Commercial & Industrial Power Equipment Worldwide

Equipment for use in

Frequently asked questions

What type of fuel is best?

A:  There are many advantages and disadvantages to different types of fuel. Nearly all Generators use either gasoline, diesel, natural gas or propane. The following information will hopefully answer any questions or concerns you may have concerning different fuel sources.

Gasoline:

  • Advantages:
    • Common fuel source – easily obtained
    • Increases portability of smaller generators
  • Disadvantages:
    • Highly flammable
    • Short shelf life (approximately 12 months)
    • Storing large quantities is hazardous
    • May not be available during power outages
    • Somewhat Expensive ($1.50 to $2.00 per Gallon)
    • Inefficient

Propane:

  • Advantages:
    • Long shelf life
    • Clean burning
    • Easily stored in both large tanks or in smaller 5 – 10 gallon cylinders
    • Obtainable during power outages – gas stations may be unable to pump fuel during an area wide outage
  • Disadvantages:
    • Pressurized cylinder of flammable gas
    • Fuel system is more complicated (increased possibility of failure)
    • Larger tanks are not aesthetically pleasing (unsightly)
    • Fuel system plumbing results in higher installation cost
    • Somewhat Expensive ($1.60 to $1.80 a gallon)

Natural Gas:

  • Advantages:
    • Unlimited fuel source – refueling not necessary
    • Clean burning
    • Available during power outages
  • Disadvantages:
    • May be unavailable during natural disasters (earthquakes, etc)
    • Lower power output (30% less BTU’s per unit than gasoline)
    • Fuel system plumbing results in higher installation cost
    • Not available in many areas

Diesel:

  • Advantages:
    • Least flammable fuel source
    • Easily obtained
    • On site fuel delivery available
  • Disadvantages:
    • 18-24 month shelf life
    • Installing large storage tanks raises cost of system
    • May not be available during power outages

What size generator do I need?

A: Power requirements must be determined to properly size your generator. We are providing some steps to assist you in approximating the size generator for your power needs. Please keep in mind that unless you are qualified, you should use a certified electrician to determine your power needs. At Triton Power it is our goal to assist our customers in any way possible. If you have any questions, please do not hesitate to contact us.

Steps to Determine Generator Requirements

  1. Determine your need. Do you want the generator to operate part or all of your home or office?
  2. Identify the appliances and/or tools the generator will need to power. The “Common Wattage Guide” below will help you determine your need.
  3. Determine the wattage for each appliance and tool you plan to use frequently.
  4. Identify motor and pump requirements. Use the motor and pump charts provided below.
  5. Calculate and total the wattage for the motors and pumps frequently used. Always use starting watts, not running watts, when determining the correct electrical load requirements.
  6. Total the wattage of the appliances & tools and the motors & pumps. Keep in mind that if you coordinate your power usage wisely you do not have to operate everything all at once. Therefore, for emergency use you don’t necessarily need to size the generator to operate everything simultaneously.
  7. Convert watts into kilowatts by dividing the watts in step VI. to determine the generator size required. Please note that it is suggested, although not absolutely necessary, to size the generator 20-25% over the size you determine your needs to be. This will allow room for future growth. For example, if you determine that you will need a 15 kW generator then it is advisable to purchase an 18 kW generator to accommodate future expansion.

Common Wattage Guide

ItemRunning WattsStarting Surge
100 watt light bulb100100
Radio AM/ FM stereo50-20050-200
Radio CB5050
Fan200200
Television300-400300-400
Microwave oven7001000
Air conditioner32505000
Furnace fan (1/3 HP blower)6001800
Vacuum cleaner600750
Sump pump (1/3 HP)7002100
Refrigerator/ Freezer8002400
Freezer5001500
6″ circular saw8001000
Floodlight10001000
1/2″ electric drill10001250
Toaster12001200
Coffee maker12001200
Electric skillet12001200
14″ electric chain saw12001500
1/2 HP water well pump10003000
Hot plate15001500
Electric range1000010000
10″ table saw20006000
Hot water heater50005000

Electric Motor Wattage Requirements

Electrical motors present special electrical startup considerations. They can require up to three times their rated running wattage to start. Motor nameplates generally will show starting watts, some as high as nine times the running wattage. Check the nameplate to be sure. Be certain to use the starting watts when figuring the correct electrical load requirements. Motor load requirements are listed below:

Motor Rating HPApproximate Running WattsUniversal Motors Small ApplianceReduction Induction MotorsCapacitor Motors
1/8275400600850
1/44005008501050
1/34506009751350
1/260075013001800
3/4850100019002600
11000125023003000
1 1/21600175032004200
22000235039005100
33000355052006800
** Motors of higher HP are not generally used.

Water Well Pump kW Requirements

Pump HP RatingExternally Regulated GeneratorInternally Regulated Generator
�Min. KWMin. KVAMin. KWMin. KVA
1/31.51.91.21.5
1/22.02.51.51.9
3/43.03.82.02.5
14.05.02.53.125
1 1/25.06.253.03.8
27.59.44.05.0
310.012.55.06.25
515.018.757.59.4
7 1/220.025.010.512.5
1030.037.515.018.8

Notes:

  • It is recommended that the generator be started before the pump motor is turned on.
  • A majority of industrial generators are externally regulated. Generators must be sized to deliver at least 65% of the rated voltage during motor starting to ensure adequate motor starting torque.
  • Industrial generators typically produce 300+ percent of rated capacity for 15-20 seconds during electrical surges.
  • To convert KW into watts multiply KW (x) 1000.

How do I convert AMPS to kW or KVA?

A: Use the following conversion charts:

3 Phase Amperes – 80% Power Factor

KVAKW208V220V240V380V416V440V480V
6.3517.516.515.29.68.68.37.6
9.47.526.124.722.614.31312.311.3
12.51034.73330.119.217.316.615.1
18.7155249.54528.82624.922.5
252069.56660.238.434.733.230.1
31.3258782.575.54843.441.537.8
37.5301049990.357.65249.845.2
45361251181086862.55954
56.34515614713585.5787468
62.55017316515296868376
756020819818111510499.691
93.875261247226143130123113
10080278264240154139133120
125100347330301192173166150
156125433413375240217208188
187150520495450288260249225
219175608577527335304289264
250200694660601384347332301
312250866825751480434415376
3753001040990903576521498451
438350122011551053672607581527
500400139013201203770694665602
625500173516501504960868830752
75060020801970180311411042985903
812650225721351958123611291067978
9377502605246322571426130312321128

Single Phase Amperes

KVA120\240
520.8
833.3
1041.6
1562.5
2083.3
25104
30125
35145
40166
45187
50208
60250
65270
76312
80333
100416
125520
150625
175729
200833
225937
230958
2601041
2751145
3001250
3501458
4001666
4251770
4501876
5002083

Nema Codes for Starting KVA/hp 3 Phase Motors*

CODESTARTING KVA/HPTYPICAL SIZE RANGECODESTARTING KVA/HPTYPICAL RANGE
A0 – 3.15–L9.0 -10.01 HP
B3.15 – 3.55–M10.0 – 11.2Less than 1 HP
C3.55 – 4.0–N11.2 – 12.5–
D4.0 – 4.5–P12.5 – 14.0–
E4.5 – 5.0–R14.0 – 16.0–
F5.0 -5.615 HP and upS16.0 – 18.0–
G5.6 – 6.310 HPT18.0 – 20.0–
H6.3 – 7.17.5 and 5 HPU20.0 – 22.4–
J7.1 – 8.03 HPV22.4 and up–
K8.0 – 9.02 and 1-1/2