-
Thread
NuMicroM2351 "TARGET: NuMicro.cpu - Not halted"
(): have interface set up Debug: 250 20 nulink_usb.c:1263 nulink_speed(): nulink_speed: query(1) Debug: 251 20 nulink_usb.c:1282 nulink_speed(): NULINK nulink_speed: 1000 Info : 252 20 core.c:1386 adapter_init(): clock speed 1000 kHz Debug
herunterladen. Ist das unverständlich? W.S.
Mikrocontroller und Digitale Elektronik ·Ximena · ·12 Antworten
-
PDF
TPSchalter_KM_G_020322.pdf
Ausgangsrelais:....................... Toggle-Funktion oder als ZeeinenlangentiefenSignalton.NachBeen- 1 s, 2 s, 5 s, 10 s, 20 s, 60 s, 180 digungdesLöschvorgangesfolgtdannein Schaltspannung:...................................................................zweiter Signalton. max. 230 V Schaltstrom: .....
in „Transponder Lesegerät SUCHE LÖSUNG ???“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
744830007215-1020826.pdf
Assembly tp Preheat Temperature Min Ts min 100 °C 100 °C T p Preheat Temperature Typical Ts typical20 °C 120 °C First Wave Second Wave Preheat Temperature Max T 130 °C 130 °C s max Preheat Time t from T to T t 70 seconds 70 seconds s s min s max s Ramp-up Rate Δ T 150 °C max. 150 °C max. Peak temperature
in „Induktion Datenblatt angaben“ · Analoge Elektronik und Schaltungstechnik ·
-
Artikel
PIC C-Compilervergleich
Used ROM: 1879 Words (46%) Built in 188ms Used RAM: 61 Byte (17%) Used ROM: 1879 Words (46%) Built in 275ms Used RAM: 64 Byte (2%) Used ROM: 6955 Byte (11%) Built in 703ms + PIC24/32/dsPIC PIC24FJ16MC102 16kB ROM 1024B RAM dsPIC33FJ16GS402 16kB ROM 2048B RAM PIC32MX220F032B 32kB ROM 8192B RAM XC16 Free
(25%) Built in 112ms x XC32 Free (Optimizing Level 1) x x Used RAM: 20 Byte (1%) Used ROM: 14532Byte (41%) Built in 625ms XC32 PRO (Optimizing Level 3/s[Size]) x x Used RAM: 20 Byte (1%) Used ROM (LV: 3) : 14568Byte (41%) Used ROM (LV: s) : 14496 Byte (40%) Built in 828ms
Artikel ·
-
PDF
NTC.pdf
intermediate temperatures 25tat 2 Ω; see also Table 1 R25 ∆R DUE TO Ω ) Toper RT/R25 B-TOLERANCE TC (C) (%/K) 2322 640 .....; see Table 7, note 1 (%) 5.202 −40 23.3402 1.65 −6.06 46684 −35 17.3347 1.49 −5.84 34672 −30 13.0166 1.34 −5.62 26035 −25 9.8764 1.19 −5.42 19754 −20 7.5682 1.05 −5.23 15138 −15 5.8541
in „NTC berechnen“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
ULN2803.pdf
is designedg to for general purpose applications with a current limit resistor; the ULN2802Ahasa10.5k inputresistor and zener for 14-25V PMOS; the ULN2803A has a 2.7k input resistor for 5V TTL and CMOS ; the ULN2804A has a 10.5k input resistor for 6-15V CMOS and the ULN2805A is designed to sink a minimum
in „ULN 2803 als LEd treiber?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
ULN280x.pdf
is designedg to for general purpose applications with a current limit resistor; the ULN2802Ahasa10.5k inputresistor and zener for 14-25V PMOS; the ULN2803A has a 2.7k input resistor for 5V TTL and CMOS ; the ULN2804A has a 10.5k input resistor for 6-15V CMOS and the ULN2805A is designed to sink a minimum
in „4-fach RS FlipFlop 100mA“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
LS4000_Routing_Report.pdf
to can/i_can_registers/TX_DATA_REG9/SLICE_1799: Name Fanout Delay (ns) Site Resource REG_DEL --- 0.275 R41C28A.CLK to R41C28A.Q0 wb_tlc/intf/SLICE_4266 (from clk_125_c) ROUTE 4 1.297 R41C28A.Q0 to R39C20C.B1 pcie_adr_2_r0[4] CTOF_DEL --- 0.164 R39C20C.B1 to R39C20C.F1 can/SLICE_6940 ROUTE 9 1.330 R39C20C.F1
-
PDF
LS4000_Routing_Report.pdf
to can/i_can_registers/TX_DATA_REG9/SLICE_1799: Name Fanout Delay (ns) Site Resource REG_DEL --- 0.275 R41C28A.CLK to R41C28A.Q0 wb_tlc/intf/SLICE_4266 (from clk_125_c) ROUTE 4 1.297 R41C28A.Q0 to R39C20C.B1 pcie_adr_2_r0[4] CTOF_DEL --- 0.164 R39C20C.B1 to R39C20C.F1 can/SLICE_6940 ROUTE 9 1.330 R39C20C.F1
-
PDF
ersatzlampenliste.pdf
3M MP8760 190W UHB P22 (65*70mm) LF190P22 3M MP8770 190W UHB P22 (65*70mm) LF190P22 3M Piccolo S50 150W UHB P21 (50*50mm) LF150P21 A+K Astrobeam S100 120W P22 (65*70mm) LF120P22 A+K Astrobeam S110 132W P21.5 (52*56mm) LF132P215 A+K Astrobeam X100 120W P22 (65*70mm) LF120P22 A+K Astrobeam
in „Beamer 'wiederverwerten'?“ · Mikrocontroller und Digitale Elektronik ·
-
Datei
mispav.cpp
k].dar ); #elif LCD_XMAX <= 18 out_printf( "%6f", vkanal[k].dar ); #else // 20 und mehr out_printf( "%7f", vkanal[k].dar ); #endif } FUNCT void out_Isoll( void ) { // vkanal[XIS].d = (vkanal[XIS].w+asp.vk
in „Implementierung von Menüs auf alphanumerischen Displays“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
JieJie-Microelectronics-SMCJ.pdf
in percentage(%) 150 100 td =decay time to half value tr=10μs 80 100 Peak value 60 Half value 40 50 20 td 0 t(ms) 0 T A(℃ ) 0 1.0 2.0 3.0 4.0 0 25 50 75 100 125 150 175 SOLDERING PARAMETERS Reflow Condition Pb-Free assembly (see figure at right) -Temperature Min (T ) +150℃ s(min) Pre -Temperature Max(
in „Bitte um Hilfe bei Bauteilindentifizierung (Sicherung und Diode)“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
OP07.pdf
Frequency TPC 14. Open-Loop Gain vs. TPC 15. Open-Loop Frequency Power Supply Voltage Response ) 100 28 V20 V = 15V VS= 15V ( VS= 15V S ) T = 25 C E VIN= 10mV 80 TA= 25 C (24 A A B E L TA = 25 C ( D O15 POSITIVE SWING N60 T20 T A L E G P16 F NEGATIVE SWING P A F O40 K F10 - A12 O D P E S20 O L O - 8 A L K V 5 C E T 0 P 4 L O S –20 0 A 0 10 100 1k 10k 100k 1M 10M 1k 10k 100k 1M 100 1k 10k LOAD RESISTANCETO GROUND ( ) FREQUENCY (Hz) FREQUENCY (Hz) TPC 16. Closed-Loop Response TPC 17. Maximum Output TPC 18. Maximum Output for
in „Gleichrichteschaltung mittels op“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
High_Power_IGBT_IXGK-GX320N60A3.pdf
Admittance Fig. 6. Transconductance 200 240 180 TJ= - 40ºC 200 160 TJ= 125ºC 140 25ºC 25ºC s - 40ºC n160 r e e120 m m i 125ºC A100 -120 - s I 80 f g 60 80 40 40 20 0 0 3.5 4.0 4.5 5.0 5.5 6.0 6.5 7.0 0 20 40 60 80 100 120 140 160 180 200 V GE - Volts I - Amperes C © 2008 IXYS CORPORATION, All
in „IGBT brennt durch - Weit unter spezifkation.“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
IXGK-GX320N60A3.pdf
