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PDF
M27C1001.PDF
IL (2) ChipEnable Highto tEHQZ tDF Output Hi-Z G = VIL 0 30 0 30 0 30 0 40 ns (2) Output Enable High tGHQZ tDF to Output Hi-Z E = VIL 0 30 0 30 0 30 0 40 ns Address Transition tAXQX tOH E= VIL G = VIL 0 0 0 0 ns to Output Transition
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PaperE16.pdf
over- ] € all costs for facilities k [ [ 9000 1500 3 able to evaporize 1.4 1 & (3.6) kg Al are 4.4 t 2 (10.9) million €. At s 6000 1000 t 76 (53) € cost saving C o per blasting the costs 1-step, evaporation (1) C for the facilities would 3000 1-step, only melting (2)0 amortize after 57,900 (205,700)
in „Kann man mit 0,1 µF und 3Kv eine weintraube in die Luft sprengen?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
FN_MSPRO-Manual-EN.pdf
indication for the hub’s full or half duplex capabilities. Descriptions are as follows: 10 H 10BASE-T aue16f.eps 10 HF 10BASE-T full duplex 100 H 100BASE-TX The word SIGNAL blinks once every two seconds right below the word Hub. Go to the wiring closet to view a 100 HF 100BASE-T full duplex light that blinks once every two seconds at the port to which the cable is connected. 100 HF4 100BASE-T full duplex, 100BASE-T4 15 MicroScanner Pro Users Manual M ICROSCANNER PRO also Identifies workstations. 3. When M ICROSCANNER P ROdisplays PC and the cable 1. Connect the cable to be tested to the MAIN
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G065VN01-V2.pdf
Characteristics DE mode only Signal Symbol Min. Typ. Max. Unit Remark Clock frequency (DOTCLK) 1/ T 20 25.2 50 MHz Note1 CLOCK Horizontal Section Period T 770 800 1070 H Active THD 640 TCLOCK Note1 Blanking THB 130 160 430 Vertical Section Period TV 520 525 622 Active TVD 480 TLINE Note1 Blanking TVB
in „Tektronix TDS 510A CRT Video Display Unit defekt“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
B156XW03_V.2.pdf
Signals from any system shall be Hi-Z state or low level when VDD is off 90% 90% Vin(3.3V) 10% 10% T1 T2 T11 T12 LVDS data T3 90% 90% T10 B/L power 10% 10% T4 T5 T8 T9 System PWM …… t DCR enable …… T6 T7 B/L enable Value (ms) Parameter Min. Typ. Max. T1 0.5 - 10 T2 30 40 90 T3 200 - - T4 0.5 - 10 T5 10 - - T6 10 - - T7 0 - - T8 10 - - T9 - 10 30 T10 200 - - T11 0 - 50 T12 - 10 30 Note:If T3,T5,T6 couldn’t match above specifications, must request T3+T5+T6 > 200ms at least B156XW03 V2 Document Version : 1.2
in „Pollin LVDS-Board an B156XW03 Display“ · Mikrocontroller und Digitale Elektronik ·
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BZX399.pdf
Tables 1 and 2 Tamb = 25 °C prior to surge Ptot total power dissipation Tamb = 25 °C; note 1 − 300 mW T storage temperature −65 +150 °C stg Tj junction temperature − 150 °C Note 1. Device mounted on a FR4 printed circuit-board. ELECTRICAL CHARACTERISTICS Total BZX399-C series Tj= 25 °C unless otherwise
in „Frage Mosfet“ · Analoge Elektronik und Schaltungstechnik ·
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DiscoveryF3_adap.pdf
PC5_UART1_RXPIJ1019 20 PIJ1020ADC2_IN5N BO TO 0 PIJ219 20 PIJ2020 M25PX16-VMW6TG GND TSW-104-09-F-T-RA TSW-104-09-F-T-RA PB1_OUT9PIJ1021 22 PIJ102_OUTU 8 PB6_I2C1_SCL PIJ221 22 PIJ202I2C1_SDA N25Q128A13ESE40E P1_202 PE7PIJ1023 24 PIJ1024I2C1_XCLRL PB4_SPI3_MISOSOPIJ223 24 PIJ2024PI3_MOSII GND Note:
in „[V] STM32F3 Discovery + Adapterboard für ein FlyingF3 (FlightControl) mit der Taulabssoftware“ · Markt ·
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PDF
Osram_Lx_T67F_20mA_bunt.pdf
60 ˚C 100 Tj T j 2009-06-09 7 LS T67F, LR T67F, LA T67F, LO T67F, LY T67F Maximal zulässiger Durchlassstrom Max. Permissible Forward Current IF = f(T ) OHL03044 60 mA IF 50 T T A S 40 30 20 10 T temp. ambient A TS
in „LED Statistik“ · Analoge Elektronik und Schaltungstechnik ·
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Datei
Lambdacontroller_ai_claude_2.ino
= 0x00; uint16_t id = 0x300; CANIDT1 = (uint8_t)(id >> 3); CANIDT2 = (uint8_t)(id << 5); CANCDMOB = 8; // DLC setzen, Datenzeiger reset uint16_t lambda_scaled = (uint16_t)(lambda * 1000.0); uint8_t ubatt_scaled = (uint8_t)(constrain(UBatt_V, 0.0, 25.5) * 10.0); CANMSG = (uint8_t)(ua >> 8); CANMSG = (uint8_t)(ua & 0xFF); CANMSG = (uint8_t)(ur >> 8); CANMSG = (uint8_t)(ur & 0xFF); CANMSG = heaterPWM; CANMSG = ubatt_scaled
in „Bosch CJ125 mit AVR AT90CAN64“ · Mikrocontroller und Digitale Elektronik ·
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Datei
Lambdacontroller_ai_claude.txt
= 0x00; uint16_t id = 0x300; CANIDT1 = (uint8_t)(id >> 3); CANIDT2 = (uint8_t)(id << 5); CANCDMOB = 8; // DLC setzen, Datenzeiger reset uint16_t lambda_scaled = (uint16_t)(lambda * 1000.0); uint8_t ubatt_scaled = (uint8_t)(constrain(UBatt_V, 0.0, 25.5) * 10.0); CANMSG = (uint8_t)(ua >> 8); CANMSG = (uint8_t)(ua & 0xFF); CANMSG = (uint8_t)(ur >> 8); CANMSG = (uint8_t)(ur & 0xFF); CANMSG = heaterPWM; CANMSG = ubatt_scaled
in „Bosch CJ125 mit AVR AT90CAN64“ · Mikrocontroller und Digitale Elektronik ·
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PDF
15XP-A.pdf
gesendet. Auskunft über die derzeit geltenden Reparatur- und Austauschgebühren erhalten Sie von Amprobe T®st Tools oder der Verkaufsstelle. In den USA: In Kanada: Amprobe T®st Tools Amprobe T®st Tools Everett, WA 98203 Mississauga, ON L4Z 1X9 Tel.: 888-993-5853 Tel.: 905-890-7600 Fax: 425-446-6390 Fax: 905
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rt8279.pdf
0V -- -- 10 A Current Limit ILIM Duty = 90%, V BOOT SW = 4.8V 6 7.5 9 A Oscillator Frequency fOSC 425 500 575 kHz Short Circuit Frequency V FB= 0V -- 150 -- kHz Maximum Duty Cycle D MAX V FB= 0.8V 85 90 95 % Minimum On-Time tON -- 100 150 ns Under Voltage Lockout Threshold Rising 3.8 4.2 4.5 V Under
in „Suche Schaltregler“ · Analoge Elektronik und Schaltungstechnik ·
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NTC.pdf
−15 7.425 3.10 5.61 349.0 −10 5.630 2.67 5.45 264.6 −5 4.304 2.24 5.29 202.3 0 3.315 1.84 5.14 155.8 5 2.573 1.44 4.99 120.9 10 2.011 1.07 4.85 94.53 15 1.583 0.70 4.72 74.40 20 1.254 0.34 4.59 58.95 25 1.000
in „NTC berechnen“ · Analoge Elektronik und Schaltungstechnik ·
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CN3058.pdf
device reliability. www.consonance-elec.com 4 REV 1.1 CONSONANCE Electrical Characteristics (VIN=5V, T A-40℃ to 85℃, Typical Values are measured at T A25℃,unless otherwise noted) Parameters Symbol Test Conditions Min Typ Max Unit Input Supply Voltage VIN 3.8 6 V Operating Current IVIN Charge Termination
