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www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. Standard Variable Output LDO Regulator Series Standard Variable Output LDO Regulators BA00DD0WCP-V5,BA00DD0WHFP, BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP
- Description The BA00DD0/CC0 series are low-saturation regulators available for outputs up to 2A/1A. The output voltage can be arbitrarily configured using the external resistance. These series of LDO regulators are offered in a broad packaging lineup. This IC has a built-in over-current protection circuit that prevents the destruction of the IC due to output short circuits and a thermal shutdown circuit that protects the IC from thermal damage due to overloading.
- Features 1) Maximum output current: 2A (BA00DD0 series), 1A(BA00CC0 series) 2) ±1% high-precision output voltage (BA00DD0) 3) Low saturation with PNP output 4) Built-in over-current protection ci rcuit that prevents the destruction of the IC due to output short circuits 5) Built-in thermal shutdown circuit for protecti ng the IC from thermal damage due to overloading 6) Built-in over- voltage protection circuit that prev ents the destruction of the IC due to power supply surges 7) TO220FP andHRP5 packaging (BA00DD0), and TO220FP and TO252 packaging (BA00CC0)
- Applications Usable in DSP power supplies for DVDs and CDs, FPDs, televisions, personal computers or any other consumer device
- Line up 1A BA00CC0 Series Part Number Package BA00CC0WT TO220FP-5 BA00CC0WT-V5 TO220FP-5(V5) BA00CC0WCP-V5 TO220CP-V5 BA00CC0WFP TO252-5 2A BA00DD0 Series Part Number Package BA00DD0WT TO220FP-5 BA00DD0WCP-V5 TO220CP-V5 BA00DD0WHFP HRP5 No.10023EBT01
BA00DD0WCP-V5,BA00DD0WHFP,BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- ABSOLUTE MAXIMUM RATINGS(Ta=25℃) Parameter Symbol Limits Unit Input Power Supply Voltage*1 Vcc -0.3 ~ +35 V Power Dissipation Pd 2300(HRP5) mW 1300(TO252-5) 2000(TO220FP-5) Operating Temperature Range Topr -40 ~ +125 ℃ Ambient Storage Temperature Tstg -55 ~ +150 ℃ Junction Temperature Tjmax +150 ℃ Output Control Terminal Voltage VCTL -0.3 ~ +Vcc V Voltage Applied to the Tip*3 Vcc peak +50 V *1 Must not exceed Pd *2 HRP5 : In cases in which Ta ≥25℃ when a 70mm ×70mm×1.6mm glass epoxy board is used, the power is reduced by 18.4 mW/℃. TO252-5 : In cases in which Ta ≥25℃ when a 70mm ×70mm×1.6mm glass epoxy board is used, the power is reduced by 10.4 mW/℃. TO252FP-5 : No heat sink. When Ta ≥25℃, the power is reduced by 16 mW/℃. *3 Applied voltage: 200msec or less (tr ≥1msec)
- Recommended Operating Range (Ta=25℃) Parameter Symbol Min. Max. Unit Input PowerSupply Voltage BA00CC0□□ Vcc 4.0 25.0 V BA00DD0□□ 3.0 25.0 Output Current BA00CC0□□ Io - 1 A BA00DD0□□ - 2 Output Control Terminal Voltage VCTL 0 Vcc V