Admittance Fig. 6. Transconductance 200 240 180 TJ= - 40ºC 200 160 TJ= 125ºC 140 25ºC 25ºC s - 40ºC n160 r e e120 m m i 125ºC A100 -120 - s I 80 f g 60 80 40 40 20 0 0 3.5 4.0 4.5 5.0 5.5 6.0 6.5 7.0 0 20 40 60 80 100 120 140 160 180 200 V GE - Volts I - Amperes C © 2008 IXYS CORPORATION, All
in „Impulsbelastung von IGBTs -> Parallelschaltung -> Ausgleichswiderstände“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
ST7789V.pdf
DUMMY DUMMY DUMVAP VAP V20 S 1 V20 S 2 V20 S 3 V20 S 4 V20 S 5 V20 S 6 DUMMY DUMMY DUMMY DUMMY DUMMY DUVDD VDD VDD VDD VDD VDD VDD AGND AGND AGND AGND AGND AGND AGND AGND AGND AGND AGND DGND S353 DGND S354 DGND S355 DGND S356
in „LilyGo T-Watch 2020 v1 Micropython“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
andilcd_conchar_sheet_en_splc780d1.pdf
voltage must have the following relations: VDD > V1 > V2 ≧ V3 > V4 > V5. © ORISE Technology Co., Ltd. 20 JUL. 23, 2008 Proprietary & Confidential Version: 1.0 SPLC780D1 7.15.2. The relationship between LCD frame′s frequency and oscillator′s frequency. (Assume the oscillation frequency is 250KHz, 1 clock
in „initialisierung splc780d1“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
splc780d1.pdf
voltage must have the following relations: VDD > V1 > V2 ≧ V3 > V4 > V5. © ORISE Technology Co., Ltd. 20 JUL. 23, 2008 Proprietary & Confidential Version: 1.0 SPLC780D1 7.15.2. The relationship between LCD frame′s frequency and oscillator′s frequency. (Assume the oscillation frequency is 250KHz, 1 clock
in „DDRAM Adressen Pollin 4x16 LCD“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
WIMA_DC_Link_MKP_4.pdf
15 27,5 7,5 0,8 0,4 Versions-Code: 2-Draht = D2 4-Draht Ausführung 17 27,5 10 0,8 0,4 4-Draht = D4 20 27,5 12,5 0,8 0,4 Toleranz: 20 % = M 19 37,5 10 1 0,4 10 % = K 20 37,5 12,5 1 0,4 24 37,5 12,5 1 0,4 5 % = J Verpackung: lose = S 28 37,5 10 1 0,4 Drahtlänge: 6-2 = SD 31 37,5 20 1 0,4 Gurtungsangaben
-
PDF
SIOV_Calculation_2.pdf
IMPEDANCE VALUE CIRCUIT CURRENT TO FIND THE SURGE CONDITIONS SURGE CONDITIONS VALUE REPETITIVE 1.2/50 µs 6 kV, 1.2/50 µs 6 kV, PEAK CURRENT 8/20 µs 500 A 8/20 µs 3 kA WHEN THE REPETITIVE PEAK WHEN THE SHORT CIRCUIT SURGE CURRENT IS MAX. CONTITION IS VDR VDR 50 A S05/H05 6 kV/0.4 kA S07/H05 80 A S07/H05 6 kV/1.0 kA S10/H07 120 A S07/H07 6 kV/1.5 kA S10/H10 175 A S10/H07 6 kV/3.0 kA S14/H14/S20/H20 250 A S10/H10 6 kV/5.0 kA S20/H20 350 A S14/H10 500 A S14/H14 700 A S20/H14 1000 A H05 Multi choice selection chart
in „Varistor dimensionieren“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
155008-da-01-en-8X_DAC_AD7808BRZ_SO24W.pdf
attenuation. LDAC VOUTD DGND AGND Figure 45. Two Externally Applied References +5V V 2 VIN 0.1mF 10mF IN 30kV 30kV 100pF 500V 500V +15V 0.01mF AV DV 30kV DD DD 560pF 560pF COMP +V +15V 1/2 0.01mF IN1 OP275 AD7805 VC1 VOUTA D9 VOUTA IN2 D0 VC2 –15V VOUTB IN 100pF MODE 3 CS VC3 30kV VOUTC WR IN4 +15V DV CLR V 4 1/2 DD V D C OP275 LDAC OUT SSM2164 V B DGND AGND OUT 500V 500V –V –15V 560pF 560pF –15V 30kV 30kV V 3 V 4 IN IN Figure 44. Low Cost, Two-Channel Mixer REV. A –25– AD7804/AD7805/AD7808/AD7809 PAGE INDEX PAGE INDEX (AD7804