in „Solarzelle fuer Mikrokontroller“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
Fragen_und_Antworten_zur_fachlichen_Pruefung_fuer_Funkamateure_BAPT_1988.pdf
Kmtestt]ereich Telefmie 7000 -71m kllz (Primärzuweisung, weitgehend exklusiv) - 40 m - 7# : 7ä% k# Mffi:t::#:#ä:dfernsehen 7035 -710J ktk Telefmie 10100 - 10150 (Sekundärzuweisung) - 29 m - ±8±% = :8±38 # #ffie::::!rr8:r#eTg¥g:bqffliiik butschlsnd nqh L4om _ L435o kHz tL4ooo_L425o kHz exkLus£v, L425o.L435o
in „Neuer Fragenkatalog für die Amateurfunkprüfung“ · HF, Funk und Felder ·
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HN_PDTC114E_SER.pdf
102 (2) (3) 10-1 (1) 10 (2) (3) 1 10-2 10-1 1 10 102 1 10 102 IC(mA) IC(mA) V CE = 5 V C BI = 20 (1) T amb= 100 C (1) T amb = 100 C (2) T amb= 25 C (2) T amb = 25 C (3) T amb= 40 C (3) T amb = 40 C Fig 6. DC current gain as a function of collector Fig 7. Collector-emitter saturation voltage as
in „AEG Lavatherm IH67680IH schaltet sporadisch ab“ · Analoge Elektronik und Schaltungstechnik ·
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s8241.PDF
charger connection pins (VM and CO pins: Absolute maximum rating = 26 V) (3) Delay times (overcharge: t ; overdischarge: t ; overcurrent 1: t ; overcurrent 2: t ) are generated CU DL lOV1 lOV2 by an internal circuit. (External capacitors are unnecessary.) Accuracy of ±30% (4) Internal three-step overcurrent
in „Li-Ion Akku mit oder ohne eingebaute Schutzschaltung“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
s8241.PDF
charger connection pins (VM and CO pins: Absolute maximum rating = 26 V) (3) Delay times (overcharge: t ; overdischarge: t ; overcurrent 1: t ; overcurrent 2: t ) are generated CU DL lOV1 lOV2 by an internal circuit. (External capacitors are unnecessary.) Accuracy of ±30% (4) Internal three-step overcurrent
in „Li-Ion Protection in besser?“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
s8241.PDF
charger connection pins (VM and CO pins: Absolute maximum rating = 26 V) (3) Delay times (overcharge: t ; overdischarge: t ; overcurrent 1: t ; overcurrent 2: t ) are generated CU DL lOV1 lOV2 by an internal circuit. (External capacitors are unnecessary.) Accuracy of ±30% (4) Internal three-step overcurrent
in „Lademodul TP4056“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS1337.pdf
(SQUARE-WAVE OFF) (SQUARE-WAVE ON) 500 1 850 2 t t 3 800 3 D D 750 A 450 ) ( ( 700 T T E E 650 R R C 400 C 600 Y Y L L 550 U U S S 500 350 450 400 300 350 1.3 1.8 2.3 3.3 3.8 4.3 4.8 1.3 1.8 2.3 3.3 3.8 4.3 4.8 VCC(V) VCC (V) OSC VS. TEMPERATURE CCA
in „Atmega8 hängt in TWI Kommunikation fest (START schlägt fehl)“ · Mikrocontroller und Digitale Elektronik ·
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vprd_dsw.pdf
operate, and at higher voltages may cause permenent change in relay operating characteristics. 600 500 g t400 o V300 e u p200 I 100 0 0 100 200 300 400 500 600 700 800 900 1000 1100 Pulse Duration (Microseconds) Ordering Information Contact Contact Part Number Arrangement Material Enclosure Terminals VPRD
in „[V] bistabile Relais“ · Markt ·
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Datei
ffft.S
T8H,T8L,T6H,T6L, BH,BL, DH,DL ; addd T4H,T4L,T2H,T2L, T8H,T8L,T6H,T6L; stw Y+, T4H,T4L ;/ FMULS16 T4H,T4L,T2H,T2L, BH,BL, CH,CL ;*Y++ = B * C - A * D; FMULS16 T8H,T8L,T6H,T6L, AH,AL, DH,DL ; subd T4H,T4L