- Electrical Characteristics(ABRIDGED) BA00CC0□□ Series (unless specified otherwise, Ta=25℃, Vcc=10V, VCTL=5V, Io=500mA, R1=2.2kΩ, R2=6.8kΩ) Parameter Symbol Min. Typ. Max. Unit Conditions C-terminal Voltage Vc 1.200 1.225 1.250 V Io=50mA Circuit Current at the Time of Shutdown Isd - 0 10 µA V CTL=0V Minimum I/O Voltage Difference ΔVd - 0.3 0.5 V Vcc= 0.95 ×Vo Output Current Capacity Io 1.0 - - A Input Stability Reg.I - 20 100 mV Vcc= 6V →25 V Load Stability Reg.L - 50 150 mV Io=5mA →1A Output Voltage Temperature Coefficient* T CVO - ±0.02 - %/ ℃ Io=5mA ,Tj=0~125℃ *Design guarantee (100% shipping inspection not performed) BA00DD0□□ Series (unless specified otherwise, Ta=25℃, Vcc=8V, VCTL=3V, Io=500mA, R1=15kΩ, R2=44kΩ) Parameter Symbol Min. Typ. Max. Unit Conditions C-terminal Voltage VADJ 1.257 1.270 1.283 V Io=100mA Circuit Current at the Time of Shutdown Isd - 0 10 µA V CTL=0V Minimum I/O Voltage Difference ΔVd - 0.45 0.7 V Vcc= 0.95 ×Vo, Io=2A Output Current Capacity Io 2.0 - - A Input Stability Reg.I - 15 35 mV Vcc= 5.7V →25 V, Io=200mA Load Stability Reg.L - 50 100 mV Io=0mA →2A Output Voltage Temperature Coefficient* T CVO - ±0.02 - %/ ℃ Io=5mA ,Tj=0~125℃ *Design guarantee (100% shipping inspection not performed) MAX200msec (Voltage Supply more than 35V) 50V 35V tr≧1msec
BA00DD0WCP-V5,BA00DD0WHFP,BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. 2.0 2.5 3.0 3.5 4.0 4.5 -40 -20 0 20 40 60 80 100 120 AMBIENT TEMPERATURE:Ta[℃] OUTPUT VOLTAGE:VOUT[V] 0 2 4 6 8 1 01 2 1 41 61 82 02 2 2 4 CONTROL VOLTAGE:VCTL[V] OUTPUT VOLTAGE:VOUT[V] 0 5 10 15 20 25 30 35 40 SUPPLY VOLTAGE:Vcc[V] OUTPUT VOLTAGE:VOUT[V] 130 140 150 160 170 180 190 AMBIENT TEMPERATURE:Ta[℃] OUTPUT VOLTAGE:VOUT[V] 100 150 200 0 100 200 300 400 500 600 700 800 900 1000 OUTPUT CURRENT:Io[mA] CIRCUIT CURRENT:Icc[mA] 100 200 300 400 500 600 700 800 900 1000 0 2 4 6 8 1 01 2 1 41 6 1 82 0 CONTROL VOLTAGE:VCTL[V] CONTROL CURRENT:ICTL[μA] Fig.7 Output Voltage Fig.8 Circuit Current by load Level Fig.9 CTL Voltage vs. CTL Current Temperature Characteristics ( I OUT=0mA→1A) Fig.3 Input Stability Fig.1 Circuit current Fig.2 Input Stability (Io=500mA) 0.0 0.5 1.0 1.5 2.0 2.5 3.0 02468 1 0 1 2 1 4 1 6 1 8 2 0 SUPPLY VOLTAGE:VCC[V] CIRCUIT CURRENT:ICC[mA] 0.0 1.0 2.0 3.0 4.0 0 2 4 6 8 10 12 14 16 18 20 SUPPLY VOLTAGE:VCC[V] OUTPUT VOLTAGE:VOUT[V] 0.0 1.0 2.0 3.0 4.0 0 2 4 6 8 10 12 14 16 18 20 SUPPLY VOLTAGE:VCC[V] OUTPUT VOLTAGE:VOUT[V]
- Reference Data BA00CC0□□(3.3V preset voltage) (Unless specified otherwise, Vcc=10V, VOUT=3.3V preset, VCTL=3V, Io=0mA, R1=2.2kΩ, and R2=6.8kΩ) 100 200 300 400 500 600 0 100 200 300 400 500 600 700 800 900 1000 OUTPUT CURRENT:Io[mA] DROPOUT VOLTAGE:ΔVd[V] 10 1000 100000 FREQUENCY:f[Hz] RIPPLE REJECTION:R.R[dB] 0.0 0.5 1.0 1.5 2.0 2.5 3.0 3.5 0 200 400 600 800 1000 1200 1400 1600 1800 2000 OUTPUT CURRENT:Io[mA] OUTPUT VOLTAGE:VOUT[V] Fig.6 Ripple Rejection Characteristics (Io=100mA) 1000k Fig.5 Input/Output Voltage Difference Fig.4 Load Stability Io-ΔVd Characteristics(Vcc=2.95V) 100k 10k 1k 100 Fig.10 CTL Voltage vs. Output Voltage Fig.11 Overvoltage Operating Fig.12 Thermal Shutdown Circuit Characteristics Characteristics (Io=200mA)
