// Numbas version: finer_feedback_settings {"name": "EL Q003 - Power & Frequency Response ", "extensions": [], "custom_part_types": [], "resources": [["question-resources/SbE_CC1_Q3ai.png", "/srv/numbas/media/question-resources/SbE_CC1_Q3ai.png"], ["question-resources/SbE_CC1_Q3b.png", "/srv/numbas/media/question-resources/SbE_CC1_Q3b.png"], ["question-resources/SbE_CC1_Q3d.png", "/srv/numbas/media/question-resources/SbE_CC1_Q3d.png"], ["question-resources/SbE_CC1_Q3c.png", "/srv/numbas/media/question-resources/SbE_CC1_Q3c.png"], ["question-resources/EL_Q003b_-_RLC_Power.png", "/srv/numbas/media/question-resources/EL_Q003b_-_RLC_Power.png"], ["question-resources/EL_Q003c_-_RLC_Series_Resonance.png", "/srv/numbas/media/question-resources/EL_Q003c_-_RLC_Series_Resonance.png"]], "navigation": {"allowregen": true, "showfrontpage": false, "preventleave": false, "typeendtoleave": false}, "question_groups": [{"pickingStrategy": "all-ordered", "questions": [{"name": "EL Q003 - Power & Frequency Response ", "tags": [], "metadata": {"description": "

Question Covering AC power and frquency response

", "licence": "All rights reserved"}, "statement": "

Power & Frequency Response

", "advice": "

see spread sheet

", "rulesets": {}, "extensions": [], "builtin_constants": {"e": true, "pi,\u03c0": true, "i": true, "j": false}, "constants": [], "variables": {"Q3ai_f_S": {"name": "Q3ai_f_S", "group": "Q3a", "definition": "random(100 .. 150#10)", "description": "

Frequency (fs)

", "templateType": "randrange", "can_override": false}, "Q3ai_V_PP": {"name": "Q3ai_V_PP", "group": "Q3a", "definition": "random(5 .. 9#1)", "description": "

VP-P

", "templateType": "randrange", "can_override": false}, "Q3ai_V_DC": {"name": "Q3ai_V_DC", "group": "Q3a", "definition": "random(0 .. 0#0)", "description": "

DC Offset

", "templateType": "randrange", "can_override": false}, "Q3ai_R_L": {"name": "Q3ai_R_L", "group": "Q3a", "definition": "random(50 .. 150#10)", "description": "

Load Resistor RL

", "templateType": "randrange", "can_override": false}, "q3aii_f_s": {"name": "q3aii_f_s", "group": "Q3a", "definition": "random(33 .. 99#33)", "description": "

Frequency (fs)

", "templateType": "randrange", "can_override": false}, "q3aii_v_pp": {"name": "q3aii_v_pp", "group": "Q3a", "definition": "random(5 .. 5#1)", "description": "

VP-P

", "templateType": "randrange", "can_override": false}, "Q3aii_R_L": {"name": "Q3aii_R_L", "group": "Q3a", "definition": "random(2000 .. 2000#1)", "description": "

RL

", "templateType": "randrange", "can_override": false}, "Q3aii_t_rise": {"name": "Q3aii_t_rise", "group": "Q3a", "definition": "siground(dec(1/(Q3aii_t_rise_modifier*q3aii_f_s)),4)", "description": "", "templateType": "anything", "can_override": false}, "Q3aii_t_rise_modifier": {"name": "Q3aii_t_rise_modifier", "group": "Q3a", "definition": "random(3 .. 4#1)", "description": "

Modifier of t_rise

", "templateType": "randrange", "can_override": false}, "Q3aii_V_DC": {"name": "Q3aii_V_DC", "group": "Q3a", "definition": "random(1 .. 1#1)", "description": "