in „Problem mit undefined reference to“ · Mikrocontroller und Digitale Elektronik ·
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74AHC_AHCT1G32.pdf
2.0 5.0 5.5 4.5 5.0 5.5 V VI input voltage 0 - 5.5 0 - 5.5 V VO output voltage 0 - V CC 0 - V CC V T ambient temperature −40 +25 +125 −40 +25 +125 °C amb t/ V input transition rise V CC = 3.3 V ± 0.3 V - - 100 - - - ns/V and fall rate V CC = 5.0 V ± 0.5 V - - 20 - - 20 ns/V 10. Static characteristics
in „Pegelwandlung 5V => 3,3V: Überschwinger mit 74LVC1G17“ · Mikrocontroller und Digitale Elektronik ·
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ne5532_3_4_AppNote.pdf
CONSTANTS TIME CONSTANTS 15 3150 s 30 3150 s ) 318 s ) 50 s B 10 75 s B 9 ( 25 I I A 5 A 20 G G V 0 I T T 15 A –5 L E E R –10 R 10 –15 5 –20 –25 0 –30 10 100 1K 10K 100K 10 100 1K 10K 100K FREQUENCY (Hz) FREQUENCY (Hz) a. RIAA Equalization b. NAB Standard Playback 71/2 IPS 40 TURN OVER FREQUENCIES 35 50Hz, 1326Hz TIME CONSTANTS 30 3150 s 125 s B ( 25 I A G 20 V T 15 L E R 10 5 0 10 100 1K 10K 100K FREQUENCY (Hz) c. 3.75 IPS Tape Equalization 25 5 TURN OVER FREQUENCY 2122 CPS TURN OVER FREQUENCY 1kHz TIME CONSTANT 75 s 20 0 15 –5 10 ) d ) –10 ( 5 d I ( G A E 0
in „Phono Verstärker“ · Analoge Elektronik und Schaltungstechnik ·
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AN142_Audio_circuits_using_the_NE5532-3-4.pdf
CONSTANTS TIME CONSTANTS 15 3150 s 30 3150 s ) 318 s ) 50 s B 10 75 s B 9 ( 25 I I A 5 A 20 G G V 0 I T T 15 A –5 L E E R –10 R 10 –15 5 –20 –25 0 –30 10 100 1K 10K 100K 10 100 1K 10K 100K FREQUENCY (Hz) FREQUENCY (Hz) a. RIAA Equalization b. NAB Standard Playback 71/2 IPS 40 TURN OVER FREQUENCIES 35 50Hz, 1326Hz TIME CONSTANTS 30 3150 s 125 s B ( 25 I A G 20 V T 15 L E R 10 5 0 10 100 1K 10K 100K FREQUENCY (Hz) c. 3.75 IPS Tape Equalization 25 5 TURN OVER FREQUENCY 2122 CPS TURN OVER FREQUENCY 1kHz TIME CONSTANT 75 s 20 0 15 –5 10 ) d ) –10 ( 5 d I ( G A E 0
in „Einfacher RIIA-Entzerrvorverstärker Schaltplan gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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Byte_Blaster_MV.pdf
Female Plug Dimensions Dimensions are shown in inches. The spacing between pin centers is 0.1 inch. 0.425 Typ. Color Strip 1 3 5 7 9 0.250 Typ. 2 4 6 8 10 0.100 Sq. 0.025 Sq. 0.700 Typ. 13 Table 2 identifies the 10-pin female plug’s pin names for the corresponding download mode. o s Table 2. ByteBlasterMV
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class_f_and_inverse_class_f_W1.pdf
M.K.Kazimierczuk,“AnewconceptofclassFtunedpoweramplifier,” in Proc. 27th Midwest Circuits Syst. Symp., 1984, pp. 425–428. (A.1) [4] A. Inoue, A. Ohta, S. Goto, T. Ishikawa, and Y. Matsuda, “The effi- ciency of class-F and inverse class-F amplifiers,” in IEEE MTT-S Int. (A.2) Microw. Symp. Dig., Jun. 2004, pp. 1947–1950
in „Leistungsvertärker der F-Klasse“ · HF, Funk und Felder ·
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M390.pdf
e Glass fibre content: 30 wt.%,Temperature: 400 °C (750 °F) d 1.2380 PM e 3 M (AISI D7 mod. PM) g t ß 2 l s V 1 e l i M 0 0 5 10 15 20 25 Kunststoffmenge /Amount of plastic (kg) Abrasiver Verschleiß / Abrasive wear ) µ n s 5 Kunststoff: Polyamid 66 (PA66), Handelsname: UltramidA3WG6, b f Glasfaseranteil
