-
PDF
MAX220-MAX249.pdf
= +4.75V V 1μF CAPS O 6 -6 5 0.1μF CAPS -8 V- V- V+ LOADED, NO LOAD ON V- -10 4 -10V 0 5 10 15 20 25 0 10 20 30 40 50 60 500μs/div LOAD CURRENT (mA) DATA RATE (kb/s) 4 Maxim Integrated MAX220–MAX249 +5V-Powered
in „16 Wide SO Gehäuseform SMD-IC“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
CY7C65620_CY7C65630_38-08037_AA.pdf
CY7C65630 Pin Configuration [2] Figure 1. 56-pin Quad Flat Pack No Leads (8 mm × 8 mm) C C d d / / C s C s 4 4 ] ] ] ] K R # # # [ # [ D C T P E E D C R R R R D _ _ D S F B E N C W V W V N P P N E E M R G V P O P O G S S G R S A G 56 55 54 53 52 51 50 49 48 47 46 45 44 43 DD–[4]/NC 1 42 AMBER#[3]/NC DD
in „PIN mit ground verbinden ja/nein?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
MAX3293-MAX3295.pdf
A NO LOAD 2 NO LOAD 2 2 20 TA= +85°C A NO SWITCHING A 1.6 A M M 1.5 M ) M / A TA= +125°C A µ ( ( T 4 N 15 N E1.2 E E R 9 U U 1.0 C C 10 TA= +25°C Y Y0.8 2 L P L U U U 3 S TA= -40°C S 0.5 S 5 0.4 X A 0 0 0 0 5 10 15 20 -40 -10 20 50 80 110 -40 -10 20 50 80 110 / DATA RATE (Mbps) TEMPERATURE (°C) TEMPERATURE
in „Stromaufnahme eines RS422-Receivers anhand von Datenblatt ermitteln“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
cp2108-datasheet-1509353.pdf
T I E S G 0 0 0 0 0 E - + B R S D X X T T T S C I X R D D V V V V T R R C D D D R T 4 3 2 1 0 9 8 7 6 5 4 3 2 1 0 9 6 6 6 6 6 5 5 5 5 5 5 5 5 5 5 4 RX3 1 48 RX1 VSSHD 2 47 RTS1 VIOHD 3 46 CTS1 TX3 4 45 DTR1 CTS3 5 44 DSR1 RTS3 6 43 DCD1 RI3 7 42 RI1 DCD3 8 41 GPIO.0 64 pin QFN DSR3 9 (TopView) 40 GPIO.1 DTR3 10 39 VIO RI2 11 38 GPIO.2 DCD2 12 37 GPIO.3 CTS2 13 36 NC RTS2 14 VSS 35 NC RX2 15 34 GPIO.4 TX2 16 33 GPIO.5 1 1 1 2 2 2 2 2 2 2 2 2 2 3 3 3 2 2 D D 5 4 3 S 2 0 9 8 7 6 R R N N . . . I
in „[V] 4St. Silabs 4-fach UART Bridge CP2108-GM (QFN64) (12€)“ · Markt ·
-
PDF
cp2108-datasheet-1509353.pdf
T I E S G 0 0 0 0 0 E - + B R S D X X T T T S C I X R D D V V V V T R R C D D D R T 4 3 2 1 0 9 8 7 6 5 4 3 2 1 0 9 6 6 6 6 6 5 5 5 5 5 5 5 5 5 5 4 RX3 1 48 RX1 VSSHD 2 47 RTS1 VIOHD 3 46 CTS1 TX3 4 45 DTR1 CTS3 5 44 DSR1 RTS3 6 43 DCD1 RI3 7 42 RI1 DCD3 8 41 GPIO.0 64 pin QFN DSR3 9 (TopView) 40 GPIO.1 DTR3 10 39 VIO RI2 11 38 GPIO.2 DCD2 12 37 GPIO.3 CTS2 13 36 NC RTS2 14 VSS 35 NC RX2 15 34 GPIO.4 TX2 16 33 GPIO.5 1 1 1 2 2 2 2 2 2 2 2 2 2 3 3 3 2 2 D D 5 4 3 S 2 0 9 8 7 6 R R N N . . . I
in „[V] 3St. Silabs 4-fach UART Bridge CP2108-GM (QFN64)“ · Markt ·
-
PDF
74HCT00.pdf
High Level V = I =-20 A 4.4 4.5 4.4 4.4 OH I O Output Voltage 4.5 VIH V or IO=-4.0 mA 4.18 4.31 4.13 4.10 V IL V OL Low Level Output VI= IO= 20 A 0.0 0.1 0.1 0.1 Voltage V 4.5 IH V or IO= 4.0 mA 0.17 0.26 0.33 0.40 V IL II Input
in „Pegelwandler 3.3v -> 5v“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
MM1026AD_to_MM1245CF.pdf
Ta=25°C, V CC=V RS=5V, RRS=10kΩ) Item Symbol Measurement conditions Min. Typ. Max. Units MM1026 2.0 mA Consumption MM1245 ICC VCC=5V, V BAT=3V, IO1=0mA 0.6 1.0 1.4 mA current MM1080 60 120 µA MM1134 1.4 2.2 mA I/O voltage difference 1 V SA1 VCC=5V, V BAT=3V, IO1=1mA 0.03 0.05 V Output voltage 1 VO1 VCC