in „DAC AD7808 wie register setzen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
155008-da-01-en-8X_DAC_AD7808BRZ_SO24W.pdf
attenuation. LDAC VOUTD DGND AGND Figure 45. Two Externally Applied References +5V V 2 VIN 0.1mF 10mF IN 30kV 30kV 100pF 500V 500V +15V 0.01mF AV DV 30kV DD DD 560pF 560pF COMP +V +15V 1/2 0.01mF IN1 OP275 AD7805 VC1 VOUTA D9 VOUTA IN2 D0 VC2 –15V VOUTB IN 100pF MODE 3 CS VC3 30kV VOUTC WR IN4 +15V DV CLR V 4 1/2 DD V D C OP275 LDAC OUT SSM2164 V B DGND AGND OUT 500V 500V –V –15V 560pF 560pF –15V 30kV 30kV V 3 V 4 IN IN Figure 44. Low Cost, Two-Channel Mixer REV. A –25– AD7804/AD7805/AD7808/AD7809 PAGE INDEX PAGE INDEX (AD7804
in „DAC AD7808 Datenübertragung mit ATMega16 klappt nicht“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Carel-NTC.pdf
50T105 °C Champ d’application -50T105 °C Connexions Bornes nues, dimensions : 5 + 1 mm Capteur NTC 10 kΩ + 1% à 25°C Beta 3435 Facteur de dissipation (dans l’air) Env. / approx. 1 mW/°C Constante therm. dans le temps (dans l’air) Env. / approx. 20 s Câble Bipolaire double gaine isolante, AWG22 en cuivre
-
PDF
vish_ILQ2.pdf
t 1 μs D ILD5 tD 1.7 μs ILQ5 tD 1.7 μs ILD1 t 1.2 μs r ILQ1 r 1.2 μs Rise time VCE = 0.4 V, L = 1 k, CC = 5 V, ILD2 r 2 μs V TH= 1.5 V ILQ2 r 2 μs ILD5 r 7 μs ILQ5 r 7 μs ILD1 s 7.4 μs ILQ1 s 7.4 μs ILD2 t 5.4 μs Storage VCE = 0.4 V, L = 1 k, CC = 5 V, s V TH= 1.5 V ILQ2 s 5.4 μs ILD5 s 4.6 μs ILQ5 t 4.6 μs s ILD1 f 7.6 μs ILQ1 f 7.6 μs ILD2 t 13.5 μs Fall time VCE = 0.4 V, L = 1 k, CC = 5 V, f V TH= 1.5 V ILQ2 f 13.5 μs ILD5 f 20 μs ILQ5 f 20 μs ILD1 tPHL 1.6 μs ILQ1 tPHL 1.6 μs V = 0.4 V, R = 1 k, V =
in „Optokoppler SPS 24V zu 5V“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
MC34063A-D.pdf
1.5 V 0.7 O O 0.6 T 1.4 T V CC= 5.0 V R R 0.5 Pin 7 = CC T 1.3 T 0.4 Pins 2, 3, 5 = Gnd Forced β = 20 S VCC = 5.0 V S TA= 25⋅C ,t 1.2 Pins 1, 7, 8CC V ,t0.3 (See Note 7) s Pins 3, 5 = Gnd (0.2 E 1.1 TA= 25⋅C E VC (See Note 7) VC0.1 1.0 0 0 0.2 0.4 0.6 0.8 1.0 1.2 1.4 1.6 0 0.2 0.4 0.6 0.8 1.0 1.2 1.4
in „T6963C Versorgungspannung“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
excelSolarSystemBeeDatenAnlage.pdf
OutBack FlexMax 80 MPPT Controler float: 27,2V absorbing: 29,6V Inverter: OutBack GVFX 3524 - 3.5 kW / 24 VDC / 120 VAC / 60 Hz (Ventilated / Grid-Tie) 1x pro Woche equalized charging am Generator mit 2Kw bis 30,6V Accumulators 8x rolls deep cycle s530 6V Arbeitstemperatur: 30°C/86°F Voltage of each
in „problem bei ladung der batterien durch PV“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
invertec_v205.pdf
H L A 0 3 : M M O S J B 4 : S I T M O S J B 4 : I I O E X A H E P E X A T F E 2 R 0 C ( A T R 0 C ( A J V W ( E V W ( E I J C I O D D B D D B C K N R L O 4 2 H B B R 7 X K O X T H R L F 0 5 H B H W ( 1 C + - + - C C C C
in „3 Phasen Brückengleichrichter liefert 580 Volt“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
P4SMA_Diotec.PDF