DC Offset

", "templateType": "randrange", "can_override": false}, "Q3b_R1": {"name": "Q3b_R1", "group": "Q3b", "definition": "random(10 .. 18#2)", "description": "", "templateType": "randrange", "can_override": false}, "Q3b_R2": {"name": "Q3b_R2", "group": "Q3b", "definition": "random(90 .. 120#10)", "description": "", "templateType": "randrange", "can_override": false}, "Q3b_R3": {"name": "Q3b_R3", "group": "Q3b", "definition": "Q3b_R2", "description": "", "templateType": "anything", "can_override": false}, "Q3b_R4": {"name": "Q3b_R4", "group": "Q3b", "definition": "q3b_r2", "description": "", "templateType": "anything", "can_override": false}, "Q3b_VS": {"name": "Q3b_VS", "group": "Q3b", "definition": "random(12 .. 12#1)", "description": "", "templateType": "randrange", "can_override": false}, "Q3c_R_L": {"name": "Q3c_R_L", "group": "Q3d", "definition": "random(1 .. 3#1)", "description": "

Load Resistance (kΩ)

", "templateType": "randrange", "can_override": false}, "Q3c_C1": {"name": "Q3c_C1", "group": "Q3d", "definition": "random(1 .. 3#1)", "description": "

Smoothing Capacitor (uF)

", "templateType": "randrange", "can_override": false}, "Q3c_V_S": {"name": "Q3c_V_S", "group": "Q3d", "definition": "random(20 .. 23#1)", "description": "

Supply Voltage (VS)

", "templateType": "randrange", "can_override": true}, "Q3c_Z_BDV": {"name": "Q3c_Z_BDV", "group": "Q3d", "definition": "siground(dec(q3c_v_s*(3/20)),2)", "description": "

Zener Diode Reverse Breakdown Voltage (V)

", "templateType": "anything", "can_override": false}, "Q3d_C1": {"name": "Q3d_C1", "group": "Q4d", "definition": "random(10 .. 12#0.1)", "description": "

Capacitance C1

", "templateType": "randrange", "can_override": false}, "Q3d_L1": {"name": "Q3d_L1", "group": "Q4d", "definition": "random(170 .. 190#10)", "description": "

Inductance

", "templateType": "randrange", "can_override": false}, "Q3d_R_L": {"name": "Q3d_R_L", "group": "Q4d", "definition": "random(1 .. 5#4)", "description": "", "templateType": "randrange", "can_override": false}, "Q3d_V_S": {"name": "Q3d_V_S", "group": "Q4d", "definition": "random(1 .. 10#9)", "description": "", "templateType": "randrange", "can_override": false}, "Q3ai_DutyCycle": {"name": "Q3ai_DutyCycle", "group": "Q3a", "definition": "random(0.2 .. 0.6#0.1)", "description": "", "templateType": "randrange", "can_override": false}, "Q3b_R5": {"name": "Q3b_R5", "group": "Q3b", "definition": "Q3b_R1", "description": "", "templateType": "anything", "can_override": false}, "Q003b_L": {"name": "Q003b_L", "group": "Q3b", "definition": "random(0.1 .. 0.2#30)", "description": "", "templateType": "randrange", "can_override": false}, "Q003b_C": {"name": "Q003b_C", "group": "Q3b", "definition": "random(40 .. 75#15)", "description": "", "templateType": "randrange", "can_override": false}}, "variablesTest": {"condition": "", "maxRuns": 100}, "ungrouped_variables": [], "variable_groups": [{"name": "Q3b", "variables": ["Q3b_VS", "Q3b_R1", "Q3b_R2", "Q3b_R3", "Q3b_R4", "Q3b_R5", "Q003b_L", "Q003b_C"]}, {"name": "Q3a", "variables": ["Q3ai_f_S", "Q3ai_R_L", "Q3ai_V_DC", "Q3ai_V_PP", "Q3ai_DutyCycle", "q3aii_f_s", "Q3aii_R_L", "Q3aii_t_rise", "Q3aii_t_rise_modifier", "Q3aii_V_DC", "q3aii_v_pp"]}, {"name": "Q3d", "variables": ["Q3c_R_L", "Q3c_C1", "Q3c_V_S", "Q3c_Z_BDV"]}, {"name": "Q4d", "variables": ["Q3d_C1", "Q3d_V_S", "Q3d_L1", "Q3d_R_L"]}], "functions": {}, "preamble": {"js": "", "css": ""}, "parts": [{"type": "information", "useCustomName": false, "customName": "", "marks": 0, "scripts": {}, "customMarkingAlgorithm": "", "extendBaseMarkingAlgorithm": true, "unitTests": [], "showCorrectAnswer": true, "showFeedbackIcon": true, "variableReplacements": [], "variableReplacementStrategy": "originalfirst", "nextParts": [], "suggestGoingBack": false, "adaptiveMarkingPenalty": 0, "exploreObjective": null, "prompt": "