in „Suche Chip aus Mega-Drive-2-Spielplatine“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TDA2030_-_14W_Hi-Fi_AUDIO_AMPLIFIER_-_STMicroelectronics.pdf
3 ⋅C/W ELECTRICAL CHARACTERISTICS (Refer to the test circuit, V = 〉 14V,T = 25⋅C unless otherwise s amb specified) Symbol Parameter Test conditions Min. Typ. Max. Unit V Supply voltage 〉 6 〉 18 V s d Quiescent drain current 40 60 mA b Input bias current 0.2 2 A V = 〉 18V Vos Input offset voltage s
in „MacGyver-OPV :)“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
SCT2024V01_03.pdf
1V<V OUT<4V A 40 m (T O30 I 20 10 0 0 0.5 1 1.5 2 2.5 3 3.5 4 REXT(KΩ) According to SCT2024’ I V curve, the output voltage should be larger than 1V to get 45 mA constant current. By applying proper output voltage
in „riesige LED-Matrix“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
SCT2024V01_03.pdf
1V<V OUT<4V A 40 m (T O30 I 20 10 0 0 0.5 1 1.5 2 2.5 3 3.5 4 REXT(KΩ) According to SCT2024’ I V curve, the output voltage should be larger than 1V to get 45 mA constant current. By applying proper output voltage
in „16Segmentanzeige mit MAX7219 o.ä. steuern?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
SCT2024CSSG.pdf
1V<V OUT<4V A 40 m (T O30 I 20 10 0 0 0.5 1 1.5 2 2.5 3 3.5 4 REXT(KΩ) According to SCT2024’ I V curve, the output voltage should be larger than 1V to get 45 mA constant current. By applying proper output voltage
in „LEDs flackern unregelmäßig bei geringer Helligkeit“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TLC5922.pdf
Dot-Correction Data Input Mode 9 TLC5922 www.ti.com SLVS486A–SEPTEMBER 2003–REVISED MARCH 2005 f 1 a / B a e n S D c O M f B d C / S o u f O M M p / S O I n M n O O f / S f n M / S O n L t O D l f B e c / S o C O L M u f n u / I ts O 2 f B s / S t 1 4 O M p f B d t n S tp O M C B B D S h D S 2 M t t L th p 1 I t C S t e D L D c e C 0 o th M C t D C S D M B d C S tp D M 0 ts C B 4 D L p t u 0l C B n tw L D L I C a e f D c 3 d C s o t M B C D S 1 2 D M p B p d t D S t t 0 M tw 3 2 h d a t tp a D c d y f B o t 1 n
in „daisy-chaining Verzögerung“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
RP40_E.pdf
to 90% Series Selection Guide 12V, 24V and 48V Input Types Part Number Input Output Output Input4) Efficiency Capacitive) 40Watt Range Voltage Current Current Load max. VDC VDC mA mA % µF Single,Dual, RP40-123.3SE 9-18 3.3 10000 3530 85 25800 RP40-1205SE 9-18 5 8000 4170 87 13600 PositiveDual & RP40
in „Dualer +- Spannungsregler?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
22103a.pdf
100% tested. FIGURE 2-9: TYPICAL PERFORMANCE CURVE FOR SPI TV SPECIFICATION (PARAM #12) T vs V DD 40 35 T = +125°C 30 s 25 n T = +85°C ( 20 T = -40°C V T 15 10 T = +25°C 5 0 1.5 2 2.5 3 3.5 4 4.5 5 5.5 V DD (V) DS22103A-page 42 © 2008 Microchip Technology Inc. MCP23018/MCP23S18 3.0 PACKAGING INFORMATION
in „MCP23S18 I/O Expander“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
datasheet.pdf
33 PB12 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 3 4 4 4 5 6 7 4 5 0 1 2 0 1 1 1 A _ _ A A A A C C B B B 1 1 _ _ P S D P P P P P P P P P P P S D V V V V ai14392 Figure 6. STM32F103xx performance line LQFP48 pinout 3 3 T D S 9 8 O 7 6 5 4 3 1 1 D S B B
in „ARM Audio Spektrum Analyser“ · Digitale Signalverarbeitung / DSP / Machine Learning ·
-
PDF
TLE4202b_Motortreiber.pdf
Symbol Limit Values Unit Test Condition Test min. typ. max. Circuit General Data Quiescent current S – 15 25 mA S = 1 1 Open-loop gain GVO 50 80 – dB f= 500 Hz 1 VS 7 V 16 V T = – 40 °C to C 110 °C Input Characteristics Input current (pins I1, I2) I 1, 7 – 1 3 A VI 1, 120 2 Input current I 2 – 35 70
in „Snubber-Netzwerk bei TLE4202B vergessen“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
TLE4202B.pdf
Symbol Limit Values Unit Test Condition Test min. typ. max. Circuit General Data Quiescent current S – 15 25 mA S = 1 1 Open-loop gain GVO 50 80 – dB f= 500 Hz 1 VS 7 V 16 V T = – 40 °C to C 110 °C Input Characteristics Input current (pins I1, I2) I 1, 7 – 1 3 A VI 1, 120 2 Input current I 2 – 35 70
in „[V] Konvolut Motortreiber : 22St L293DNE-DIL16 und 9St. TLE4202B“ · Markt ·
-
PDF
TLE4202B.pdf
Symbol Limit Values Unit Test Condition Test min. typ. max. Circuit General Data Quiescent current S – 15 25 mA S = 1 1 Open-loop gain GVO 50 80 – dB f= 500 Hz 1 VS 7 V 16 V T = – 40 °C to C 110 °C Input Characteristics Input current (pins I1, I2) I 1, 7 – 1 3 A VI 1, 120 2 Input current I 2 – 35 70
in „[V] Motortreiber 2x L6203 Multivatt11 und 5x Siemens TLE4205“ · Markt ·
-
PDF
TLE4202B.pdf
Symbol Limit Values Unit Test Condition Test min. typ. max. Circuit General Data Quiescent current S – 15 25 mA S = 1 1 Open-loop gain GVO 50 80 – dB f= 500 Hz 1 VS 7 V 16 V T = – 40 °C to C 110 °C Input Characteristics Input current (pins I1, I2) I 1, 7 – 1 3 A VI 1, 120 2 Input current I 2 – 35 70
in „[V] Konvolut DC Motortreiber: L293D, L6203, TLE4202B, TLE4205“ · Markt ·
-
PDF
HEDS973X.pdf
Operating Range, Typical at 25°C. Parameter Symbol Min. Typ. Max. Units Notes Supply Current I 17 40 mA CC High Level Output Voltage V OH 2.4 V OH = -200 A Low Level Output Voltage V OL 0.4 V OL = 3.86 mA Rise Time tr 180 ns CL= 25 pF, Fall Time t 40 ns RL= 3.3 k pull-up f Encoding Characteristics Encoding
in „Unbekannte opt. Sensoren von Agilent“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
SCANSTA476.pdf
Data Storage, and Networking g product operates over the industrial temperature range of equipment V −40˚C to +85˚C. l a Block Diagram g e M o i o r 20083521 © 2005 National Semiconductor CorporatDS200835 www.national.com 6 4 A Connection Diagram T S A C S 20083522 DAP = GND (Top View) Pin Descriptions
-
PDF
CY7C1041DV33-10ZSXI.pdf
10 (Industrial) –12 (Automotive) Unit Maximum Access Time 10 12 ns Maximum Operating Current 90 95 mA Maximum CMOS Standby Current 10 15 mA Pin Configuration Figure 1. 44-Pin SOJ/TSOP II A0 1 44 A 17 A1 2 43 A 16 A 3 A 2 42 15 A3 4 41 OE A4 5 40 BHE CE 6 39 BLE IO 7 38 IO 0 15 IO1 8 37 IO14 IO2 9 36
