Coal Power generation Company Bangladesh Ltd ( CPGCBL-2023 )
Post: Sub-Assistant Engineer ( Electrical); Venue: BUET, Exam Date: 03.11.2023
Question-01: যদি সার্কিটের XL এবং XC সমান হয় তবে V0 নির্ণয় কর, সার্কিটের ফ্রিকুয়েন্সি নির্ণয় কর।
Solution:
When, XL = XC
Inductive Reactance XL=2πfL, Capacitive Reactance XC = 1/ 2πfC
V0 = IR = 3.6 = 3.6×10-3 X0.5×103 = 1.8 V
Question-02:
Solution:
Applying KCL at point “a”
i0 = V0 /4 = 24 / 4 = 6 A (Answer)
P0 = V0 i0 = 24×6 = 144 W (Answer)
Question-03: To find the converted power and efficiency of the 3-phase induction motor 480 V, 60 Hz, 0.85 pf, taking 60 A current. Stator copper loss 2 kw , rotor copper loss 700 w, iron loss 1800 w, friction loss 600 w.
Solution:
Given Data:
- Line voltage, VL=480
- Frequency, f = 60 Hz
- Power factor, pf =85
- Current, I = 60A
- Stator copper loss = 2000 W (or 2 kW)
- Rotor copper loss = 700 W
- Iron loss = 1800 W
- Friction & windage loss = 600 W
Input Power, Pin = √3⋅VL⋅I⋅pf = √.480⋅60⋅0.85≈42400.5 W (or 42.4 kW)
Total losses = 2000+700+1800+600 = 5100 W
Output Power, Pout = Pin−Total losses = 42400.5 – 5100 = 37300.5 W
“Converted power” is the power transferred from stator to rotor, (i.e., air-gap power Pag )
Converted power Pag = Pout + Friction loss = 37300.5 + 600 = 37900.5 W
So, converted power = 37.9 kW
Final Answers:
- Input Power = 42.4 kW
- Converted Power = 37.9 kW
- Efficiency = 87. 96%
Question-04:
একটি 100 MW স্টিম পাওয়ার স্টেশনের ব্যবহারকৃত কয়লার ক্যালোরিফিক ভ্যালু 6400 kcal/kg, পাওয়ার স্টেশনের Thermal Efficiency 30% & Electrical Efficiency 92% . প্রতি ঘন্টায় ব্যবহারকৃত কয়লার পরিমাণ নির্ণয় কর, যখন পাওয়ার স্টেশন ফুল রেটেড আউটপুট সরবরাহ করে।
Solution:
We Know, 1 MW = 860,000 kcal/hr
Thermal Input=362.33×860,000 = 311,603,800 kcal/hr
Coal Consumption = Thermal Input / Calorific Value = 311,603,800 / 6400 ≈ 48,688 kg/hr (Answer)
Question-05: (i) Find Average Load, (ii)Load factor, (iii)
Capacity Factor, (iv) Reserve Capacity for 150 MW power station from bellow curve.
Solution:
Question-06:
