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TB2901H TOSHIBA Bi-CMOS Digital Integrated Circuit Silicon Monolithic TB2901H Maximum Power 47 W BTL x 4-ch Audio Power IC The TB2901H is 4-ch BTL audio amplifier for car audio applications. This IC can generate higher power: POUT MAX = 47 W as it includes the pure complementary P-ch and N-ch DMOS output stage. It is designed to yield low distortion ratio for 4-ch BTL audio power amplifier, built-in standby function, muting function, and various kinds of protectors. Additionally, high-side switch is built in. Features * High power output : POUT MAX (1) = 47 W (typ.) (VCC = 14.4 V, f = 1 kHz, JEITA max, RL = 4 ) : POUT MAX (2) = 43 W (typ.) (VCC = 13.7 V, f = 1 kHz, JEITA max, RL = 4 ) : POUT MAX (3) = 80 W (typ.) (VCC = 14.4 V, f = 1 kHz, JEITA max, RL = 2 ) : POUT (1) = 29 W (typ.) (VCC = 14.4 V, f = 1 kHz, THD = 10%, RL = 4 ) : POUT (2) = 25 W (typ.) (VCC = 13.2 V, f = 1 kHz, THD = 10%, RL = 4 ) : POUT (3) = 55 W (typ.) (VCC = 14.4 V, f = 1 kHz, THD = 10%, RL = 2 ) * * * * * * * Low distortion ratio: THD = 0.015% (typ.) (VCC = 13.2 V, f = 1 kHz, POUT = 5 W, RL = 4 ) Low noise: VNO = 90 Vrms (typ.) (VCC = 13.2 V, Rg = 0 , BW = 20 Hz~20 kHz, RL = 4 ) Built-in standby switch function (pin 4) Built-in muting function (pin 22) Built-in high-side switch function (pin 25) Built-in various protection circuits: Weight: 7.7 g (typ.) Thermal shut down, overvoltage, out to GND, out to VCC, out to out short Operating supply voltage: VCC (opr) = 9~18 V (RL = 4 ) Note 1: Since this device's pins have a low withstanding voltage, please handle it with care. 1 2002-11-06 TB2901H Block Diagram C5 1 TAB 20 VCC1 6 VCC2 OUT1 (+) 9 C1 11 IN1 PW-GND1 8 OUT1 (-) 7 RL OUT2 (+) 12 IN2 5 RL C1 PW-GND2 2 OUT2 (-) 3 C6 16 AC-GND OUT3 (+) 15 IN3 17 RL C1 PW-GND3 18 OUT3 (-) 19 OUT4 (+) 14 IN4 21 RL C1 PW-GND4 24 OUT4 (-) 23 PRE-GND 13 RIP 10 C2 STBY 4 H-SW 25 MUTE 22 PLAY C4 R1 MUTE : PRE-GND : PW-GND 5V C3 2 2002-11-06 TB2901H Caution and Application Method (Description is made only on the single channel.) 1. Voltage Gain Adjustment This IC has no NF (negative feedback) Pins. Therefore, the voltage gain can not be adjusted, but it makes the device a space and total costs saver. Amp. 2A Amp. 1 Input Amp. 2B Figure 1 Block Diagram The voltage gain of amp.1 : GV1 = 0dB The voltage gain of amp.2A, B : GV2 = 20dB The voltage gain of BTL connection : GV (BTL) = 6dB Therefore, the total voltage gain is decided by expression below. GV = GV1 + GV2 + GV (BTL) = 0 + 20 + 6 = 26dB 2. Standby SW Function (pin 4) By means of controlling pin 4 (standby pin) to High and Low, the power supply can be set to ON and OFF. The threshold voltage of pin 4 is set at about 3VBE (typ.), and the power supply current is about 2 mA (typ.) in the standby state. VCC ON Power OFF 4 10 kW 2 VBE to BIAS CUTTING CIRCUIT Control Voltage of Pin 4: VSB Standby ON OFF Power OFF ON VSB (V) 0~1.5 3.5~6 V When changing the time constant of pin 4, check the pop noise. Figure 2 With pin 4 set to High, Power is turned ON Advantage of Standby SW (1) (2) Since VCC can directly be controlled to ON or OFF by the microcomputer, the switching relay can be omitted. Since the control current is microscopic, the switching relay of small current capacity is satisfactory for switching. 