How many 176 resistors are required

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August undefined, 2024

WebJun 24, 2024 · According to Ohm’s law, V = IR Now for x number of resistors of resistance 176 Ω, the equivalent resistance of the resistors connected in parallel is 44 Ω. Therefore, … WebSolution Verified by Toppr Step 1 : Equivalent resistance Let n be the number of resistors to be connected in parallel Then, R 1=R 2=......=R n=R=176 Ω Now, R eq1 = R 11+ R 21 +..... R n1 ⇒ R eq1 = R 1n= 176n ⇒R eq=176/n ....(1) Step 2 : Applying Ohm’s law V=IR eq ⇒220=5R eq ⇒220=5×176/n ( Using Equation (1)) ⇒n=4

How many 176 Ω ?resistor(in parallel) are required to carry 5

WebClick here👆to get an answer to your question ️ How many 176 Ω ?resistor(in parallel) are required to carry 5 A in 220 V line. Solve Study Textbooks Guides. Join / Login. Question . ... Calculate the equivalent resistance of the two resistors of 100 ... WebApr 8, 2024 · Hint: The equation for the net resistance for two resistors of resistances connected in parallel hast to be used first. Further, Ohm's law and Kirchoff’s current law will also be used to find the number of resistors. Formula used: The net resistance for two resistors of three resistances \[({R_1}),({R_2})\]and \[\left( {{R_3}} \right)\] connected in … the rake on steam

How many 176 Ω resistors (in parallel) are required to carry 5 A on …

WebNow, as per Ohm’s Law, we get, V I = 176 x V I = 176 x ⇒ x = 176×5 220 = 4 x = 176 × 5 220 = 4 Hence, in order to draw the required amount of current, four 176 Ω resistors will be … WebFind many great new & used options and get the best deals for Ohmite Two Ganged 35 Ohm 1.0 Amp Wire Wound Potentiometers at the best online prices at eBay! ... Vitreous Enamel Adjustable Wire-Wound Power Resistors, 100 Watts. $5.59 + $4.50 shipping. Ohmite 12 Ohm 2.04 Amp Wire Wound Potentiometer ... Minimum monthly payments are required ... WebMar 29, 2024 · (a) For highest resistance according to question resistances must be connected in series: 4 Ω, 8 Ω, 12 Ω, 24 Ω R 1 = 4 Ω R 2 = 8 Ω R 3 = 12 Ω R 4 = 24 Ω Total resistance in series = R 1 + R 2 + R 3 + R 4 = 4 + 8 + 12 + 24 = 48 Ω Now, resistance is maximum when connected in series. signs clothing

How many $176\\Omega $resistors (in parallel) are required to …

WebAns: For x number of resistors of resistance 176 Ω, Here Supply voltage, V = 220 V Current, I = 5 A Equivalent resistance of the combination = R, given as From Ohm’s law, ∴four … WebHow many 176 Ω resistors (in parallel) are required to carry 5 A on a 220 V line? DARSHAN CLASSES 9,159 views Apr 26, 2024 Q10. How many 176 Ω resistors (in parallel) are … the rake promo code styleforumWebQuestion From - NCERT Physics Class 10 Chapter 12 Question – 033 ELECTRICITY CBSE, RBSE, UP, MP, BIHAR BOARDQUESTION TEXT:-How many `176 Omega` resistors (in... the rake pelicula

"WebMar 30, 2024 · NCERT Question 10 How many 176 Ω resistors (in parallel) are required to carry 5 A on a 220 V line? Current = I = 5 A Potential difference = V = 220 V Resistance of … " - How many 176 resistors are required

How many 176 resistors are required

How many 176 Ω resistors (in parallel) are required to carry

WebMar 9, 2024 · Now for x number of resistors of resistance 176 Ω, the equivalent resistance of the resistors connected in parallel is 44 Ω. 1/44 = 1/176 + 1/176 + 1/176 .....χ times. 1/44 = x / 176 => x = 176/ 44 => x = 4. Therefore, 4 resistors of 176 Ω are required to draw the given amount of current. I hope, this will help you___ . Thank you WebYou are given several identical resistance each of value R=10 and each capable of carrying a maximum current of one ampere. It is required to make a suitable combination of these …

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WebMar 19, 2024 · For three resistors if we connect them in parallel the equivalent resistance is R 1 R = 1 R1 + 1 R2 + 1 R3 1 R = 1 R 1 + 1 R 2 + 1 R 3 For x number of resistors of resistance 176 Ω the equivalent resistance of the resistors connected in parallel is given by ohm’s law as V = IR R = V I V I Where,supply voltage, V = 220 V current I = 5A WebQ 10: How many 176 Ω resistors (in parallel) are required to carry 5 A on a 220 V line? Ans: For x number of resistors of resistance 176 Ω, Here Supply voltage, V = 220 V Current, I = 5 A Equivalent resistance of the combination = R, given as From Ohm’s law, ∴four resistors of 176 Ω are required to draw the given amount of current. Important Links

WebApr 5, 2024 · Therefore, current through 12 Ω resistor = 0.67 A. 12. How many 176 Ω resistors (in parallel) are required to carry 5 A on a 220 V line? Suppose n resistors of 176 Ω are connected in parallel. 1/R = 1/176 + 1/176 + ……….n times 1/R = n/176 or R= 176/n Ω By Ohm’s law R=V/I 176/n = 220/5 n= (176 x 5)/220 = 4 13.

WebR_total = (R1 * R2) / (R1 + R2) Where R1 and R2 are the values of the two resistors. To calculate the number of 176 ohm resistors required in parallel to achieve a specific resistance, you need to use the following formula: WebOct 3, 2024 · We know that according to Ohm’s Law, V = IR. Therefore, R = V/I = 220/5 = 44ohm. Now since n such resistors are connected in parallel,so. 1/R = n/176. or, 1/44 = …

WebApr 29, 2024 · Q 10: How many 176 Ω resistors (in parallel) are required to carry 5 A on a 220 V line? From Ohm’s law, ∴four resistors of 176 Ω are required to draw the given amount of current. When three equal resistance are connected in parallel the effective resistance is 1 by 3 home if all are connected in series the effective resistance is?

WebMar 24, 2024 · Best answer Let the resistors be x’ Resistance = 176Ω As per ohm’s law . V = IR R = V I V I Here, V = 220 V, I = 5A ∴ Four resistors (in parallel) are required to carry 5A on a 220 V line. ← Prev Question Next Question → Find MCQs & Mock Test JEE Main 2024 Test Series NEET Test Series Class 12 Chapterwise MCQ Test Class 11 Chapterwise Practice … the rake originWebJun 17, 2016 · Now for x number of resistors of resistance 176 Ω, the equivalent resistance of the resistors connected in parallel is 44 Ω. 1/44 = 1/176 + 1/176 + 1/176 .....χ times. 1/44 = x / 176 => x = 176/ 44 => x = 4. Therefore, 4 resistors of 176 Ω are required to draw the given amount of current. I hope, this will help you___ . Thank you signs clutch is going outWebHow Many 176 ω Resistors (In Parallel) Are Required to Carry 5 a on a 220 V Line? CBSE English Medium Class 10. Question Papers 939. Textbook ... Therefore, four resistors of 176 Ω are required to draw the given amount of current. Concept: System of Resistors - Resistances in Parallel. signs collectively crossword clueWebApr 8, 2024 · Complete step by step answer: We have given here to find the number of \ [176\Omega \] resistors needed to carry \ [5A\] on a \ [220V\] line. Let, the number of resistors needed is \ [x\]. Hence, the equivalent resistance of the \ [x\] number of resistors will be when connected in parallel, the rake remastered script luaWeb1 R = x× 1 (176) 1 R = x × 1 ( 176) R = 176 x 176 x. Now, as per Ohm’s Law, we get, V I = 176 x V I = 176 x. ⇒ x = 176×5 220 = 4 x = 176 × 5 220 = 4. Hence, in order to draw the required amount of current, four 176 Ω resistors will be needed. Related Questions: the rake pubWebApr 26, 2024 · Q10. How many 176 Ω resistors (in parallel) are required to carry 5 A on a 220 V line?Welcome to our channel, hope you will get sufficient information from o... the rake promo codeWebTo calculate the number of 176 ohm resistors required in parallel to achieve a specific resistance, you need to use the following formula: N = R_desired / R_single Where N is the … the rake of a roof