Part a) Signal Waveforms

\n

Draw or derive the voltage and current wave forms for the following:

\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n\n
Waveform\n

Varibles

\n
\n

Circuit

\n
i. Pulsed DC \n

RL: {Q3ai_R_L} Ω

\n

Frequency (fs): {Q3ai_F_S} Hz

\n

VP-P: {Q3ai_V_PP} V

\n

DC Offset (VDC): {Q3ai_V_DC} V

\n

Duty Cycle: {Q3ai_DutyCycle*100}%

\n
\n

\n

\"Simple

\n
ii. Triangular\n

RL: {Q3aii_R_L/1000} kΩ

\n

Frequency (fs): {Q3aii_F_S} Hz

\n

VP-P: {Q3aii_V_PP} V

\n

DC Offset (VDC): {Q3aii_V_DC} V

\n

tRise: {Q3aii_t_rise*1000} ms

\n
\n

\"Simple

\n
\n

\n

SPICE Circuit suitable for analysis: FoES Q003a

\n

\n

[4 Marks]

"}, {"type": "information", "useCustomName": false, "customName": "", "marks": 0, "scripts": {}, "customMarkingAlgorithm": "", "extendBaseMarkingAlgorithm": true, "unitTests": [], "showCorrectAnswer": true, "showFeedbackIcon": true, "variableReplacements": [], "variableReplacementStrategy": "originalfirst", "nextParts": [], "suggestGoingBack": false, "adaptiveMarkingPenalty": 0, "exploreObjective": null, "prompt": "

Part b) Power Calculation

\n

The figure shows a resistor, Inductor and Capacitor Network connected to a Sinusoidal Waveform:

\n

\n

Circuit Varibles: 

\n

VS(peak) = {Q3b_VS}V, f = {100}Hz

\n

R1 & R5 = {Q3b_R1}kΩ,

\n

R2, R3 & R4= {Q3b_R2}kΩ,

\n

L1, L2 & L3 = {Q003b_L}mH

\n

C1, C2 & C3 = {Q003b_C}μF

\n

For the values given, calculate or determine the RMS power dissipated in the whole circuit and resistor R­3

\n

SPICE Circuit Suitable for Analysis: FoES El Q003b

\n

[6 Marks]

\n

"}, {"type": "information", "useCustomName": false, "customName": "", "marks": 0, "scripts": {}, "customMarkingAlgorithm": "", "extendBaseMarkingAlgorithm": true, "unitTests": [], "showCorrectAnswer": true, "showFeedbackIcon": true, "variableReplacements": [], "variableReplacementStrategy": "originalfirst", "nextParts": [], "suggestGoingBack": false, "adaptiveMarkingPenalty": 0, "exploreObjective": null, "prompt": "

Part c) Frequency Response

\n

The circuit shown has a Capacitor, Inductor and Resistor in series which has been designed to be in resonance at a known frequency.  The signal is measured across the load (RL).

\n

\n

\n

Circuit Varibles: VS = {Q3d_V_S}V(RMS) , RL = {Q3d_R_L} kΩ C1 = {Q3d_C1}μF L1 = {Q3d_L1} mH

\n

Using calculation or simulation, evaluate the performance of the circuit in a frequency range from 1Hz to 10kHz.  Ensure that you:

\n\n

SPICE Circuit Suitable for Analysis: FoES EL Q003c

"}], "partsMode": "all", "maxMarks": 0, "objectives": [], "penalties": [], "objectiveVisibility": "always", "penaltyVisibility": "always", "contributors": [{"name": "Robert Bauld", "profile_url": "https://numbas.mathcentre.ac.uk/accounts/profile/19446/"}]}]}], "contributors": [{"name": "Robert Bauld", "profile_url": "https://numbas.mathcentre.ac.uk/accounts/profile/19446/"}]}