Loose Leaf for Engineering Circuit Analysis Format: Loose-leaf
Loose Leaf for Engineering Circuit Analysis Format: Loose-leaf
9th Edition
ISBN: 9781259989452
Author: Hayt
Publisher: Mcgraw Hill Publishers
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Chapter 2, Problem 1E

Convert the following to engineering notation:

  1. (a) 0.045 W
  2. (b) 2000 pJ
  3. (c) 0.1 ns
  4. (d) 39,212 as
  5. (e) 3 Ω
  6. (f) 18,000 m
  7. (g) 2,500,000,000,000 bits
  8. (h) 1015 atoms/cm3

(a)

Expert Solution
Check Mark
To determine

Convert 0.045 W into engineering notation.

Answer to Problem 1E

The conversion of 0.045 W into engineering notation is 45 mW.

Explanation of Solution

Given data:

The power given is 0.045 W.

Calculation:

The conversion of 0.045 W in engineering notation is as follows.

0.045 W=0.045×103 mW                 {1 W=103 mW}=45 mW

Conclusion:

Thus, the conversion of 0.045 W into engineering notation is 45 mW.

(b)

Expert Solution
Check Mark
To determine

Convert 2000 pJ into engineering notation.

Answer to Problem 1E

The conversion of 2000 pJ into engineering notation is 2 nJ.

Explanation of Solution

Given data:

The energy given is 2000 pJ.

Calculation:

The conversion of 2000 pJ in engineering notation is as follows.

2000 pJ=2000×103 nJ                 {1 pJ=103 nJ}=2 nJ

Conclusion:

Thus, the conversion of 2000 pJ into engineering notation is 2 nJ.

(c)

Expert Solution
Check Mark
To determine

Convert 0.1 ns into engineering notation.

Answer to Problem 1E

The conversion of 0.1 ns into engineering notation is 100 ps.

Explanation of Solution

Given data:

The time given is 0.1 ns.

Calculation:

The conversion of 0.1 ns in engineering notation is as follows.

0.1 ns=0.1×103 ps                 {1 ns=103 ps}=100 ps

Conclusion:

Thus, the conversion of 0.1 ns into engineering notation is 100 ps.

(d)

Expert Solution
Check Mark
To determine

Convert 39212 as into engineering notation.

Answer to Problem 1E

The conversion of 39212 as into engineering notation is 39.212 fs.

Explanation of Solution

Given data:

The time given is 39212 as.

Calculation:

The conversion of 39212 as in engineering notation is as follows.

39212 as=39212×103 fs                 {1 as=103 fs}=39.212 fs

Conclusion:

Thus, the conversion of 39212 as into engineering notation is 39.212 fs.

(e)

Expert Solution
Check Mark
To determine

Convert 3 Ω into engineering notation.

Answer to Problem 1E

The conversion of 3 Ω into engineering notation is 3 Ω.

Explanation of Solution

Given data:

The resistance given is 3 Ω.

The given data is already in engineering notation.

Conclusion:

Thus, the conversion of 3 Ω into engineering notation is 3 Ω.

(f)

Expert Solution
Check Mark
To determine

Convert 18000 m into engineering notation.

Answer to Problem 1E

The conversion of 18000 m into engineering notation is 18 km.

Explanation of Solution

Given data:

The distance given is 18000 m.

Calculation:

The conversion of 18000 m in engineering notation is as follows.

18000 m=18000×103 km                 {1 m=103 km}=18 km

Conclusion:

Thus, the conversion of 18000 m into engineering notation is 18 km.

(g)

Expert Solution
Check Mark
To determine

Convert 2,500,000,000,000 bits into engineering notation.

Answer to Problem 1E

The conversion of 2,500,000,000,000 bits into engineering notation is 2.5 terabits.

Explanation of Solution

Given data:

The memory given is 2,500,000,000,000 bits.

Calculation:

The conversion of 2,500,000,000,000 bits in engineering notation is as follows.

2,500,000,000,000 bits=(2,500,000,000,000×1012 terabits)                 {1 bit=1012 terabits}=2.5 terabits

Conclusion:

Thus, the conversion of 2,500,000,000,000 bits into engineering notation is 2.5 terabits.

(h)

Expert Solution
Check Mark
To determine

Convert 1015 atomscm3 into engineering notation.

Answer to Problem 1E

The conversion of 1015 atomscm3 into engineering notation is 1021 atoms m3.