3 2002-11-06 TB2901H Large current capacity switch Battery Relay Battery VCC VCC - Conventional Method - From microcomputer Small current capacity switch Battery From microcomputer Battery Stand-By VCC Stand-By VCC - Standby Switch Method - Figure 3 3. Muting Function (pin 22) Audio muting function is enabled when pin 22 is Low. When the time constant of the muting function is determined by R1 and C4, it should take into account the pop noise. The pop noise which is generated when the power or muting function is turned ON/OFF will vary according to the time constant. (Refer to Figure 4 and Figure 5.) The pin 22 is designed to operate off 5 V. Moreover, this terminal (pin 22) serves as the source switch of current of an internal mute circuit. And it is designed so that the discharge current of this terminal (pin 22) may serve as 200 mA. The outside pull-up resistor R1 is determind on the basic of this value. ex) When control voltage is changed in to 6 V from 5 V. 6 V/5 V 47 k = 56 k To obtain enough mute attenuation, a series resistor, R1 at pin 22 should be 47 kW or more. ATT - VMUTE 20 0 VCC = 13.2 V f = 1kHz RL = 4 W VOUT = 20dBm (dB) Mute attenuation ATT -20 -40 -60 -80 -100 -120 5V 1 kW Mute ON/OFF control R1 22 C4 0 0.5 1 1.5 2 2.5 3 Pin 22 control voltage: VMUTE (V) Figure 4 Muting Function Figure 5 Mute Attenuation - VMUTE (V) 4 2002-11-06 TB2901H 4. High-Side Switch Pin 25 of this device is used in concerned with VCC as a high-side switch which operates with the standby pin. Thus, both the power amp IC and the connected external unit (the hideaway unit) can be turned ON/OFF by using of the standby switch. 5. Pop Noise Suppression Since the AC-GND pin (pin 16) is used as the NF pin for all amps, the ratio between the input capacitance (C1) and the AC-to-GND capacitance (C6) should be 1:4. Also, if the power is turned OFF before the C1 and C6 batteries have been completely charged, pop noise will be generated because of the DC input umbalance. To counteract the noise, it is recommended that a longer charging time be used for C2 as well as for C1 and C6. Note that the time which audio output takes to start will be longer, since the C2 makes the muting time (the time from when the power is turned ON to when audio output starts) is fix. The pop noise which is generated when the muting function is turned ON/OFF will vary according to the time constant of C4. The greater the capacitance, the lower the pop noise. Note that the time from when the mute control signal is applied to C4 to when the muting function is turned ON/OFF will be longer. 6. External Component Constants Component Recommended Name Value Effect Purpose Lower than recommended value Cut-off frequency is increased Powering ON/OFF is faster Higher than recommended value Cut-off frequency is reduced Powering ON/OFF takes longer Notes C1 0.22 mF 10 mF 0.1 mF To eliminate DC Pop noise is generated when VCC is ON C2 To reduce ripple To provide sufficient oscillation margin To reduce pop noise Ripple filter NF for all outputs C3 Reduces noise and provides sufficient oscillation margin High pop noise. Duration until Low pop noise. Duration until muting function is turned muting function is turned ON/OFF is short ON/OFF is long Power supply ripple filtering Pop noise is suppressed when C1:C6 = 1:4 Pop noise is generated when VCC is ON C4 C5 C6 1 mF 3900 mF 1 mF Note: If recommended value is not used. 5 2002-11-06 TB2901H Maximum Ratings (Ta = 25C) Characteristics Peak supply voltage (0.2 s) DC supply voltage Operation supply voltage Output current (peak) Power dissipation Operation temperature Storage temperature Symbol VCC (surge) VCC (DC) VCC (opr) IO (peak) PD (Note 2) Topr Tstg Rating 50 25 18 9 125 -40~85 -55~150 Unit V V V A W C C Note 2: Package thermal resistance qj-T = 1C/W (typ.) (Ta = 25C, with infinite heat sink) Electrical Characteristics Characteristics Quiescent current (unless otherwise specified, VCC = 13.2 V, f = 1 kHz, RL = 4 W, Ta = 25C) Symbol ICCQ POUT MAX (1) Output power POUT MAX (2) POUT (1) POUT (2) POUT MAX (3) Output power (RL = 2 W) POUT MAX (4) POUT (3) POUT (4) Total harmonic distortion Voltage gain Voltage gain ratio Output noise voltage THD GV DGV VNO (1) VNO (2) Ripple rejection ratio Cross talk Output offset voltage Input resistance Standby current Standby control voltage R.R. C.T. VOFFSET RIN ISB VSB H VSB L Mute control voltage VM H VM L Mute attenuation ATT M Test Circuit 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 VIN = 0 VCC = 14.4 V, max POWER VCC = 13.7 V, max POWER VCC = 14.4 V, THD = 10% THD = 10% VCC = 14.4 V, max POWER VCC = 13.7 V, max POWER VCC = 14.4 V, THD = 10% THD = 10% POUT = 5 W VOUT = 0.775 Vrms VOUT = 0.775 Vrms Rg = 0 W, DIN45405 Rg = 0 W, BW = 20 Hz~20 kHz frip = 100 Hz, Rg = 620 W Vrip = 0.775 Vrms Rg = 620 W VOUT = 0.775 Vrms 3/4 3/4 Standby condition POWER: ON POWER: OFF MUTE: OFF MUTE: ON, R1 = 47 kW MUTE: ON VOUT = 7.75 Vrms(R)Mute: OFF Test Condition Min 3/4 3/4 3/4 3/4 23 3/4 3/4 3/4 42 3/4 24 -1.0 3/4 3/4 50 3/4 -150 3/4 3/4 3.5 0 3.0 0 80 Typ. 200 47 43 29 25 80 77 55 45 0.015 26 0 100 90 60 70 0 90 2 3/4 3/4 3/4 3/4 90 Max 400 3/4 3/4 3/4 3/4 3/4 3/4 3/4 3/4 0.15 28 1.0 3/4 200 3/4 3/4 150 3/4 10 6.0 V 1.5 6.0 V 0.5 3/4 dB % dB dB mVrms dB dB mV kW mA W W Unit mA High-Side Switch Output current Difference voltage between VCC and output IO DVo 3/4 3/4 IO = 400 mA, +B = 9.6 V 400 3/4 3/4 0.25 3/4 0.6 mA V 6 2002-11-06 TB2901H Test Circuit 3900 mF 1 TAB 20 VCC1 6 VCC2 OUT1 (+) 9 0.22 mF C1 11 IN1 PW-GND1 8 OUT1 (-) 7 RL OUT2 (+) 0.22 mF C1 12 IN2 5 RL PW-GND2 2 OUT2 (-) 3 1 mF C6 16 AC-GND OUT3 (+) 0.1 0.22 mF 17 RL C1 15 IN3 PW-GND3 18 OUT3 (-) 19 OUT4 (+) 0.22 mF C1 14 IN4 21 RL PW-GND4 24 OUT4 (-) 23 PRE-GND 13 RIP 10 10 mF C2 STBY 4 H-SW 25 MUTE 22 1 mF C4 47 kW R1 PLAY MUTE : PRE-GND : PW-GND 5V C3 0.1 mF C5 7 2002-11-06 TB2901H THD - POUT (ch1) 100 50 VCC = 13.2 V RL = 4 W 100 Hz : ~30 kHz 10 5 1kHz : 400 Hz~30 kHz 10 kHz : 400 Hz~ 20 kHz : 400 Hz~ 100 THD - POUT (ch2) VCC = 13.2 V VCC = 13.2 V 50 RL = 4 W RL = 4 W 30 Filterch Filter Hz : ~30 kHz 100 100 Hz : 400 Hz~30 1kHz : ~300 kHz kHz 10 1kHz : 400 Hz~30 kHz 10 kHz : 400 Hz~ 5 30 Filter (%) 3 (%) 3 10 kHz : 400 Hz~ 20 kHz : 400 Hz~ 30 kHz : 400 Hz~ THD 1 0.5 0.3 20 kHz THD 1 0.5 0.3 20 kHz Total harmonic distortion 10 kHz Total harmonic distortion 10 kHz 0.1 0.05 0.03 1 kHz 0.01 0.005 0.003 f = 100 Hz 0.1 0.05 0.03 1 kHz 0.01 f = 100 Hz 0.005 0.003 0.001 0.1 0.3 0.5 1 3 5 10 30 50 100 0.001 0.1 0.3 0.5 1 3 5 10 30 50 100 Output power POUT (W) Output power POUT (W) THD - POUT (ch3) 100 50 VCC = 13.2 V RL = 4 W 100 Hz : ~30 kHz 10 5 1kHz : 400 Hz~30 kHz 10 5 10 kHz : 400 Hz~ 20 kHz : 400 Hz~ 100 50 VCC = 13.2 V RL = 4 W THD - POUT (ch4) 30 Filter 30 Filter 100 Hz : ~30 kHz 1kHz : 400 Hz~30 kHz 10 kHz : 400 Hz~ 20 kHz : 400 Hz~ (%) 3 (%) 3 THD 1 0.5 0.3 20 kHz THD 1 0.5 0.3 20 kHz Total harmonic distortion Total harmonic distortion 10 kHz 10 kHz 0.1 0.05 0.03 1 kHz 0.01 0.005 0.003 f = 100 Hz 0.1 0.05 0.03 1 kHz 0.01 f = 100 Hz 0.005 0.003 0.001 0.1 0.3 0.5 1 3 5 10 30 50 100 0.001 0.1 0.3 0.5 1 3 5 10 30 50 100 Output power POUT (W) Output power POUT (W) 8 2002-11-06 TB2901H THD - POUT (ch1) 100 50 30 VCC = 13.2 V RL = 4 W f = 1 kHz Filter 10 5 400 Hz~30 kHz 10 5 13.2 V 100 50 30 VCC = 13.2 V RL = 4 W f = 1 kHz Filter THD - POUT (ch2) 13.2 V 400 Hz~30 kHz (%) 3 (%) 3 THD 1 0.5 0.3 VCC = 9.0 V 16.0 V THD 1 0.5 0.3 VCC = 9.0 V 16.0 V Total harmonic distortion 0.1 0.05 0.03 Total harmonic distortion 0.1 0.05 0.03 0.01 0.005 0.003 0.01 0.005 0.003 0.001 0.1 0.3 0.5 1 3 5 10 30 50 100 0.001 0.1 0.3 0.5 1 3 5 10 30 50 100 Output power POUT (W) Output power POUT (W) THD - POUT (ch3) 100 50 30 VCC = 13.2 V RL = 4 W f = 1 kHz Filter 10 5 400 Hz~30 kHz 10 5 13.2 V 100 50 30 VCC = 13.2 V RL = 4 W f = 1 kHz Filter THD - POUT (ch4) 13.2 V 400 Hz~30 kHz (%) 3 (%) 3 THD 1 0.5 0.3 VCC = 9.0 V 16.0 V THD 1 0.5 0.3 VCC = 9.0 V 16.0 V Total harmonic distortion 0.1 0.05 0.03 Total harmonic distortion 0.1 0.05 0.03 0.01 0.005 0.003 0.01 0.005 0.003 0.001 0.1 0.3 0.5 1 3 5 10 30 50 100 0.001 0.1 0.3 0.5 1 3 5 10 30 50 100 Output power POUT (W) Output power POUT (W) 9 2002-11-06 TB2901H muteATT - f 0 VCC = 13.2 V RL = 4 W VOUT = 20dBm -40 0 VCC = 13.2 V R.R. - f Mute attenuation muteATT (dB) -20 Ripple rejection ratio R.R. (dB) -20 RL = 4 W RG = 620 W Vrip =0dBm -60 -40 -80 1 ch ~4ch -100 4ch -60 3ch 1ch 2ch 100 1k 10 k 100 k -120 10 100 1k 10 k 100 k -80 10 frequency f (Hz) frequency f (Hz) GV - f 40 3 THD - f VCC = 13.2 V RL = 4 W POUT = 5 W No filter (%) 1 0.3 0.1 0.03 0.01 (dB) 30 1 ch ~4ch Voltage gain 20 Total harmonic distortion GV THD 4ch 2ch 10 VCC = 13.2 V RL = 4 W VOUT = 0dBm 3ch 0.003 0.001 10 1ch 0 10 100 1k 10 k 100 k 100 1k 10 k 100 k frequency f (Hz) frequency f (Hz) 10 2002-11-06 TB2901H VIN - POUT (ch1) 40 1 kHz 100 Hz 40 1 kHz VIN - POUT (ch2) 100 Hz POUT (W) 30 POUT (W) 10 kHz 30 10 kHz Output power 10 VCC = 13.2 V RL = 4 W No filter Output power 20 f = 20 kHz 20 f = 20 kHz 10 VCC = 13.2 V RL = 4 W No filter 0 0 2 4 6 8 10 0 0 2 4 6 8 10 Input voltage VIN (Vrms) Input voltage VIN (Vrms) VIN - POUT (ch3) 40 1 kHz 100 Hz 40 1 kHz VIN - POUT (ch4) 100 Hz POUT (W) 30 10 kHz POUT (W) 30 10 kHz f = 20 kHz 