in „Flachschleifen, Material “Böhler M390“ · Mechanik, Gehäuse, Werkzeug ·
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HTC8632.pdf
Offset Voltage Production Distribution. 5 6 5.5V 4.5 Sourcing Current )P ) 4 V 5 e e 5.0V g 3.5 g 4 l 3 t o l t 2.5 +25℃ V 3 u 2 +125℃ t t –40℃ u u 1.5 t 2 2.7V O 1 u O 1 0.5 Sinking Current 0 0 0 15 30 45 60 75 10k 100k 1M 10M Output Current (mA) Frequency(Hz) Output Voltage Swing as a function of Output
in „Identifizierung 8 pin SMD Bauteil aus BLDC Controller“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
MLCC_stacked_kmt1.pdf
& 6 will be available chips) and creates a mechanical relief between the for order in Q3CY08. The T level high reliability ceramic device and the board, so they are not space level version will be available in calendar bound to each other. The contact to the chips is year 2009. usually a perforated
in „Leistungs-Kermikkondensator gesucht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
EVI-370-series-command-list-v1-2-eng.pdf
controller is RS-232C, 9600 bps, 8 bits data, 1 start bit, 1 stop bit and non parity. Camera 1 Camera 2 S T X X X S X T S T X X R D T D R R D D D R D R R R D D X S X T D R D R DTR DSR TXD RXD Controller Fig. 2 Daisy chain connection * “VISCA™” is a trademark of Sony Corporation. 1 EVI-370 series VISCA™/RS-
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INA121.pdf
RATE SHORT-CIRCUIT CURRENT vs TEMPERATURE vs TEMPERATURE 500 1.4 ±15 +ISC ) 475 1.2 A ±14 µ I ) ( t Q s n e V r r 450 1 ( u ±13 C a t –ISC n R u c 425 0.8 w i ±12 e l t u SR S o Q h 400 0.6 S ±11 375 0.4 ±10 –75 –50 –25 0 25 50 75 100 125 –75 –50 –25 0 25 50 75 100 125 Temperature (°C) Temperature
in „Instrumentenverstärker INA121 hat zu hohe Verstärkung“ · Analoge Elektronik und Schaltungstechnik ·
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MAX1920-MAX1921.pdf
+T -40°C to +85°C 6 TDFN CDMA Power Amplifier Supply MAX1921EUT_ _-T -40°C to +85°C 6 SOT23-6 MAX1921EUT_ _+T -40°C to +85°C 6 SOT23-6 Note: The MAX1921 offers five preset output voltage options. See the
in „Sinnvoll, von 3V Solar mit Stepdown auf 2,5V SuperCap ?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
stp16cpc26.pdf
Switching characteristics Symbol Parameter Conditions Min. Typ. Max. Unit fclk Clock frequency - - 30 MHz tPLH1 CLK - OUTn - 100 - tPLH2 LE - OUTn Propagation - 100 - tPLH3 OE – OUTn delay time - 100 - (“L” to “H”) tPLHa VDD=3.3V - 30 - CLK - SDO tPLHb VDD=5V - 20 - Propagation tPHL1 CLK - OUTn delay time
in „[S] 12fach LED IC gesucht (ähnlich 74HC595)“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
DS1302.pdf
0.4 Active Supply Current ICC1A mA 4, 11 V CC1= 5V 1.2 VCC1= 2.0V 0.2 0.3 Timekeeping Current ICC1T mA 3, 11,13 V CC1= 5V 0.45 1 VCC1= 2.0V 1 100 Standby Current I nA 9, 11, 13 CC1S V CC1= 5V 1 100 IND 5 200 Active Supply Current ICC2A VCC2= 2.0V 0.425 mA 4, 12 V CC2= 5V 1.28 Timekeeping Current ICC2T
in „Wiedermal ein RTC-Problem“ · Mikrocontroller und Digitale Elektronik ·
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PDF
150418-da-01-en-ADJ_LOW_DROPOUT_POS_VR_5A.pdf