-
PDF
U243B.pdf
9 ... 15 V Supply current, Pins 2 and 6 dark phase or stand-by S 4.5 8 mA Supply current, Pins 2 and 6 bright phase S 7.0 11 mA Z–diode limitation IS2, 6 70 mA Pins 2 and 6 V S 23 V Relay output, saturation voltage I0= 150 mA, V S 9 V Pin 3 V O 1.0 V Relay output,
in „Blinkgeber Motorrad“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Avantek_Octave_Band_Series_YIG.pdf
Unless Otherwise Noted) Model No. AV-7104 AV-7203 AV-7204 AV-7224 Frequency Range, Min. 1 - 2.2 GHz 2 - 4 GHz 2 - 4 GHz 2 - 4 GHz Power Output into 50 ohm load, Min. at 25°C 40mW/+16dBm 25mW/+14 dBm 40mW/+16dBm 100mW/+20 dBm Power Output Variation vs. Frequency, Max. 3.0 dB 3.0 dB 3.0 dB 3.0 dB Operating
in „HP Signalgenerator reparierbar?“ · HF, Funk und Felder ·
-
PDF
Das_Bandfilter_in_der_Praxis_-_Funkbastler_1929.pdf
Internationaler Fern-Nachtbetrieb ist im | gespeist und hatte ein Input von 15 W att. Meine Antenne 40 m-Band zur Zeit wegen der vom Europaverkehr her- ist 37 m lang, 20 m hoch. Die Länge des Gegengewichts rührenden Störungen (QRM) fast unmöglich; 2. das 80 m- beträgt 4,5 m. Ich hatte bis jetzt QSO's
in „Ostern- Vielleicht mal wieder Detektorempfänger ?“ · HF, Funk und Felder ·
-
PDF
KB.pdf
Input Capacitance Cibo pF (VEB = 0.5 VdcC I = 0, f = 1.0 MHz) – 25 3. Pulse Test: Pulse Width ▯ 300 ▯s, Duty Cycle ▯ 2.0%. TURN-ON TIME TURN-OFF TIME -1.0 V VCC +VBB VCC +40 V +40 V 5.0 ▯s 100 R 100 R L L +10 V OUTPUT OUTPUT V R V R in B in B 0 r = 3.0 ns * CS▯ 6.0 pF * S ▯ 6.0 pF 5.0 ▯F 5.0 ▯F 100 100
in „Unbekanntes Bauteil - Aufschrift KB50“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ZBS14.pdf
Tab.2 [9] Warmwasseranschluss [10] Speicherladepumpe 2.4 Typenübersicht [11] Befestigungsmaterialbestehendaus: ZBS14/210S-3 MA 21 solar S0000 [11.1] Blechschrauben [11.2] SchraubenM5 ZBS14/210S-3 MA 23 solar S0000 [11.3] Dichtungen Tab.3 [11.4] GummidichtungenfürSpeicherladepumpe
in „Heatronic 3 Adapter (Junkers Heizung) fuer Raspberry Pi“ · Haus & Smart Home ·
-
PDF
uA78L05.pdf
5.4 6.6 V O O I IO = 1 to 70 mA V I 12 V 5.4 6.6 VO Line Regulation V I 8.5 to 20 V TJ= 25±C 200 mV V = 9 to 20 V T = 25±C 150 I J VO Load Regulation IO= 1 to 100 mA TJ= 25±C 60 mV IO = 1 to 40 mA TJ= 25
in „Alle GND-Pins am 78L05 belegen?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Rollix_Core_SRAM.pdf
B TxD_DEBUG CAP 22P NPO 1206 27 PD1 (SDA / INT1) (A12) PC4 40 MA13 MA13 MA12 B RxD_BT PD2 (RXD1 / INT2) (A13) PC5 MA13 TxD_BT 28 PD3 (TXD1 / INT3) (A14) PC6 41 MA14 MA14 MA14 IRIN 29 PD4 (ICP1) (A15) PC7 42 MA15 MA15 MA15 LCD_#RD 30 PD5 (XCK1) EX_CLK 31 PD6 (T1) MA[0..15] 2 4 32 33 Gnd PD7 (T2) (WR) PG0 34 #RAMWR 1 3 (RD) PG1 43 #RAMRD D D (ALE) PG2 ALE G G S2003 2 5 MIKROTASTER 4.3MM Vcc5 Vcc5 GnGdnd Gnd Gnd A A SCL SDA TitlRollix-P Core Computersysteme Schmid
in „Externes SRAM Problem:“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
2009171807_XINLUDA-XH2596-ADJ_C609783.pdf
