INFORME-FINAL-3-DE-CIRCUITOS-ELECTRONICOS-1.docx

May 20, 2019 | Author: Mario Ccoyori Mendoza | Category: Distortion, Diode, Force, Electronic Engineering, Física y matemáticas
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UNIVERSIDAD NACIONAL MAYOR DE SAN MARCOS Universidad del Perú, Decana de A méri méri ca

FACULTAD DE INGENIERÍA ELECTRICA Y ELECTRÓNICA

PROFESOR: PAREDES PEÑAFIEL RENATO

ALUMNO:

CÓDIGO:

 ABREGO CÁCERES MATIAS

16190174

RIVAS MENDOZA MANUEL ALEXANDER

16190142

 ALARCÓN PALOMINO MARY MARY JHANIRA

16190175

FACULTAD: INGENIERÍA ELECTRÓNICA

CURSO: CIRCUITOS ELECTRONICOS I

TEMA: CIRCUITOS LIMITADORES Y ENCLAVADORES CON DIODOS TIPO DE INFORME: FINAL AÑO: 2017

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I I. RESUMEN: En esta experiencia pudimos aprender el funcionamiento de un circuito limitador ya que observamos que dependiendo de la posición del diodo o de la fuente de alimentación continua este puede recortar la señal de entrada en la parte positiva o en la l a parte negativa dependiendo del caso. .También observamos el efecto que produce un condensador en un circuito enclavador ya que este altera a la señal cuando se carga y descarga y por últimos observamos como en un circuito que tiene frecuencias iguales o múltiplos de ellas la señal cuadrada recortaba a la señal sinusoidal.

II. PALABRAS CLAVE: . Diodo Limitador  . Diodo sujetador . Regulador de voltaje. III. ABSTRACT: In this experience we were able to learn the operation of a limiting circuit as we observe that depending on the position of the diode or the continuous power supply this can cut the input signal in the positive part or the negative part depending of the case. . We also observe the effect produced by a capacitor in a nailing circuit as this alters the signal when loading and unloading and lastly we observe as in a circuit that has equal frequencies. f requencies.

IV. KEYWORD: .Limiting Diode. .Fastener Diode .Voltage regulator.

V. INTRODUCCIÓN: . En esta experiencia aprenderemos los efectos que causan un circuito limitador el cual es la consecuencia de las condiciones del diodo al estar polarizado ya sea en directa o en forma inversa.

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I VI. MATERIALES Y MÉTODOS: Los métodos a usar son simples; primero implementaremos el circuito mostrado en la guía y la señal que debe aparecernos es la que vemos como resultado del funcionamiento de nuestro circuito ya sabiendo de antemano como nos debería salir teóricamente la señal del circuito.

.Osciloscopio.

.Generador de señales.

.Diodo 1N4004

.Diodo 1N4148

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

.Diodo Zener de 5.6 V

.Resistencias

.bobina

.Cables de conexión.

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I .Fuente de poder DC:

VII. RESUTADOS: 1. Implementar el circuito de la figura 3.1. a. Aplicar una señal sinusoidal de 16 Vpp, observando y dibujando las señales de entrada y salida para frecuencias de 100 Hz, 1kHz y 10 KHz. Graficar los 3 resultados en la figura 3,2, con diferentes bases de tiempo. XSC2

R2 Tektronix

470Ω

V1 8Vpk 100Hz 0°

D1 1N4148

P G

R1 10kΩ

V3 5V

1

2

3

4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I b. Invertir la polaridad de la fuente DC y el diodo. Proceder como en el paso anterior. Graficar los 3 resultados en la figura 3.3, con diferentes bases de tiempo. XSC1

Tektronix

R2 P

470Ω

V1 8Vpk 100Hz 0°

1

2

3

4

T

G

D1 1N4148 R1 10kΩ

V3 5V

c. Colocar un diodo en paralelo con R1 de 10K Ω( con el ánodo del diodo conectado a GND) en el circuito de la figura 3.1 Repetir los pasos a y b y graficar los resultados en las figuras 3.4 y 3.5, respectivamente. d. Verificar los resultados mediante simulación. 1. c.a:

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

XSC1

Tektronix

R2 P

470Ω

V1 8Vpk 100Hz 0°

1 2 3 4

T

G

D1 1N4148

D2 5V

R1 10kΩ

V3 5V

1. c. b Diodo zener en paralelo con fuente y diodo invertido (100Hz) XSC1

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

2. Implementar el circuito de la figura 3.6 a. Aplicar las mismas señales del paso anterior. Observar las ondas de salida, variando loa fuente DC. Graficar los resultados en la figura 3.7, con diferentes bases de tiempo. XSC1

