PC3SD21NTZ Series. VDRM : 600V Zero cross type DIP 6pin Phototriac Coupler for triggering

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1 PCSDNTZ Series Non-zero cross type is also available. (PCSDNTZ Series) VDRM : 00V Zero cross type DIP pin Phototriac Coupler for triggering Description Phototriac Coupler include an infrared emitting diode (IRED) optically coupled to an output Phototriac. These devices feature full wave control and are ideal isolated drivers for medium to high current Triacs. DIP package provides.0kv isolation from input to output with superior commutative noise immunity. Features. High repetitive peak off-state voltage (V DRM : 00V). Zero crossing functionality (V OX : MAX. 0V). I FT ranks available (see Model Line-up section in this datasheet). pin DIP package. Superior noise immunity (dv/dt : MIN. 000V/µs). Double transfer mold construction (Ideal for Flow Soldering) 7. High isolation voltage between input and output (Viso(rms) :.0kV) Agency approvals/compliance. Recognized by UL77 (Double protection isolation), file No. E80 (as model No. SD). Approved by CSA, file No. CA9 (as model No. SD). Optionary available VDE Approved ( ) (DIN EN 077--), file No (as model No. SD). Package resin : UL flammability grade (9V-0) ( ) DIN EN077-- : succesor standard of DIN VDE088. Up to Date code "RD" (December 00), approval of DIN VDE088. From Date code (January 00), approval of DIN EN ( ) Reinforced insulation type is also available. (PCSFYVZ Series) Applications. Triggering for Triacs used to switch on and off devices which require AC Loads. For example heaters, fans, motors, solenoids, and valves.. AC line control in power supply applications.

2 Internal Connection Diagram Cathode NC /Cathode No external connection Cathode/ Zero Crossing Circuit Outline Dimensions (Unit : mm). Through-Hole [ex. PCSDNTZ]. Wide Through-Hole Lead-Form [ex. PCSDNVZ]. ±0. SD 7. ±0.. ±0. Rank Date code ( digit) Factory identification 7. ±0. 0. ±0.. ±0. SD 7. ±0.. ±0. Rank Date code ( digit) Factory identification 7. ±0..9 ±0.. ±0.. ±0. 0. ±0.. ±0. 0. TYP. θ θ θ : 0 to.9 ±0.. ±0. 0. ±0.. ±0.. ±0. 0. TYP..7 MIN. Product mass : approx. 0.g Product mass : approx. 0.g 0. ±0. 0. ±0.. SMT Gullwing Lead-Form [ex. PCSDNXP]. Wide SMT Gullwing Lead-Form [ex. PCSDNWP] 0. ±0.. ±0. SD. ±0. Rank Date code ( digit) Factory identification 0. ±0.. ±0. SD. ±0. Rank Date code ( digit) Factory identification. ±0. 7. ±0. 7. ±0.. ±0. 0. ± ± ±0. 7. ±0.. ±0. 0. ±0. 7. ± ±0. 0. ± ±0..0 MAX. 0. ±0. Product mass : approx. 0.g Product mass : approx. 0.g Sheet No.: D-A070FEN

3 Outline Dimensions (Unit : mm). Through-Hole VDE option [ex. PCSDYTZ]. Wide Through-Hole Lead-Form VDE option [ex. PCSDYVZ] 0. ±0.. ±0. SD Rank 0. ±0.. ±0. SD Rank 7. ±0.. ±0. Date code ( digit) VDE Factory identification identification.9 ±0.. ±0.. ±0. 0. ±0. 0. TYP.. ±0. θ 7. ±0. θ : 0 to θ. ±0. VDE identification Factory identification.9 ±0.. ±0. 7. ±0. 0. ±0. Date code ( digit). ±0.. ±0. 0. TYP..7 MIN. 7. ±0. 0. ±0. 0. ±0. Product mass : approx. 0.g Product mass : approx. 0.g 7. SMT Gullwing Lead-Form VDE option [ex. PCSDYXP] 0. ±0.. ±0. SD. ±0. VDE Factory identification identification 7. ±0. 7. ±0.. ±0. Date code ( digit). ±0. Rank 0. ± ± Wide SMT Gullwing Lead-Form VDE option [ex. PCSDYWP] 0. ±0.. ±0. SD. ±0. VDE Factory identification identification 7. ±0. 7. ±0.. ±0.. ±0. 0. ±0. Rank Date code ( digit) 0.7 ±0. 0. ± ±0..0 MAX. 0. ±0. Product mass : approx. 0.g Product mass : approx. 0.g Pin is not allowed external connection Sheet No.: D-A070FEN