20 Output power 10 VCC = 13.2 V RL = 4 W No filter Output power 20 f = 20 kHz 10 VCC = 13.2 V RL = 4 W No filter 0 0 2 4 6 8 10 0 0 2 4 6 8 10 Input voltage VIN (Vrms) Input voltage VIN (Vrms) 11 2002-11-06 TB2901H C.T. - f (ch1) 0 VCC = 13.2 V RL = 4 W VOUT = 0dBm RG = 620 W 0 VCC = 13.2 V RL = 4 W VOUT = 0dBm RG = 620 W C.T. - f (ch2) C.T. (dB) -40 C.T. (dB) ch2 -20 -20 -40 Cross talk Cross talk -60 ch3 ch4 -60 ch1 ch3 ch4 -80 10 100 1k 10 k 100 k -80 10 100 1k 10 k 100 k frequency f (Hz) frequency f (Hz) C.T. - f (ch3) 0 VCC = 13.2 V RL = 4 W VOUT = 0dBm RG = 620 W 0 VCC = 13.2 V RL = 4 W VOUT = 0dBm RG = 620 W C.T. - f (ch4) C.T. (dB) -40 C.T. (dB) ch1 ch2 ch4 -20 -20 -40 Cross talk -60 Cross talk -60 ch1 ch3 ch2 -80 10 100 1k 10 k 100 k -80 10 100 1k 10 k 100 k frequency f (Hz) frequency f (Hz) 12 2002-11-06 TB2901H VNO - Rg 300 80 VCC = 13.2 V RL = 4 W f = 1 kHz RL = 4 W 4ch drive 60 PD - POUT (mVrms) (W) Filter ~20 kHz 200 18 V VNO PD Output noise voltage Power dissipation 16 V 40 100 1ch~4ch 20 9.0 V 13.2 V 0 10 100 1k 10 k 100 k 0 0 10 15 20 25 Signal source resistance Rg (9) Output power POUT (W) THD - f 3 POmax - VCC 100 (%) 1 0.3 0.1 0.03 0.01 0.003 (dB) VCC = 13.2 V RL = 2 W POUT = 5 W f = 1 kHz 80 RL = 2 W All drive POmax Maximum output power ch4 ch3 1 10 100 THD Total harmonic distortion 60 40 20 ch1 ch2 0.001 0.01 0.1 0 8 10 12 14 16 18 frequency f (kHz) Supply voltage VCC (V) PD - POUT 120 f = 1 kHz 100 VCC = 16.0 V RL = 2 W All drive 400 RL = VIN = 0 ICCQ - VCC (mA) Output current ICCQ (W) 300 Power dissipation PD 80 60 13.2 V 200 40 100 20 9.0 V 0 0 10 20 30 40 50 60 70 0 0 10 20 30 Output power POUT/ch (C) Supply voltage VCC (V) 13 2002-11-06 TB2901H THD - POUT (ch1) 100 VCC = 13.2 V 50 30 RL = 2 W All drive 50 30 100 VCC = 13.2 V RL = 2 W All drive THD - POUT (ch2) (%) (%) 10 5 3 f = 20 kHz 1 0.5 0.3 10 kHz 10 5 3 f = 20 kHz THD Total harmonic distortion Total harmonic distortion THD 1 0.5 0.3 10 kHz 0.1 1 kHz 0.05 0.03 100 Hz 0.01 0.1 0.1 0.05 0.03 1 kHz 100 Hz 0.01 0.1 0.3 0.5 1 3 5 10 30 50 100 0.3 0.5 1 3 5 10 30 50 100 Output power POUT (W) Output power POUT (W) THD - POUT (ch3) 100 VCC = 13.2 V 50 30 RL = 2 W All drive 50 30 100 VCC = 13.2 V RL = 2 W All drive THD - POUT (ch4) (%) 10 5 3 f = 20 kHz (%) THD Total harmonic distortion 10 5 3 f = 20 kHz 1 0.5 0.3 10 kHz Total harmonic distortion THD 1 0.5 0.3 10 kHz 0.1 0.05 0.03 1 kHz 0.1 1 kHz 0.05 0.03 100 Hz 0.01 0.1 0.01 0.1 100 Hz 0.3 0.5 1 3 5 10 30 50 100 0.3 0.5 1 3 5 10 30 50 100 Output power POUT (W) Output power POUT (W) 14 2002-11-06 TB2901H THD - POUT (ch1) 100 f = 1 kHz 50 30 RL = 2 W All drive 50 13.2 V 30 100 f = 1 kHz RL = 2 W All drive THD - POUT (ch2) 13.2 V (%) THD 3 THD 5 (%) 10 10 5 3 Total harmonic distortion 1 0.5 0.3 VCC = 9.0 V Total harmonic distortion 1 0.5 0.3 VCC = 9.0 V 0.1 0.05 0.1 0.05 0.03 16.0 V 0.03 16.0 V 0.01 0.1 0.3 0.5 1 3 5 10 30 50 100 0.01 0.1 0.3 0.5 1 3 5 10 30 50 100 Output power POUT (W) Output power POUT (W) THD - POUT (ch3) 100 f = 1 kHz 50 30 RL = 2 W All drive 50 13.2 V 30 100 f = 1 kHz RL = 2 W All drive THD - POUT (ch4) 13.2 V (%) 10 5 3 (%) THD Total harmonic