capacitor discharged through a 1.5k resistor into each pin. Operating Conditions Temperature Range −40°C ≤ TJ≤ +125°C Supply Voltage 4.5V to 40V 2 XH2596 TO-263 3.3 5.0 12 ADJ XH2596-3.3 Electrical Characteristics Specifications with standard type face are for T = 25°C, and those with boldface type apply
in „SMD Spule 470 Aufdruck“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
SPICE_Parametern_von_Dioden.pdf
in der Abbildung 40 auf dem Frontpanel angezeigt. Abbildung 40: Frontpanel S, I uSd R 2.14 Linearisierte Kennlinie des Bahnwiderstandes R : S Der Bahnwiderstand R errechnet sich nach der Gleichung 14. Er macht sich im durch
in „Potenzierender Operationsverstärker, Daten Diode“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
nm93cs46m8.pdf
5 N 6 M August 1994/ 3 0 C 2 S 4 6 NM93CS06/CS46/CS56/CS66 / / (MICROWIRE TMBus Interface) 256-/1024-/2048-/4096-Bit 0 S 4 4 Serial EEPROM with Data Protect and Sequential Read - 6 4 C General Description 0 S The NM93CS06/CS46/CS56
in „Microwire Eeprom 93cs46 programmieren“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
UTC-Unisonic-Tech-MCR100G.pdf
ITM1A Peak @ T =A5°С 1.7 V Gate Trigger Current (Continuous DC) (Note3) GT VAK7Vdc, R =L00Ω, T =C5°С 40 200 μA TC=25°С VAK=7Vdc, initiating 0.5 5 mA Holding Current IH TC=-40°С current=20mA 10 mA TC=25°С 0.6 10 mA Latch Current IL VAK7V, Ig=200A TC=-40°С 15 mA Gate Trigger Voltage TC=25°С 0.62 0.8 V V
in „Piezo-Buzzer - was steckt da drin?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
DS_SX1261-2_V1.1-1307803.pdf
Configuration retained + RC64k - 1.2 - A with warm start ) IDDSBR STDBY_RC mode RC13M, XOSC OFF - 0.6 - mA IDDSBX STDBY_XOSC mode XOSC ON - 0.8 - mA DC-DC mode used - 2.1 - mA IDDFS Synthesizer mode LDO mode used - 3.55 - mA FSK 4.8 kb/s - 4.2 - mA LoRa® 125 kHz - 4.6 - mA Receive mode Rx Boosted , FSK 4.8 kb/s - 4.8 - mA DC-DC mode used Rx Boosted, LoRa® 125 kHz - 5.3 - mA IDDRX LoRa® 125 kHz, VBAT = 1.8 V - 8.2 - mA FSK 4.8 kb/s - 8 - mA Receive mode LoRa® 125 kHz - 8.8 - mA LDO mode used Rx Boosted, FSK
-
PDF
TS912_mit_Spice-Modell.pdf
) Vid Differential input voltage ±18 V (3) Vi Input voltage -0.3 to 18 V Iin Current on inputs ±50 mA Io Current on outputs ±130 mA Tstg Storage temperature -65 to +150 °C Tj Maximum junction temperature 150 °C (4) Thermal resistance junction-to-ambient Rthja DIP8 85 SO-8 °C/W 125 (4) Thermal resistance
in „Eingangswiderstand TS912 zwecks Berechnung Kompensationskondensator“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
ts912.pdf
) Vid Differential input voltage ±18 V (3) Vi Input voltage -0.3 to 18 V Iin Current on inputs ±50 mA Io Current on outputs ±130 mA Tstg Storage temperature -65 to +150 °C Tj Maximum junction temperature 150 °C (4) Thermal resistance junction-to-ambient Rthja DIP8 85 SO-8 °C/W 125 (4) Thermal resistance
in „Projekt: SerialComCNC Serielles Frontend für CNC GRBL mit ATMega“ · Projekte & Code ·
-
PDF
ts912.pdf