BA00DD0WCP-V5,BA00DD0WHFP,BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. OUTPUT CURRENT:IOUT[A] OUTPUT VOLTAGE:VOUT[V] Fig.17 Input/Output Voltage Difference 100 200 300 400 500 600 700 800 OUTPUT CURRENT:IOUT[A] DROPOUT VOLTAGE:VDRP[V] 10 1000 100000 FREQUENCY:f[Hz] RIPPLE REJECTION:R.R[dB] Fig.16 Load Stability Fig.18 Ripple Rejection Characteristics (Iout=100mA) Iout-ΔVd Characteristics(Vcc=4.75V) 4.8 4.9 5.0 5.1 5.2 -40 -20 0 20 40 60 80 100 AMBIENT TEMPERATURE:Ta[℃] OUTPUT VOLTAGE:VOUT[V] 0 2 4 6 8 1 01 2 1 41 61 82 02 2 2 4 CONTROL VOLTAGE:VCTL[V] OUTPUT VOLTAGE:VOUT[V] 0 5 10 15 20 25 30 35 40 SUPPLY VOLTAGE:Vcc[V] OUTPUT VOLTAGE:VOUT[V] 130 140 150 160 170 180 190 AMBIENT TEMPERATURE:Ta[℃] OUTPUT VOLTAGE:VOUT[V] 100 120 140 160 180 200 OUTPUT CURRENT:IOUT[A] CIRCUIT CURRENT:[mA] 100 200 300 400 500 600 700 800 0 2 4 6 8 1 01 21 41 61 82 02 22 4 CONTROL VOLTAGE:VCTL[V] CONTROL CURRENT:ICTL[μA] Fig.19 Output Voltage Fig.20 Circuit Current by load Level Fig.21 CTL Voltage vs. CTL Current Temperature Characteristics ( I OUT=0mA→2A) Fig.15 Input Stability Fig.13 Circuit Current Fig.14 Input Stability (Io=2A) 0.0 0.5 1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5 6.0 02468 1 0 1 2 1 4 1 6 1 8 2 0 2 2 2 4 SUPPLY VOLTAGE:VCC[V] CIRCUIT CURRENT:ICC[mA] 0 2 4 6 8 10 12 14 16 18 20 22 24 SUPPLY VOLTAGE:VCC[V] OUTPUT VOLTAGE:VOUT[V] 0 2 4 6 8 10 12 14 16 18 20 22 24 SUPPLY VOLTAGE:VCC[V] OUTPUT VOLTAGE:VOUT[V] 0.5 1.0 1.5 2.0
- Reference Data BA00DD0 □□(5.0V preset voltage) (Unless specified otherwise, Vcc=8V, V OUT=5V preset, VCTL=3V, Io=0mA, R1=15kΩ, and R2=44kΩ) Fig.10 CTL Voltage vs. Output Voltage Fig.11 Overvoltage Operating Fig.12 Thermal Shutdown Circuit Characteristics Characteristics(Io=200mA)
BA00DD0WCP-V5,BA00DD0WHFP,BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- Block Diagrams [BA00CC0WFP] [BA00DD0WHFP] TOP VIEW TO252-5 HRP5 PINNo. Symbol Function
1 CTL Output voltage ON/OFF control
2 VCC Power supply voltage input
3 N.C./GND Unconnected terminal/GND*
4 OUT Voltage output
5 C Output voltage regulation terminal
[BA00CC0WT] [BA00CC0CP-V5] [BA00CC0WT-V5] [BA00DD0WT] [BA00DD0WCP-V5] TO220FP-5 TO220FP-5(V5) PINNo. Symbol Function
3 GND GND
5 ADJ Output voltage regulation terminal
- Input / Output Equivalent Circuit Diagrams < BA00CC0WT/BA00CC0WFP > < BA00DD0WT/BA00DD0WFP >
- Output Voltage Configuration Method Please connect resistors R 1 and R2 (which determines the output voltage) as shown in Fig.29. Please be aware that the offset due to the current that flows from the ADJ terminal becomes large when resistors with large values are used. The use of resistors with R1=2kΩ to 15 k Ω is recommended. V o = V c ( VADJ) × 1 + B A □□CC0□ □ Vc : 1.225 (Typ.) B A □□DD0□□ VADJ : 1.270 (Typ.) 0.33μF 22μF VOUT C(ADJ) GND Vcc CTL R1 R2 Driver TSD OCP Vref N.C.(TO252-5) GND(HRP5) Fin 1 5 2 4 OVP 1 2 3 4 5 1 2 3 4 5 *TO252-5 is N.C., and HRP5 is GND 1 2 3 4 5 1 2 3 4 5 TOP VIEW TOP VIEW 0.33μF 22μF VOUT C(ADJ) GND Vcc CTL R1 R2 Driver TSD OCP Vref 3 1 5 2 4 OVP CTL 25kΩ 25kΩ VOUT 10 kΩ C 5.5 kΩ Vcc Vcc 500Ω 10kΩ ADJ Vcc CTL 39kΩ 2kΩ Vcc Fig.27 Fig.28 Fig.25 Fig.26 VOUT C(ADJ) R1 Vc (VADJ) Fig.29 VOUT FIN 31kΩ 1 2 3 4 5 TO220CP-V5
BA00DD0WCP-V5,BA00DD0WHFP,BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- Thermal Design HRP5 To225FP-5 TO252-5 F i g . 3 0 F i g . 3 1 F i g . 