs not listed. Eye Safety

Table 10: 2-, 3- and 4-step MacAdam Ellipse Color Bin Definitions CCT Center Point Degree 2-step 3-step 4-step x y λ(°) a b a b a b Notes for Table 10: 1. Color binning at Tc=85°C 2. Bridgelux maintains a tolerance of ± 0.007 on x and y color coordinates in the CIE 1931 color space. Figure 10: C.I.E. 1931 Chromaticity Diagram (Color targeted at Tc=85°C) 0.34 0.36 0.38 0.4 0.42 0.44 Y X

3 SDCM

2 SDCM

0.3 0.31 0.32 0.33 0.34 0.35 0.36 0.37 0.38 0.39 Y X

4 SDCM

Figure 18: Drawing for Vero13 LED Array Notes for Figure 18: 1. Drawings are not to scale. 2. Drawing dimensions are in millimeters. 3. Unless otherwise specified, tolerances are ±0.1mm. 4. Mounting holes (2X) are for M2.5 screws. 5. Bridgelux recommends two tapped holes for mounting screws with 31.4 ± 0.10mm center-to-center spacing. 6. Screws with flat shoulders (pan, dome, button, round, truss, mushroom) provide optimal torque control. Do NOT use flat, countersink, or raised head screws. 7. Solder pads and connector port are labeled “+” and “-“ to denote positive and negative, respectively. 8. It is not necessary to provide electrical connections to both the solder pads and the connector port. Either set may be used depending on application specific design requirements. 9. Refer to Application Notes AN30 and AN31 for product handling, mounting and heat sink recommendations. 10. The optical center of the LED Array is nominally defined by the mechanical center of the array to a tolerance of ± 0.2mm. 11. Bridgelux maintains a flatness of 0.10mm across the mounting surface of the array.

Figure 19: Drawing for Vero 13 Packaging Tray Notes for Figure 19: 1. Dimensions are in millimeters. 2. Drawings are not to scale.

Bridgelux has developed a comprehensive set of application notes and design resources to assist customers in successfully designing with the Vero product family of LED array products. For all available application notes visit www.bridgelux.com. Optical Source Models Optical source models and ray set files are available for all Bridgelux products. For a list of available formats, visit www.bridgelux.com. MINOR PRODUCT CHANGE POLICY The rigorous qualification testing on products offered by Bridgelux provides performance assurance. Slight cosmetic changes that do not affect form, fit, or function may occur as Bridgelux continues product optimization. CAUTION: CHEMICAL EXPOSURE HAZARD Exposure to some chemicals commonly used in luminaire manufacturing and assembly can cause damage to the LED array. Please consult Bridgelux CAUTION: RISK OF BURN Do not touch the Vero LED array during operation. Allow the array to cool for a sufficient period of time before handling. The Vero LED array may reach elevated temperatures such that could burn skin when touched. 3D CAD Models Three dimensional CAD models depicting the product outline of all Bridgelux Vero LED arrays are available in both IGS and STEP formats. Please contact your Bridgelux sales representative for assistance. LM80 LM80 testing has been completed and the LM80 report is now available. Please contact your Bridgelux sales rep- resentative for LM-80 report. CAUTION CONTACT WITH LIGHT EMITTING SURFACE (LES) Avoid any contact with the LES. Do not touch the LES of the LED array or apply stress to the LES (yellow phosphor resin area). Contact may cause damage to the LED array. Optics and reflectors must not be mounted in contact with the LES (yellow phosphor resin area). Optical devices may be mounted on the top surface of the plastic housing of the Vero LED array. Use the mechanical features of the LED array housing, edges and/or mounting holes to locate and secure optical devices as needed. STANDARD TEST CONDITIONS Unless otherwise stated, array testing is performed at the nominal drive current.

About Bridgelux: Bridging Light and Life™ © 2021 Bridgelux, Inc. Product specifications are subject to change without notice. Bridgelux and the Bridgelux stylized logo design are registered trademarks of Bridgelux, Inc. All other trademarks are the property of their respective owners. Bridgelux Gen 7 Vero13 Thrive Array Product Data Sheet DS326 Rev. A (03/2022)

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Fremont, CA 94538 USA Tel (925) 583-8400 www.bridgelux.com At Bridgelux, we help companies, industries and people experience the power and possibility of light. Since 2002, we’ve designed LED solutions that are high performing, energy efficient, cost effective and easy to integrate. Our focus is on light’s impact on human behavior, delivering products that create better environments, experiences and returns—both experiential and financial. And our patented technology drives new platforms for commercial and industrial luminaires. For more information about the company, please visit bridgelux.com twitter.com/Bridgelux facebook.com/Bridgelux linkedin.com/company/bridgelux-inc-_2 youtube.com/user/Bridgelux WeChat ID: BridgeluxInChina