) Vid Differential input voltage ±18 V (3) Vi Input voltage -0.3 to 18 V Iin Current on inputs ±50 mA Io Current on outputs ±130 mA Tstg Storage temperature -65 to +150 °C Tj Maximum junction temperature 150 °C (4) Thermal resistance junction-to-ambient Rthja DIP8 85 SO-8 °C/W 125 (4) Thermal resistance
in „Projekt: SerialComCNC Serielles Frontend für CNC GRBL mit ATMega“ · Projekte & Code ·
-
PDF
PMEG2010BEA-2938513.pdf
unless otherwise specified. amb Symbol Parameter Conditions Min Typ Max Unit VF forward voltage IF= 0.1 mA [1] - 90 130 mV IF= 1 mA [1] - 150 190 mV IF= 10 mA [1] - 210 240 mV IF= 100 mA [1] - 280 330 mV IF= 500 mA [1] - 355 390 mV IF= 1000 mA; T amb = 25 °C [1] - 420 500 mV R reverse current V R 10 V [1]
in „Schottky diode / Uf kleiner als 0,2V“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
PMEG2010BEA-2938513.pdf
unless otherwise specified. amb Symbol Parameter Conditions Min Typ Max Unit VF forward voltage IF= 0.1 mA [1] - 90 130 mV IF= 1 mA [1] - 150 190 mV IF= 10 mA [1] - 210 240 mV IF= 100 mA [1] - 280 330 mV IF= 500 mA [1] - 355 390 mV IF= 1000 mA; T amb = 25 °C [1] - 420 500 mV R reverse current V R 10 V [1]
in „1N5817 Schottky Alternative“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
152998-da-01-en-Schottky_Diode_BAT64_04.pdf
Parameter Symbol Values Unit Diode reverse voltage VR 40 V Forward current F 250 mA Average forward current (50/60Hz, sinuFAVI 120 Surge forward current (t10ms) FSM 800 Total Power dissipation P mW tot T S 61 °C 250 Junction temperature Tj 150 °C Storage temperature
in „Frage zum Überspannungsschutz am µC“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
AT89S8252_Datasheet_doc0401.pdf
have been activated. 0401F–MICRO–11/03 1 Pin Configurations TQFP PDIP ) ) E 0 1 2 3 ) (T2) P1.0 1 40 VCC S 2 2) D D D D (T2 EX) P1.1 2 39 P0.0 (AD0) ( ( T( ( A(A(A ( . 3.2.1 . . C C . 1.2.3 . P1.2 3 38 P0.1 (AD1) P P P P P N V P P P P 0 0 P1.3 4 37 P0.2 (AD2) (SS) P1.4 5 36 P0.3 (AD3) 4 4 4 4 4 3 3
in „lichtschranke mit zählfunktion einer umdrehung“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
AT89S8252.pdf
have been activated. 0401F–MICRO–11/03 1 Pin Configurations TQFP PDIP ) ) E 0 1 2 3 ) (T2) P1.0 1 40 VCC S 2 2) D D D D (T2 EX) P1.1 2 39 P0.0 (AD0) ( ( T( ( A(A(A ( . 3.2.1 . . C C . 1.2.3 . P1.2 3 38 P0.1 (AD1) P P P P P N V P P P P 0 0 P1.3 4 37 P0.2 (AD2) (SS) P1.4 5 36 P0.3 (AD3) 4 4 4 4 4 3 3
in „UART_ Werte empfangen???“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
AT89S8252.pdf
have been activated. 0401F–MICRO–11/03 1 Pin Configurations TQFP PDIP ) ) E 0 1 2 3 ) (T2) P1.0 1 40 VCC S 2 2) D D D D (T2 EX) P1.1 2 39 P0.0 (AD0) ( ( T( ( A(A(A ( . 3.2.1 . . C C . 1.2.3 . P1.2 3 38 P0.1 (AD1) P P P P P N V P P P P 0 0 P1.3 4 37 P0.2 (AD2) (SS) P1.4 5 36 P0.3 (AD3) 4 4 4 4 4 3 3
in „I2C Anschluß AT89S8252“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
doc0401.pdf
have been activated. 0401F–MICRO–11/03 1 Pin Configurations TQFP PDIP ) ) E 0 1 2 3 ) (T2) P1.0 1 40 VCC S 2 2) D D D D (T2 EX) P1.1 2 39 P0.0 (AD0) ( ( T( ( A(A(A ( . 3.2.1 . . C C . 1.2.3 . P1.2 3 38 P0.1 (AD1) P P P P P N V P P P P 0 0 P1.3 4 37 P0.2 (AD2) (SS) P1.4 5 36 P0.3 (AD3) 4 4 4 4 4 3 3