3 2 When using at temperatures over Ta=25℃, please refer to the heat reducing characteristics shown in Fig.30 through 32. The IC characteristics are closely related to the temperature at which the IC is used, so it is necessary to operate the IC at temperatures less than the maximum junction temperature Tj MAX. Fig.31 shows the acceptable loss and heat reducing characteristics of the TO220FP package The portion shown by the diagonal line is the acceptable loss range that can be used with the IC alone. Even when the ambient temperature Ta is a normal temperature (25℃), the chip (junction) temperature Tj may be quite high so please operate the IC at temperatures less than the acceptable loss Pd. The calculation method for power consumption Pc(W) is as follows : P c = ( V c c - V o )×Io+Vcc×Icca Acceptable loss Pd ≦Pc Solving this for load current IO in order to operate within the acceptable loss, Io ≦ ( Please refer to Figs.8 and 20 for Icca.) It is then possible to find the maximum load current IoMAX with respect to the applied voltage Vcc at the time of thermal design. Calculation Example Example 1) When Ta=85℃, Vcc=8.3V, Vo=3.3V, BA33DD0WT Io ≦ With the IC alone : θja=62.5℃/W → -16mW/ ℃ Io ≦200mA (Icca : 2mA) 25 ℃=2000mW → 85℃=1040mW Please refer to the above information and keep thermal designs within the scope of acceptable loss for all operating temperature ranges. The power consumption Pc of the IC when there is a short circuit (short between Vo and GND) is : Pc=Vcc×(Icca +Ishort) Ishort : Short circuit current
- Terminal Vicinity Settings and Cautions ・Vcc Terminal Please attach a capacitor (greater than 0.33μF) between the Vcc and GND. The capacitance values differ depending on the application, so please chose a capacitor with sufficient margin and verify the operation on an actual board. ・CTL Terminal The CTL terminal is turned ON at 2.0V and higher and OFF at 0.8V and lower within the operating power supply voltage range. The power supply and the CTL terminal may be started up and shut down in any order without problems. Pd – Vcc×Icca Vcc-Vo 1.04-8.3×Icca 0. 0 0. 4 0. 8 1. 2 1. 6 2. 0 0 25 50 75 100 125 150 Ambient temperature:Ta(℃) Power Dissipation:Pd(W) 0 25 50 75 100 125 150 Ambi ent temp erature:Ta(℃) Power Dissipation:Pd(W) 0 25 50 75 100 125 150 Ambi ent temp erature:Ta(℃) Power Dissipation:Pd(W)③7.3W ②5.5W ①2.3W (1)20.0 (2)2.0 1.30 Board size : 70×70×1.6 ㎜ 3 (board contains a thermal) Board front copper foil area : 10.5×10.5 ㎜ 2 ①2-layer board (back surface copper foil area :15×15 ㎜ 2) ②2-layer board (back surface copper foil area :70×70 ㎜ 2) ③4-layer board (back surface copper foil area :70×70 ㎜ 2) (1) When using a maximum heat sick : θj-c=6.25(℃/W) (2) When using an IC alone : θj-c=62.5(℃/W) Mounted on a Rohm standard board Board size : 70×70×1.6 ㎜ Copper foil area :7×7 ㎜ TO252-5θja=96.2(℃/W) Vcc: Vo: Io: Icca: Input voltage Output voltage Load current Circuit current
BA00DD0WCP-V5,BA00DD0WHFP,BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- Vo Terminal Please attach an anti-oscillation capacitor between VOUT and GND. The capacitance of the capacitor may significantly change due to factors such as temperature changes, which may cause oscillations. Please use a tantalum capacitor or aluminum electrolytic capacitor with favorable characteristics and small external series resistance (ESR) even at low temperatures. The output oscillates regardless of whether the ESR is large or small. Please use the IC within the stable operating region while referring to the ESR characteristics reference data shown in Figs.33 through 35. In cases where there are sudden load fluctuations, the a large capacitor is recommended. ( B A □□CC0) (BA□□DD0)