distortion 10 5 3 Total harmonic distortion THD 1 0.5 0.3 VCC = 9.0 V 1 0.5 0.3 VCC = 9.0 V 0.1 0.05 0.03 0.1 0.05 16.0 V 0.03 16.0 V 0.01 0.1 0.3 0.5 1 3 5 10 30 50 100 0.01 0.1 0.3 0.5 1 3 5 10 30 50 100 Output power POUT (W) Output power POUT (W) 15 2002-11-06 TB2901H Package Dimensions Weight: 7.7 g (typ.) 16 2002-11-06 TB2901H RESTRICTIONS ON PRODUCT USE 000707EBF * TOSHIBA is continually working to improve the quality and reliability of its products. Nevertheless, semiconductor devices in general can malfunction or fail due to their inherent electrical sensitivity and vulnerability to physical stress. It is the responsibility of the buyer, when utilizing TOSHIBA products, to comply with the standards of safety in making a safe design for the entire system, and to avoid situations in which a malfunction or failure of such TOSHIBA products could cause loss of human life, bodily injury or damage to property. In developing your designs, please ensure that TOSHIBA products are used within specified operating ranges as set forth in the most recent TOSHIBA products specifications. Also, please keep in mind the precautions and conditions set forth in the "Handling Guide for Semiconductor Devices," or "TOSHIBA Semiconductor Reliability Handbook" etc.. * The TOSHIBA products listed in this document are intended for usage in general electronics applications (computer, personal equipment, office equipment, measuring equipment, industrial robotics, domestic appliances, etc.). These TOSHIBA products are neither intended nor warranted for usage in equipment that requires extraordinarily high quality and/or reliability or a malfunction or failure of which may cause loss of human life or bodily injury ("Unintended Usage"). Unintended Usage include atomic energy control instruments, airplane or spaceship instruments, transportation instruments, traffic signal instruments, combustion control instruments, medical instruments, all types of safety devices, etc.. Unintended Usage of TOSHIBA products listed in this document shall be made at the customer's own risk. * This product generates heat during normal operation. However, substandard performance or malfunction may cause the product and its peripherals to reach abnormally high temperatures. The product is often the final stage (the external output stage) of a circuit. Substandard performance or malfunction of the destination device to which the circuit supplies output may cause damage to the circuit or to the product. * The products described in this document are subject to the foreign exchange and foreign trade laws. * The information contained herein is presented only as a guide for the applications of our products. No responsibility is assumed by TOSHIBA CORPORATION for any infringements of intellectual property or other rights of the third parties which may result from its use. No license is granted by implication or otherwise under any intellectual property or other rights of TOSHIBA CORPORATION or others. * The information contained herein is subject to change without notice. 17 2002-11-06 |
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