4 Date code ( digit) st digit Year of production nd digit Month of production A.D Mark A B C D E F H J K L M N A.D Mark P R S T U V W X A B C Month January February March April May June July August September October November December Mark O N D repeats in a 0 year cycle Factory identification Factory identification Mark no Country of origin Japan Indonesia Philippines China * This factory ing is for identification purpose only. Please contact the local sales representative to see the actural status of the production. Rank Refer to the Model Line-up table Sheet No.: D-A070FEN

5 Absolute Maximum Ratings * * Input Output Parameter Forward current Reverse voltage RMS ON-state current Peak one cycle surge current Repetitive peak OFF-state voltage Isolation voltage Operating temperature Storage temperature Soldering temperature * 0 to 0%RH, AC for minute, f=0hz * For 0s * f=0hz sine wave * Lead solder plating models: 0 C (T a = C) Symbol Rating Unit I F 0 ma V R V I T (rms) 0. A I surge *. A V DRM 00 V V iso (rms).0 kv T opr 0 to +00 C T stg to + C T sol * 70 C Soldering area mm Electro-optical Characteristics Input Output Transfer characteristics Forward voltage Reverse current Repentitive peak OFF-state current ON-state voltage Holding current Critical rate of rise of OFF-state voltage Rank B Zero cross voltage Rank C Rank D Rank B Minimum trigger current Rank C Rank D Isolation resistance Turn-on time (T a = C) Parameter Symbol Conditions MIN. TYP. MAX. Unit V F I R I DRM V T I H dv/dt V OX I FT R ISO t on I F =0mA V R =V V D =V DRM I T =0.A V D =V V D =/ V DRM I F =ma, Resistance load I F =8mA, Resistance load V D =V, R L =00Ω DC00V,0 to 0%RH V D =V, R L =00Ω, I F =0mA V µa µa V ma V/µs V ma Ω µs Sheet No.: D-A070FEN

6 Model Line-up Lead Form Through-Hole SMT Gullwing Wide Through-Hole Shipping Package DIN EN Approved Sleeve 0pcs/sleeve - Approved - Approved Rank I FT [ma] (V D =V, R L =00Ω ) PCSDNTZBF PCSDNTZCF PCSDYTZBF PCSDYTZCF PCSDNXZBF PCSDNXZCF PCSDYXZBF PCSDYXZCF PCSDNVZBF PCSDNVZCF PCSDYVZBF PCSDYVZCF B C MAX.7 MAX. PCSDNTZDF PCSDYTZDF PCSDNXZDF PCSDYXZDF PCSDNVZDF PCSDYVZDF D MAX. Lead Form Wide SMT Gullwing SMT Gullwing Wide SMT Gullwing Shipping Package DIN EN077-- Sleeve 0pcs/sleeve - Approved - Approved Taping 000pcs/reel - Approved Rank I FT [ma] (V D =V, R L =00Ω ) PCSDNWZBF PCSDNWZCF PCSDYWZBF PCSDYWZCF PCSDNXPBF PCSDNXPCF PCSDYXPBF PCSDYXPCF PCSDNWPBF PCSDNWPCF PCSDYWPBF PCSDYWPCF B C MAX.7 MAX. PCSDNWZDF PCSDYWZDF PCSDNXPDF PCSDYXPDF PCSDNWPDF PCSDYWPDF D MAX. Please contact a local sales representative to inquire about production status. Sheet No.: D-A070FEN

7 Fig. Forward Current vs. Ambient Temperature 70 Fig. RMS ON-state Current vs. Ambient Temperature 7 Forward current IF (ma) RMS ON-state current Ir (rms) (ma) Fig.-a Forward Current vs. Forward Voltage (Rank B) Fig.-b Forward Current vs. Forward Voltage (Rank C, Rank D) Forward current IF (ma) T a =00 C 7 C 0 C C 0 C 0 C Forward current IF (ma) T a =7 C 0 C C C 0 C Forward voltage V F (V) Fig.-a Minimum Trigger Current vs. Ambient Temperature (Rank B) Minimum trigger current IFT (ma) V D =V R L =00Ω Forward voltage V F (V) Fig.-b Minimum Trigger Current vs. Ambient Temperature (Rank C, Rank D) Minimum trigger current IFT (ma) V D =V R L =00Ω Sheet No.: D-A070FEN