Short-Circuit Current LT1083 Load Regulation ) 2 12 0.10 ( INDICATES GUARANTEED TEST POINT I = 7.5A A ) T –40°C TJ 150°C ) 10 25°C ( 0.05 E ( N E 0°C TJ 125°C N 150°C T I R 8 I 0 D U E U C D T 1 I 6 G–0.05 U TJ= 150°C C T T I –55°C O P T = 25°C T 4 V–0.10 I J R U M T = –55°C H T U J S 2 O–0.15 I FULL LOAD
in „spannungsstabilisierung in blitz“ · Mikrocontroller und Digitale Elektronik ·
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1083ffd.pdf
Current LT1083 Load Regulation ) 2 12 0.10 ( INDICATES GUARANTEED TEST POINT ΔI = 7.5A A ) T –40°C ≤ TJ≤ 150°C ) 10 25°C ( 0.05 E ( N E 0°C ≤ J ≤ 125°C N 150°C T I R 8 I 0 D U E U C D T 1 I 6 G–0.05 U TJ= 150°C C T T I –55°C O P T = 25°C T 4 V–0.10 I J R U M T = –55°C H T U J S 2 O–0.15 I FULL
in „Frage zum Datenblatt LT1084CT-5“ · Mikrocontroller und Digitale Elektronik ·
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PDF
mic3202.pdf
Temperature vs. Temperature vs. Temperature 2.0 0.4 4.5 A VIN=VIN= 12V ) VIN= 12V ) m VLED= OPEN µ VEN= 0V ( T I = 0A T D N1.5 LED N0.3 L Rising E E H4.0 R R S U U E C1.0 C0.2 R Y N T P W O P O L3.5 U T U Falling VIN= 12V N0.5 U0.1 I V = 3.5V V H V LED S LED= 1A L = 47uH 0.0 0 3.0 -50 -20 10 40 70 100 130 -50
in „MIC3202 : welche empfohlene Schaltung ist geeignet?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
51292S.pdf
Function Device Selected AC162052 2-3 A/D Disabled PIC16F630 1-2 A/D Enabled PIC16F676 AC162055 Don’t care N/A PIC16F684 AC162056 Don’t care N/A PIC16F688 AC162057 2-3 PORTC, Comparator 2 Disabled PIC12F635 1-2 PORTC, Comparator 2 Enabled PIC16F636 Header Limitations See the “Limitations” section in
in „PIC18F877 ICD2 bzw Brenner gesucht :-(“ · Mikrocontroller und Digitale Elektronik ·
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PDF
HV_257.pdf
100µA, anode to cathode at T = 25°C F F A I Forward diode current - - 100 µA anode to cathode F T V temperature coefficient - -2.2 - mV/°C anode to cathode C F ● 1235 Bordeaux Drive, Sunnyvale, CA 94089 ● Tel: 408-222-8888 ● www.supertex.com
in „Sockel und C_Load“ · Mikrocontroller und Digitale Elektronik ·
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Datei
NEC-Content.htm
"display:none; visibility: hidden;" /></noscript> <!-- Pixel Code --> <script> !function(f,b,e,v,n,t,s) {if(f.fbq)return;n=f.fbq=function(){n.callMethod? n.callMethod.apply(n,arguments):n.queue.push(arguments)}; if(!f._fbq)f._fbq=n;n.push=n;n.loaded=!0;n.version='2.0'; n.queue=[];t=b.createElement(e);t.async=!0; t.src=v;s=b.getElementsByTagName(e)[0]; s.parentNode.insertBefore(t,s)}(window, document,'script', 'https://connect.facebook.net/en_US/fbevents.js'); fbq('init', '209836236219257'); fbq('track
in „"grounded conductor" Definition im Deutschen“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
HSDL-3612.pdf
nm Wavelength Receiver SIR Pulse Width tpw (SIR) 1 4.0 s θ 1/2 15° , CL=10 pF Receiver Latency Time tL 20 50 s Receiver Rise/Fall Times tr/fXD) 25 ns [10] Receiver Wake Up Time tW 100 s Notes: 7. Logic Low is a pulsed response. The condition is maintained for duration dependent on pattern and strength
in „PHILIPS VP5500 VoIP Telefon bei Pollin“ · Mikrocontroller und Digitale Elektronik ·
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PDF
lm4861.pdf