- Other 1) Protection Circuits Overcurrent Protection Circuit A built-in overcurrent protection circuit corresponding to the current capacity prevents the destruction of the IC when there are load shorts. This protection circuit is a “7”-shaped current control circuit that is designed such that the current is restricted and does not latch even when a large current momentarily flows through the system with a high-capacitance capacitor. However, while this protection circuit is effective for the prevention of destruction due to unexpected accidents, it is not suitable for continuous operation or transient use. Please be aware when creating thermal designs that the overcurrent protection circuit has negative current capacity characteristics with regard to temperature (Refer to Figs.4 and 16). Thermal Shutdown Circuit (Thermal Protection) This system has a built-in temperature protection circuit for the purpose of protecting the IC from thermal damage. As shown above, this must be used within the range of acceptable loss, but if the acceptable loss happens to be continuously exceeded, the chip temperature Tj increases, causing the temperature protection circuit to operate. When the thermal shutdown circuit operates, the operation of the circuit is suspended. The circuit resumes operation immediately after the chip temperature Tj decreases, so the output repeats the ON and OFF states (Please refer to Figs.12 and 24 for the temperatures at which the temperature protection circuit operates). There are cases in which the IC is destroyed due to thermal runaway when it is left in the overloaded state. Be sure to avoid leaving the IC in the overloaded state. Reverse Current In order to prevent the destruction of the IC when a reverse current flows through the IC, it is recommended that a diode be placed between the Vcc and Vo and a pathway be created so that the current can escape (Refer to Fig.36). 2) This IC is bipolar IC that has a P-board (substrate) and P+ isolation layer between each devise, as shown in Fig.37. A P-N junction is formed between this P-layer and the N-layer of each device, and the P-N junction operates as a parasitic diode when the electric potential relationship is GND> Terminal A, GND> Terminal B, while it operates as a parasitic transistor when the electric potential relationship is Terminal B GND> Terminal A. Parasitic devices are intrinsic to the IC. The operation of parasitic devices induces mutual interference between circuits, caus ing malfunctions and eventually the destruction of the IC itself. It is necessary to be careful not to use the IC in ways that would cause parasitic elements to operate. For example, applying a voltage that is lower than the GND (P-board) to the input terminal. F i g . 3 7 : E x a m p l e o f t h e b a s i c s t r u c t u r e o f a b i p o l a r I C 22μF OUT IC C(ADJ) 200 400 800 1000 0.1 Stable operating region 100 0 600 Unstable operating region Unstable operating region 0.1 100 10 100 1000 OUTPUT CURRENT:lo(mA) OUTPUT CURRENT:lo(mA) Unstable operating region Unstable operating region Stable operating region EFFECTIVE SERIES RESISTANCE:ESR [Ω] EFFECTIVE SERIES RESISTANCE:ESR [Ω] GND N P N Parasitic element or transistor (Pin B) B E Transistor (NPN) N P N GND O (Pin A) GND N Resistor Parasitic element P N P P+ N (Pin A) Parasitic element or transistor (Pin B) GND C B E Parasitic element GND Fig. 36:Bypass diode OUT Vcc CTL GND Reverse current