8 Fig. Relative Repetitive Peak OFF-state Voltage vs. Ambient Temperature Relative repetitive peak OFF-state voltage VDRM (Tj=Ta) / VDRM (Tj= C) Fig. ON-state Voltage vs. Ambient Temperature ON-state voltage VT (V) I T =00mA Fig.7 Holding Current vs. Ambient Temperature Holding current IH (ma) V D =V Fig.8 Repetitive Peak OFF-state Current vs. Ambient Temperature Repetitive peak OFF-state current IDRM (A) V D =00V Fig.9-a Turn-on Time vs. Forward Current (Rank B) 000 V D =V R L =00Ω T a = C Fig.9-b Turn-on Time vs. Forward Current (Rank C, Rank D) 000 V D =V R L =00Ω T a = C Turn-on time ton (µs) 00 Turn-on time ton (µs) Forward current I F (ma) Forward current I F (ma) 8 Sheet No.: D-A070FEN

9 Fig.0-a Zero-cross Voltage vs. Ambient Temperature (Rank B) Zero-cross voltage VOX (V) Resistance load, I F =ma Fig.0-b Zero-cross Voltage vs. Ambient Temperature (Rank C, Rank D) Zero-cross voltage VOX (V) Resistance load, I F =8mA Res : Please be aware that all data in the graph are just for reference. 9 Sheet No.: D-A070FEN

10 Design Considerations Design guide In order for the Phototriac to turn off, the triggering current (I F ) must be 0.mA or less. Please refrain from using these devices in a direct drive configuration. These Phototriac Coupler are intended to be used as triggering device for main Triacs. Please ensure that the output rating of these devices will be sufficient for triggering the main output Triac of your choice. Failure to do may result in malfunctions. For applications with inductive loads such as motors,please use caution in utilizing a zero crossing type Phototraiac Coupler as this may cause undesired operations due to the phase difference between voltage and current of load. For designs that will experience excessive noise or sudden changes in load voltage, please include an appropriate snubber circuit as shown in the below circuit. Please keep in mind the Sharp Phototriac Coupler incorporate superrior dv/dt ratings which can eliminate the need for a snubber circuit. For over voltage protection, a Varistor may be used. Degradation In general, the emission of the IRED used in Phototriac Couplers will degrade over time. In the case where long term operation and / or constant extreme temperature fluctuations will be applied to the devices, please allow for a worst case scenario of 0% degradation over years. Therefore in order to maintain proper operation, a design implementing these Phototriac Couplers should provide at least twice the minimum required triggering current from initial operation. Recommended Foot Print (reference) SMT Gullwing Lead-form 8. Wide SMT Gullwing Lead-form (Unit : mm) 0 Sheet No.: D-A070FEN

11 Standard Circuit (Medium/High Power Triac Drive Circuit) PCSDNTZ Triac Load AC Line Zero Crossing Circuit Note) Please add the snubber circuit according to a condition. Any snubber or varistor used for the above mentioned scenarios should be located as close to the main output triac as possible. For additional design assistance, please review our corresponding Optoelectronic Application Notes. Sheet No.: D-A070FEN

12 Manufacturing Guidelines Soldering Method Reflow Soldering: Reflow soldering should follow the temperature profile shown below. Soldering should not exceed the curve of temperature profile and time. Please don't solder more than twice. ( C) 00 Terminal : 0 C peak ( package surface : 0 C peak) Preheat 0 to 80 C, 0s or less Reflow 0 C or more, 0s or less 0 0 (min) Flow Soldering : Due to 's double transfer mold construction submersion in flow solder bath is allowed under the below listed guidelines. Flow soldering should be completed below 70 C and within 0s. Preheating is within the bounds of 00 to 0 C and 0 to 80s. Please don't solder more than twice. Hand soldering Hand soldering should be completed within s when the point of solder iron is below 00 C. Please don't solder more than twice. Other notices Please test the soldering method in actual condition and make sure the soldering works fine, since the impact on the junction between the device and PCB varies depending on the tooling and soldering conditions. Sheet No.: D-A070FEN

13 Cleaning instructions Solvent cleaning : Solvent temperature should be C or below. Immersion time should be minutes or less. Ultrasonic cleaning : The impact on the device varies depending on the size of the cleaning bath, ultrasonic output, cleaning time, size of PCB and mounting method of the device. Therefore, please make sure the device withstands the ultrasonic cleaning in actual conditions in advance of mass production. Recommended solvent materials : Ethyl alcohol, Methyl alcohol and Isopropyl alcohol. In case the other type of solvent materials are intended to be used, please make sure they work fine in actual using conditions since some materials may erode the packaging resin. Presence of ODC This product shall not contain the following materials. And they are not used in the production process for this device. Regulation substances : CFCs, Halon, Carbon tetrachloride,..-trichloroethane (Methylchloroform) Specific brominated flame retardants such as the PBBOs and PBBs are not used in this product at all. Sheet No.: D-A070FEN

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