Explanation of Solution

Given data:

The volume density of atom given is 1015 atomscm3.

Calculation:

The conversion of 1015 atomscm3 in engineering notation is as follows.

1015 atomscm3=1015 atoms106 m3                 {1 cm3=106 m3}=1021 atoms m3  

Conclusion:

Thus, the conversion of 1015 atomscm3 into engineering notation is 1021 atoms m3.

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Chapter 2 Solutions

Loose Leaf for Engineering Circuit Analysis Format: Loose-leaf

Ch. 2.4 - Prob. 12PCh. 2.4 - The power absorbed by the resistor if i = 3 nA and...Ch. 2 - Convert the following to engineering notation: (a)...Ch. 2 - Convert the following to engineering notation:...Ch. 2 - Prob. 3ECh. 2 - Prob. 4ECh. 2 - Convert the following to SI units, taking care to...Ch. 2 - Prob. 6ECh. 2 - It takes you approximately 2 hours to finish your...Ch. 2 - A certain krypton fluoride laser generates 15 ns...Ch. 2 - Your recommended daily food intake is 2500 food...Ch. 2 - An electric vehicle is driven by a single motor...Ch. 2 - Under insolation conditions of 500 W/m2 (direct...Ch. 2 - A certain metal oxide nanowire piezoelectricity...Ch. 2 - Assuming a global population of 9 billion people,...Ch. 2 - The total charge flowing out of one end of a small...Ch. 2 - Prob. 15ECh. 2 - The total charge stored on a 1 cm diameter...Ch. 2 - A mysterious device found in a forgotten...Ch. 2 - A new type of device appears to accumulate charge...Ch. 2 - The current flowing through a tungsten-filament...Ch. 2 - The current waveform depicted in Fig. 2.28 is...Ch. 2 - The current waveform depicted in Fig. 2.29 is...Ch. 2 - A wind power system with increasing windspeed has...Ch. 2 - Two metallic terminals protrude from a device. The...Ch. 2 - The convention for voltmeters is to use a black...Ch. 2 - Determine the power absorbed by each of the...Ch. 2 - Determine the power absorbed by each of the...Ch. 2 - Determine the unknown current for the circuit in...Ch. 2 - A constant current of 1 ampere is measured flowing...Ch. 2 - Determine the power supplied by the leftmost...Ch. 2 - The currentvoltage characteristic of a silicon...Ch. 2 - A particular electric utility charges customers...Ch. 2 - The Tilting Windmill Electrical Cooperative LLC...Ch. 2 - A laptop computer consumes an average power of 20...Ch. 2 - You have just installed a rooftop solar...Ch. 2 - Prob. 35ECh. 2 - Some of the ideal sources in the circuit of Fig....Ch. 2 - Prob. 37ECh. 2 - Refer to the circuit represented in Fig. 2.35,...Ch. 2 - Prob. 39ECh. 2 - Prob. 40ECh. 2 - Prob. 41ECh. 2 - Determine the magnitude of the current flowing...Ch. 2 - Real resistors can only be manufactured to a...Ch. 2 - (a) Sketch the current-voltage relationship...Ch. 2 - Prob. 45ECh. 2 - Figure 2.38 depicts the currentvoltage...Ch. 2 - Examine the I-V characteristics in Fig. 2.38....Ch. 2 - Determine the conductance (in siemens) of the...Ch. 2 - Determine the magnitude of the current flowing...Ch. 2 - A 1% tolerance 1 k resistor may in reality have a...Ch. 2 - Utilize the fact that in the circuit of Fig. 2.39,...Ch. 2 - For the circuit in Fig. 2.39, suppose that the...Ch. 2 - For each of the circuits in Fig. 2.40, find the...Ch. 2 - Sketch the power absorbed by a 100 resistor as a...Ch. 2 - You built an android that has a subcircuit...Ch. 2 - Using the data in Table 2.4, calculate the...Ch. 2 - Prob. 58ECh. 2 - Prob. 59ECh. 2 - Prob. 60ECh. 2 - The resistance values in Table 2.4 are calibrated...Ch. 2 - Prob. 62ECh. 2 - Prob. 63ECh. 2 - The network shown in Fig. 2.42 can be used to...Ch. 2 - Prob. 65ECh. 2 - An LED operates at a current of 40 mA, with a...Ch. 2 - You have found a way to directly power your wall...
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