BA00DD0WCP-V5,BA00DD0WHFP,BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved.
- Ordering part number B A 0 0 C C 0 W H F P - T R Part No. Output voltage 00:Variable Series CC0 : 1A DD0 : 2A Shutdown switch W : Includes switch Package HFP :HRP5 FP : TO252 CP : TO220CP T :TO220FP Packaging and forming specification TR: Embossed tape and reel ( H R P 5 ) E2: Embossed tape and reel (TO252-5,TO220CP) None : Container Tube V5 :Foaming(V5 only) (Unit : mm) HRP5 S 0.08 S (MAX 9.745 include BURR) 5 4 3 21 1.905±0.1 0.835±0.2 1.523±0.15 10.54±0.13 −0.05 +0.10.27 4.5° (5.59) 8.82 ± 0.1 9.395±0.125 0.73±0.1 1.72 0.08±0.05 (7.49) 8.0±0.13 1.017±0.2 1.2575 −4.5°+5.5° Direction of feed 1pin Reel ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tapeTape Quantity Direction of feed 2000pcs TR ( )The direction is the 1pin of product is at the upper right when you hold reel on the left hand and you pull out the tape on the right hand (Unit : mm) TO252-5 1 2 3 54 0.8 0.5 1.27 1.5 2.5 FIN 6.5±0.2 2.3±0.2 0.5±0.1 1.0±0.2 9.5±0.5 0.5±0.1 5.5±0.2 1.5±0.2 C0.5 5.1+0.2 -0.1 Direction of feed1pin Reel ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tapeTape Quantity Direction of feed The direction is the 1pin of product is at the lower left when you hold reel on the left hand and you pull out the tape on the right hand 2000pcs ( ) (Unit : mm) TO220CP-V5 16.92 0.92 φ3.2±0.1 4.5±0.1 0.82±0.1 8.0±0.2 1.58 0.42±0.1 12.0±0.2 1.7781.444 4.92±0.2 13.60 15.2-0.2+0.4 4.12 1.0±0.2 (1.0) (2.85) Direction of feed1pinReel ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> Embossed carrier tapeTape Quantity Direction of feed The direction is the 1pin of product is at the lower left when you hold reel on the left hand and you pull out the tape on the right hand 500pcs
BA00DD0WCP-V5,BA00DD0WHFP,BA00DD0WT, BA00CC0WT,BA00CC0WT-V5,BA00CC0WCP-V5,BA00CC0WFP www.rohm.com 2010.02 - Rev.B © 2010 ROHM Co., Ltd. All rights reserved. (Unit : mm) TO220FP-5 7.0 10.0 2.8 4.5 1.778 0.5±0.1 1.2 0.8 1.8±0.28.0±0.2 0.7 12.0±0.2 17.013.5Min. φ3.2±0.1 −0.2 +0.4 +0.3 −0.1 −0.1 +0.2+0.3 −0.1 +0.3 −0.1 23451 2.85 ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> TubeContainer Quantity Direction of feed 500pcs Direction of products is fixed in a container tube (Unit : mm) TO220FP-5(V5) 0.7 7.0 10.0 1.778 1234 5 1.2 0.8 1.8±0.28.0±0.2 12.0±0.2 17.0 31.5Max. φ3.2±0.1 −0.2+0.4 + 0.3 − 0.1 + 0.3− 0.1 2.8 4.5 0.5±0.1 −0.1+0.2 +0.3−0.1 (2.85) 4.25 (2.0) 23.4 17.5 25.8 8.15 ∗ Order quantity needs to be multiple of the minimum quantity. <Tape and Reel information> TubeContainer Quantity Direction of feed 500pcs Direction of products is fixed in a container tube