shutdown protection circuitry w the use of external compensation components. Highern Unity-gain stable t may be achieved with suitable compensation. n External gain configuration capability h S Applications u n Personal computers t n Portable consumer products o n Self-powered speakers w n Toys and games
in „Audioverstärker auf Steckbrett rauscht“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
WBDesign8.pdf
30.0V Pout Cout IRMS 7.5 0.775 7.0 0.750 6.5 0.725 6.0 0.700 5.5 )0.675 5.0 A ) (0.650 W4.5 S0.625 t4.0 M u I0.600 o3.5 t0.575 P u 3.0 o0.550 2.5 C 0.525 2.0 0.500 1.5 0.475 1.0 0.450 0.5 0.425 0.0 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 1.1 1.2 1.3 1.4 1.5 0.0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9
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LMD18200.pdf
Current (200 ms) 6A Continuous Output Current (3) 3A (4) Power Dissipation 25W Power Dissipation (T = 25°C, Free Air) 3W A Junction Temperature, T J(max) 150°C (5) ESD Susceptibility 1500V Storage Temperature, T STG −40°C to +150°C Lead Temperature (Soldering, 10 sec.) 300°C (1) Absolute Maximum Ratings
in „Motortreiber LMD18200“ · Analoge Elektronik und Schaltungstechnik ·
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PDF
tda7449.pdf
– SELECTABLE INPUT GAIN FOR OPTIMAL DIP20 SO20 ADAPTATION TO DIFFERENT SOURCES ■ ONE STEREO OUTPUT T able 1. Order Codes ■ TREBLE, AND BASS CONTROL IN 2.0dB Part Number Package STEPS TDA7449 DIP20 ■ VOLUME CONTROL IN 1.0dB STEPS TDA7449D SO20 ■ TWO SPEAKER ATTENUATORS: – TWO INDEPENDENT SPEAKER CONTROL
in „Woher TDA7449 (in DIP Package) nehmen?“ · Mikrocontroller und Digitale Elektronik ·
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PDF
Clock_jitter_analyzed_in_the_Time_Domain_Part_2.pdf
harmonics of a sine wave. 2 2 2 − SNR Measure − −SNR Thermal Nose 10 20 10 20 2 tAperture_ADC = −(t Jitter,Clock_Input (4) 2π×f IN Table 3. Measured SNR and calculated jitter THERMAL NOISE MEASURED SNR AT HIGH f IN CALCULATED DEVICE (MEASURED SNR AT f = 10 MHz) (JITTER-LIMITED
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amstrad_srx100_srx200_sat_receiver_sch.pdf
R733 R735 N V E E O I I . 2 910 BC R707 R710 R711 AMP 1k 150 16V BC T V 1 A A I U UD S V C BUFF. 47 11.7R709 270 330 18k 470 Q704 10.9 9.9 330 18k 47 11.9 47 11.9 O 1 S L C T T T O O . N . V E C U C732 R702 8.5 Q702 150 10.3 BUFF. BUFF. 7.3 BUFF. D S U P M E E EX B C A
in „10,52 MHz Keramik Piezo Filter Resonator ZF IF“ · Analoge Elektronik und Schaltungstechnik ·
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RM_PDTA114E_SER.pdf
3) -101 (1) 10 (2) (3) 1 -102 -101 -1 -10 -102 -1 -10 -102 C (mA) IC(mA) V CE = 5 V IC B = 20 (1) T amb= 100 C (1) T amb= 100 C (2) T amb= 25 C (2) T amb= 25 C (3) T amb= 40 C (3) T amb= 40 C Fig 6. DC current gain as a function of collector Fig 7. Collector-emitter saturation voltage as a
in „AEG Lavatherm IH67680IH schaltet sporadisch ab“ · Analoge Elektronik und Schaltungstechnik ·
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WBDesign5.pdf
Vin= 16.0V Vin= 11.0V Vin= 13.5V Vin= 16.0V Vout p- p M1 PdCond 0.475 1.5 0.450 1.4 0.425 1.3 0.400 0.375 1.2 0.350 1.1 0.325 ) V (1.0 (0.300 d0.9 p0.275 n p0.250 o0.8 t0.225 C0.7 u P o0.200 0.6 V0.175 10.5 0.150 M 0.125 0.4 0.100 0.3 0.075 0.2 0.050 0.025 0.1 0.0 0.25 0.50 0.75 1.00 1.25
in „Drehstrom Motor anfangstrom berechnen“ · Analoge Elektronik und Schaltungstechnik ·