R1

D1

470Ω

1N4004

Tektronix

P G

R2 10kΩ

V1 8Vpk 100Hz 0°

V2 5V

1 2 3 4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

b. Invertir la polaridad de la fuente DC y los diodos. Proceder como en el paso anterior. Graficar los 3 resultados en la figura 3.8, con diferente bases de tiempo XSC1

R1

D1

470Ω

1N4004

Tektronix

P G

R2 10kΩ

V1 8Vpk 100Hz 0°

V2 5V

1 2 3 4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I c. Verifique sus resultados mediante simulación. d. Implementar un circuito limitador usando diodos Zener. Previamente conversar con el profesor. 2. d Diodo zener (100 Hz) XSC1

Tektronix

R1

D1 P

470Ω

G

5V R2 10kΩ

V1 8Vpk 100Hz 0°

2. d Diodo Diodo zener zener inverso (100 Hz)

V2 5V

1 2 3 4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

Zener inverso inverso y fuente inversa inversa (100Hz) XSC1

Tektronix

R1

D1 P

470Ω

G

5V R2 10kΩ

V1 8Vpk 100Hz 0°

V2 5V

1 2 3 4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I 3. Implementar el circuito de la figura 3.9 a. Aplicar una señal cuadrada de 8 Vpp, observando y dibujando las señales de entrada y salida para frecuencias de 100 Hz, 1Khz y 10 KHz. Graficar los resultados en la figura 3,10, con diferentes bases de tiempo. XSC1

C1 Tektronix

0.47µF R1

D1 1N4148

V1 4V -4V 100Hz

10kΩ

V2 5V

P G

1 2 3 4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I XSC1

C1 Tektronix

0.47µF R1

D1 1N4148

V1 4V -4V 1kHz

10kΩ

V2 5V

P G

1 2 3 4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

4. Implementar el circuito de la figura 3.14. a. Aplicar una señal cuadrada de 8 Vpp, Observando y dibujando la señal de salida para frecuencias de 25 KHz, 100KHz y 500KHz. Graficar los resultados en la figura 3.15, con diferente bases de tiempo. b. Verifique sus resultados mediante la simulación. XSC1

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

c. Colocar otro diodo y repetir el paso anterior. Graficar los resultados en la figura 3.16, con diferentes bases de tiempo. d. Verifique sus resultados mediante la simulación. XSC1

Tektronix

D1 P G

1N4004

R1

 V1 4V

-4V

25kHz

10kΩ

1

2

3

4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I 5. Implementar el circuito de la figura 3.17, tratando de sincronizar la frecuencia del generador como múltiplo de 60 Hz. Graficar la señal de salida en la figura 3.18. 6. Verifique sus resultados mediante la simulación. T1 R1 10kΩ

18.33:1

Key=A

50 %

D1 1N4004

D2 1N4148

R3 10kΩ

V2 15V XSC1

Tektronix

D3 1N4148 R2 V1 5V -5V 120Hz

470Ω

D4 1N4004

R4 10kΩ

P G

1 2 3 4

T

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I 100 Hz:

1KHz:

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I Para los 3 casos nuestro diodo conectado de manera directa recorta la parte de arriba de nuestra señal cuando cambia su condición debido a la fuente continua.

1b: 100 Hz:

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

Para los 3 casos nuestro diodo conectado de manera inversa recorta la parte de abajo de nuestra señal cuando cambia su condición debido a la fuente continua y en ese instante la corriente medida es la de la fuente continua hasta que de nuevo el voltaje de la fuente alterna sea menor al voltaje de la fuente continua y la señal que se ve es la usual.

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

20KHz:

En esta ocasión d1 actúa como en la figura original mientras que d2 se comporta como circuito abierto; y cuando la señal llegue a su parte negativa, d1

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

En esta ocasión d1 actúa como en la figura original mientras que d2 se comporta como circuito abierto; y cuando la señal llegue a su parte positiva, d1 es ahora un circuito abierto y d2 se comporta como corto y entonces manda la

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I En ambos casos cuando la señal alterna es mayor que la continua conectada de manera inversa se mide la continua es este caso su voltaje negativo y cuando la señal alterna es menor, cambia la condición del diodo y mide el pico negativo de la alterna nuestro osciloscopio.

2. d: Zener y fuente dc inverso:

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I 4. a: diodo 1N4004:

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I 25 KHz:

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I Para ambos casos lo único que afecta el cambio del diodo es el voltaje mínimo

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INFORME FINAL DE CIRCUITOS ELECTRONICOS I

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