temperature – Sperrschichttemperatur T j -50...+150°C Storage temperature – Lagerungstemperatur T S -50...+150°C 3 Thermal resistance junction to ambient air R thA < 70 K/W ) Wärmewiderstand Sperrschicht – umgebende Luft Thermal resistance junction to terminal R < 30 K/W thT Wärmewiderstand Sperrschicht
in „Warum noch KFZ-Relais?“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
B400_NTC-02_Serie.pdf
factor δ 7 mW/K PACKAGING (for information only) 8.5 mW/K The thermistors are packed in bulk or tape on reel; (for 640..338 to 689) see code numbers and relevant packaging quantities. Response time 1.2 s Thermal time
in „Temperatur Messung mit Mega8 und NTC-Widerstand 4,7k“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
B400_NTC-02_Serie.pdf
factor δ 7 mW/K PACKAGING (for information only) 8.5 mW/K The thermistors are packed in bulk or tape on reel; (for 640..338 to 689) see code numbers and relevant packaging quantities. Response time 1.2 s Thermal time
in „NTC Berechnung nach Steinhart and Hart, 2. Gleichung geht nicht!“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
tlc274.pdf
T A 25°C TLC274Y PARAMETER TEST CONDITIONS MIN TYP MAX UNIT R = 10 kΩ , C = 20 F , VIPP = 1 V 5.3 SR Slew rate at unity gain See Figure 1 L P V/µs VIPP = 5.5 V 4.6 V Equivalent input noise voltage f = 1 kHz, R = 20 Ω, See Figure 2 25 nV/√Hz n S VO = V OH , CL= 20 P, RL
in „Beschaltung von Photodioden“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
SW6007.pdf
Level=3.0A 310 330 350 uA CC 管脚端接电阻 RD 4.9 5.1 5.3 kΩ BC1.2 DP Apple 2.4AMode 2.55 2.7 2.85 V DP/DM 电压 DM Apple 2.4AMode 2.55 2.7 2.85 V LED 电量指示 电量指示 LED 驱动电流 ILED 2 4 6 mA LED 闪烁频率 fLED 0.8 1 1.2 Hz LED 照明 WLED 电阻 R WLED 10 20 30 Ω KEY 短按键 TSHORT 24
in „I2C: Li/ion Mobile Power Shield SW6007<->SW6115“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
MRF150.pdf
N D d5 U 15V N50 Q 600 I R A V DD=50V,IDQ =250mA,TONESEPARATION=1kHz F U I D30 G 400 O Y R35 30MHz N T U I40 ,T200 D 3 f I45 d –50 5 0 0 20 40 60 80 100 120 140 160 0 5 10 15 20 PoutOUTPUTPOWER(WATTSPEP) D ,DRAINCURRENT(AMPS) Figure 4. IMD versus P Figure 5. Common
in „Wärmeleitpad gesucht für POWER FET MRF150“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
LED_Display_driver_chip_SSD1306_DataSheet.pdf
Selection bit ACK – Acknowledgement SA0 – Slave address bit R/W# – Read / Write Selection bit Write mode S – Start Condition / P – Stop Condition S R A C D A A C D A A P 0 1 1 1 1 0 W K o /C Control byKe Data byte K o /C Control byKe Data byte K # # # Slave Address m ≥ 0 words 1 byte n ≥ 0 bytes MSB ……………
in „Spannungsversorgung Arduino läuft nicht über Vin oder 5V-Pin“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
LED_Display_driver_chip_SSD1306_DataSheet.pdf
Selection bit ACK – Acknowledgement SA0 – Slave address bit R/W# – Read / Write Selection bit Write mode S – Start Condition / P – Stop Condition S R A C D A A C D A A P 0 1 1 1 1 0 W K o /C Control byKe Data byte K o /C Control byKe Data byte K # # # Slave Address m ≥ 0 words 1 byte n ≥ 0 bytes MSB ……………
in „SSD1306/1309 Library zum Darstellen von Text auf OLED Displays“ · Projekte & Code ·