in „IDE für 8051“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
CNY70_TEM.pdf
10 ) A m t 1 e u d r t e o 0.1 C C I VCE =5V F =20mA 0.001 0 2 4 6 8 10 95 11069 d – Distance ( mm ) Figure 9. Collector Current vs. Distance 1.0 n 0.9 1.5 0 r 0.8 s u d = 5 mm E D 5mm r 0.7 4 mm c 10mm l 0.6 3 mm d o 0.5 2 mm 0 e 1 mm E s t 0.4 0 5mm l R 0.3 D 10mm l 0.2 VCE = 5 V C F = 20 mA I 0.1 0 0 1 2 3 4 5 6 7 8 9 10 11 96 11915 s – Displacement ( mm ) Figure 11. Rel. Collector Current vs. Displacement TELEFUNKEN Semiconductors 5 (7) Rev.A2, 12-Dec-97 CNY70 Dimensions in mm 95 11345
in „cny70 funktioniert nicht wie er sollte“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
CNY70_TEM.pdf
10 ) A m t 1 e u d r t e o 0.1 C C I VCE =5V F =20mA 0.001 0 2 4 6 8 10 95 11069 d – Distance ( mm ) Figure 9. Collector Current vs. Distance 1.0 n 0.9 1.5 0 r 0.8 s u d = 5 mm E D 5mm r 0.7 4 mm c 10mm l 0.6 3 mm d o 0.5 2 mm 0 e 1 mm E s t 0.4 0 5mm l R 0.3 D 10mm l 0.2 VCE = 5 V C F = 20 mA I 0.1 0 0 1 2 3 4 5 6 7 8 9 10 11 96 11915 s – Displacement ( mm ) Figure 11. Rel. Collector Current vs. Displacement TELEFUNKEN Semiconductors 5 (7) Rev.A2, 12-Dec-97 CNY70 Dimensions in mm 95 11345
in „Spannung direkt am ADC-Eingang messen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
lm2676.pdf
-223 L34 15 3.65 RL-1283-15-43 — PE-53934 PE-53934S DO5022P-153 L38 68 2.97 RL-5472-2 — PE-54038 PE-54038S — L39 47 3.57 RL-5472-3 — PE-54039 PE-54039S — L40 33 4.26 RL-1283-33-43 — PE-54040 PE-54040S — L41 22 5.22 RL-1283-22-43 — PE-54041 P0841 — L44
in „[V] 45St. Schaltregler LM2676SX-3.3/NOPB TO263-7 SIMPLE SWITCHER® High Efficiency 3-A Step-Down“ · Markt ·
-
PDF
lm2676_2_.pdf
-223 L34 15 3.65 RL-1283-15-43 — PE-53934 PE-53934S DO5022P-153 L38 68 2.97 RL-5472-2 — PE-54038 PE-54038S — L39 47 3.57 RL-5472-3 — PE-54039 PE-54039S — L40 33 4.26 RL-1283-33-43 — PE-54040 PE-54040S — L41 22 5.22 RL-1283-22-43 — PE-54041 P0841 — L44
in „[V] 45St. Schaltregler LM2676SX-3.3/NOPB TO263-7 SIMPLE SWITCHER® High Efficiency 3-A Step-Down“ · Markt ·
-
PDF
lm35_Temp.pdf
air rated to operate over a −55˚ to +150˚C temperature range, n Nonlinearity only± 14˚C typical S while the LM35C is rated for a −40˚ to +110˚C range (−10˚ n Low impedance output, 0.1 for 1 mA load n with improved accuracy). The LM35 series is available pack- s o Typical Applications s DS005516-4
in „Temperatursensor LM35 DZ will nicht funktionieren“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
BC856BDW1T1-D.PDF
COLLECTOR CURRENT (mA) C , COLLECTOR CURRENT (mA) Figure 1. DC Current Gain Figure 2. “On” Voltage S-2.0 -1.0 L C V / ( V G-1.6 T -1.4 T N O IC= -20 mA -50 mA -100 mA -200 mA C V -10 mA F E-1.2 E -1.8 q for V I C VB BE -55°C to 125°C M E --0.8 U -2.2 O A C R E P O-0.4 E -2.6 , , E TJ= 25°C V VC 0 θ
in „SunLike LEDs mit TRI-R-Technologie ( Seoul Semiconductors )“ · Analoge Elektronik und Schaltungstechnik ·