R1010Awww.rohm.com © 2010 ROHM Co., Ltd. All rights reserved. Notice ROHM Customer Support System http://www.rohm.com/contact/ Thank you for your accessing to ROHM product informations. More detail product informations and catalogs are available, please contact us. Notes No copying or reproduction of this document, in part or in whole, is permitted without the consent of ROHM Co.,Ltd. The content specified herein is subject to change for improvement without notice. The content specified herein is for the purpose of introducing ROHM's products (hereinafter "Products"). If you wish to use any such Product, please be sure to refer to the specifications, which can be obtained from ROHM upon request. Examples of application circuits, circuit constants and any other information contained herein illustrate the standard usage and operations of the Products. The peripheral conditions must be taken into account when designing circuits for mass production. Great care was taken in ensuring the accuracy of the information specified in this document. However, should you incur any damage arising from any inaccuracy or misprint of such information, ROHM shall bear no responsibility for such damage. The technical information specified herein is intended only to show the typical functions of and examples of application circuits for the Products. ROHM does not grant you, explicitly or implicitly, any license to use or exercise intellectual property or other rights held by ROHM and other parties. ROHM shall bear no responsibility whatsoever for any dispute arising from the use of such technical information. The Products specified in this document are intended to be used with general-use electronic equipment or devices (such as audio visual equipment, office-automation equipment, commu- nication devices, electronic appliances and amusement devices). The Products specified in this document are not designed to be radiation tolerant. While ROHM always makes efforts to enhance the quality and reliability of its Products, a Product may fail or malfunction for a variety of reasons. Please be sure to implement in your equipment using the Products safety measures to guard against the possibility of physical injury, fire or any other damage caused in the event of the failure of any Product, such as derating, redunda ncy, fire control and fail-safe designs. ROHM shall bear no responsibility whatsoever for your use of any Product outside of the prescribed scope or not in accordance with the instruction manual. The Products are not designed or manufactured to be used with any equipment, device or system which requires an extremely high level of reliability the failure or malfunction of which may result in a direct threat to human life or create a risk of human injury (such as a medical instrument, transportation equipment, aerospac e machinery, nuclear-reactor controller, fuel- controller or other safety device). ROHM shall bear no responsibility in any way for use of any of the Products for the above special purposes. If a Product is intended to be used for any such special purpose, please contact a ROHM sales representative before purchasing. If you intend to export or ship overseas any Product or technology specified herein that may be controlled under the Foreign Exchange and the Foreign Trade Law, you will be required to obtain a license or permit under the Law.