-
PDF
SSD1306.pdf
Selection bit ACK – Acknowledgement SA0 – Slave address bit R/W# – Read / Write Selection bit Write mode S – Start Condition / P – Stop Condition S R A C D A A C D A A P 0 1 1 1 1 0 W K o /C Control byKe Data byte K o /C Control byKe Data byte K # # # Slave Address m ≥ 0 words 1 byte n ≥ 0 bytes MSB ……………
in „SH1106 Init-Sequenz“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Solomon_Systech_LED_Display_driver_chip_SSD1306.pdf
Selection bit ACK – Acknowledgement SA0 – Slave address bit R/W# – Read / Write Selection bit Write mode S – Start Condition / P – Stop Condition S R A C D A A C D A A P 0 1 1 1 1 0 W K o /C Control byKe Data byte K o /C Control byKe Data byte K # # # Slave Address m ≥ 0 words 1 byte n ≥ 0 bytes MSB ……………
in „Mit Wire.h über I2C auf LCD-Display 1602 zugreifen“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
Solomon_Systech_LED_Display_driver_chip_SSD1306.pdf
Selection bit ACK – Acknowledgement SA0 – Slave address bit R/W# – Read / Write Selection bit Write mode S – Start Condition / P – Stop Condition S R A C D A A C D A A P 0 1 1 1 1 0 W K o /C Control byKe Data byte K o /C Control byKe Data byte K # # # Slave Address m ≥ 0 words 1 byte n ≥ 0 bytes MSB ……………
in „SSD1306/1309 Library zum Darstellen von Text auf OLED Displays“ · Projekte & Code ·
-
PDF
Powersoft_DigiMod_1000_schematic.pdf
4 E C60 R 26 26 2 1 4 D 3 6 3 GND VDD 6 V 0.1uF/100V C99 27 CN9-27 w 27 1 0 1 0.1uF/275V±20% G 1 C56 1 0.022uF/100V 28 3 % 28 C 0 C 4 4 5 V V 4 5 1.0uF/16V Q ± 3 - 5 . IN B OUT B 29 % ▯ C 29 V T2 N HCPL-0611 3 F 1 5 TC4423EPA 1 30 ± K V 30 1 2.3mH/4A C C 1 D 2 U15 31 K 0 31 CN16 1+ V V
in „Powersoft DigiMod 1500 Endstufe - DC Offset am Ausgang“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
tlc2652a.pdf
FREQUENCY COMMON-MODE INPUT VOLTAGE 70 25 VDD± = ±5 V V DD± = ±5 V 60 VIC= 0 TA= 25°C V TA= 25°C µ A 20 t 50 p s t f n t 40 r p u 15 I s d 30 i i B a u 10 m 20 n o − N B − 10 II II 5 V 0 −10100 1 k 10 k 100 k 0 −5 −4 −3 −2 −1 0 1 2 3 4 5 Chopping Frequency − Hz V IC− Common-Mode Input Voltage − V Figure
in „Stromverbrauch eines Mikrocontrollers zeitaufgelöst messen“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
TD028STEB1.pdf
toppoly Optoelectronics corporation. Page: 15/28 1616 TD028STEB1 7.3 Setup / Hold Timing chart Vs t v s y s t v s y h t h s y s Hs t h s y h t h v t c l k t c k l t c k h CLK DATA t d s t d h Ratings Parameter Symbol Conditions Unit MIN TYP MAX Vertical Sync. Setup time tvsys 20 - - ns Vertical Sync. Hold
in „Frage: TFT LCD Display TD028STEB1 von Toppoly per AVR ansteuern?“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
al-kxj-e-150701.pdf
345 EKXJ221E □□ 560MJ25S 82 10× 30 0.20 445 EKXJ161E □□ 820MJ30S 56 10 ×30 0.20 370 EKXJ221E □□ 560MJ30S 100 12.5× 20 0.20 575 EKXJ161E □□ 101MK20S 68 12.5×20 0.20 475 EKXJ221E □□ 680MK20S 120 10 35 0.20 570 EKXJ161E 121MJ35S
in „Frage zu DB NCC Lebensdauer“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
Vishay-Intertech-VS-E5PH6006L-N3_C2984102.pdf
Voltage Fig. 4 - Maximum Allowable Case Temperature vs. Average Forward Current 140 120 RMS limit ) ( s 100 o r 80 e o D = 0.01 P 60 D = 0.05 e D = 0.10 a 40 D = 0.20 e D = 0.50 A DC 20 0 0 20 40 60 80 100 I - Average Forward Current (A) F(AV) Fig. 5 - Average Power Loss vs. Average Forward Current 1 e
in „Netzteil schützen / Diode / Rückstrom“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
STD5NM50.pdf
Parameter Value Unit VDS Drain-source Voltage GS= 0) 500 V VDGR Drain-gate Voltage GS= 20 k ) 500 V V GS Gate- source Voltage ±30 V ID Drain Current (continuous) Ct T = 25°C 7.5 A ID Drain Current (continuous) Ct T = 100°C 4.7 A DM l) Drain Current (pulsed) 30 A P Total Dissipation at T =
in „Dynamischer Wärmewiderstand => Cth Rth“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
SA5.0CA.pdf
P Lead Length = 3/8" 1 2 3 4 NOTE: DIMENSIONS IN [ ] =MILLIMETERS P I 25 TIME (t) IN MILLISECONDS S R U E FIGURE 2 P W MECHANICAL K P CHARACTERISTICS E 0 50 100 150 175 PULSE WAVEFORM FOR P EXPONENTIAL SURGE CASE: Void free transfer T LEAD TEMPERATURE °C molded thermosetting L FIGURE 1 plastic. FINISH
in „Ersatztypen für Diode“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
bk_2610_2636_datasheet.pdf
0.2dB) – 2610:2636 Min. Overload Duration: 200 s (50–60Hz) ±10% AC Phase Deviation (without filters): Duration of Warning: 0.5s or longer Power Consumption: ±5 between any two 2610’s or 2636’s in 20Hz ~25VA nominal (2610 only) up to 20kHz range HARMONIC
-
PDF
TS13003_D07.pdf
) Delay Time V CC= 125V, IC= 1A, td -- 0.05 0.2 uS Rise Time IB1= IB2= 0.2A, r -- 0.5 1 uS Storage Time tp= 25uS t -- 2 4 uS STG Fall Time Duty Cycle ≤1% f -- 0.4 0.7 uS * Note: pulse test: pulse width ≤300uS, duty cycle ≤2% 2/6 Version: D07 TS13003
in „Transistor "13003" (TO92)“ · Mikrocontroller und Digitale Elektronik ·
-
PDF
TS13003_D07.pdf
) Delay Time V CC= 125V, IC= 1A, td -- 0.05 0.2 uS Rise Time IB1= IB2= 0.2A, r -- 0.5 1 uS Storage Time tp= 25uS t -- 2 4 uS STG Fall Time Duty Cycle ≤1% f -- 0.4 0.7 uS * Note: pulse test: pulse width ≤300uS, duty cycle ≤2% 2/6 Version: D07 TS13003
in „Reparatur EVG für T5 Röhre“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
MJE13009-D.PDF
0.4 E G A T - 55°C L0.8 O 0.3 V , V 25°C 150°C V 0.2 25°C 0.6 0.1 0.4 0 0.2 0.3 0.5 0.7 1 2 3 5 7 10 20 0.2 0.3 0.5 0.7 1 2 3 5 7 10 20 C , COLLECTOR CURRENT (AMP) C , COLLECTOR CURRENT (AMP) Figure 7. Base−Emitter Saturation Voltage Figure 8. Collector−Emitter Saturation Voltage 10K 4K V = 250 V CE C
in „Elektronischen Halogen-Trafo auf LED-Betrieb umrüsten“ · Analoge Elektronik und Schaltungstechnik ·
-
PDF
OM4031.pdf
power-down supply current CE = V SS − 1.0 10.0 A DD operating supply current CE = V DD; note 1 − 1.5 20.0 A Pi(ref) sensitivity improvement at 3% bit error rate note 2 600 bits/s, 250 s slope − 5.3 − dB 1200 bits/s, 250 s slope − 3.6 − dB 2400 bits/s, 125 s slope − 2.0 − dB Tamb operating ambient temperature
in „Selbstbau eines guten 30m-Empfängers“ · HF, Funk und Felder ·