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MTU 20V4000 L33 Technical Data Sheet

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93800050096_V08_de_DE

V / Hz
°C
mg/m3 I. n.
°C
°C
°C
m / mbar
°C
%
%
kW
kW
kW
kW
kW
kW
kW
kW
%
%
%
kW
m3 I. n./h
kg/h
m3 I. n./h
m3 I. n./h
kg/h
°C
MZ
kWh/m3 I. n.
mg/m3 I. n.
mg/m3 I. n.
mg/m3 I. n.
mg/m3 I. n.
1/min
mm
mm
dm3
m/s
bar
dm3/h
mbar mbar
kVA
%
°C
m3/h
Pressure Loss, Interpretation
14)
Kv-Value Interpretation
13)15)
a bar / m3/h
bar
°C
°C
m3/h
Pressure Loss, Interpretation
14)
Kv-Value
13) 15)
kPa / m3/h
m3/h / bar
bar
/
50
Combustion air volume flow
1)
Combustion air mass flow
Relative humidity of the combustion air
Energy balance
Heat output 1. Level Mixture Cooler
6)
Electrical Performance
2) 3)
Thermal performance total
6)
Heat output 2. Level Mixture Cooler
6)
Exhaust gas volume flow, wet
1)
Exhaust volume flow, dry
1)

Generator efficiency at cos phi = 1


Electrical efficiency
4)

Overall efficiency incl. Exhaust Heat To Power


Self-Consumption
7)
Exhaust gas heat on cooling to ( 120 °C )
6)
Standard power according to ISO 3046-1
2)
Energy use
4) 5)
NOx, specified as a NO
2
(dry, 5 % O
2
)
Exhaust gas temperature after turbocharger
Technical Data Sheet
Cooling Water Inlet / Outlet
Voltage / Frequency
NOx emissions (dry, 5 % O
2

)
Mixture cooler 1. Level Water Inlet Temperature
Standards and guidelines
Catalyst
Special Equipment
Installation Altitude / Air Pressure,
Combustion Air Temperature
Mixture cooler 2. Level Water Inlet Temperature,
Exhaust Gas Temperature (Outlet)
Natural Gas,
Sewage Gas
, Biogas
, Landfill Gas
Exhaust emissions
5) 8)

449
Exhaust gas mass flow, wet
400
817
90
817
1077
129
( 1032 )
1000
30
1000
1499
100
75
50
Speed
Bore
< 500
Stroke
Displacement
Mean Piston Speed
Compression Ratio
/
CH
4

>95 Vol.%
not applicable
not applicable
not applicable
1031
97.0
39.4
97.5
42.8
41.6
589
59
Thermal Performance Engine (Block, Lubricating Oil, 1.Level Mixture Cooler)
6)
H/F
12.8
CO (dry, 5 % O
2
)
HCHO (dry, 5 % O
2
)
VOC (dry, 5 % O
2
)
Number Of Cylinders / Arrangement
Engine Type
Otto gas engine, lean-burn operation with exhaust gas turbocharger
20V4000L33FN
20
/
V
0.7
2800
30 - 60
< 1000
1500
170.0
210.0
95.3
Coolant volume flow, constant
13)14)
Max. Operation pressure (coolant before engine)
Exhaust gas temperature exhaust gas heat exchanger
coolant temperature (inlet / outlet), interpretation
Max. permissible cos phi inductive (overexcited) / capacitive (under-excited)
12) 22)

Voltage Tolerance Frequency Tolerance


Cooling Of The Motor
Medium effective pressure at rated speed 1/min
oil consumption
10)
Coolant Temperature (Inlet / Outlet), Interpretation
Exhaust back pressure min. - max. according to unit / module
Types Of Performance (Temperature Rise Class F)
11)

Insulation Class / Temperature Rise Class


Winding Step,
Degree Of Protection
Generator
83.6
0.8 / 0.95
2/3
78 / 90
449
Not included
2540
3600
4666
BDEW medium voltage Directive
1999
Max. Operating Pressure Coolant
< 500
40
78 / 90

MTU 20V4000 GS
GG20V4000A1
2.19
/
/
57.4
Exhaust gas heat exchanger
Coolant volume flow, constant
13) 14)
6.0
/
88.0
88.3
88.2
7832
10114
8093
7475
5934
4074
7663
5261
± 10 / ± 5
IP 23
25
1077
589
100
75
10.1 - 10.5 / 8.0 - 11.0
Fuel requirements
9)

Reference fuels
8)

Combustion Air / Exhaust Gas


2050
1538
97.5
( 858 )
6135
4215
5660
10458
3881
7928
5448
476
507
Minimum methane number of
calorific value range: interpretation / capable of operating without power reduction
( 654 )
17.2
10.5
Minimum Flow / Minimum Operating Pressure
1/2
93800050096 / V08 / 27.05.2015
93800050096_V08_de_DE
Technical Data Sheet
MTU 20V4000 GS
GG20V4000A1
°C
m3/h
Pressure Loss, Interpretation
14)
Kv-Value Interpretation
13)15)

a bar / m3/h
m3/h / bar
bar
°C
m3/h
Pressure Loss, Interpretation
14)
Kv-Value Interpretation
13)15)
a bar / m3/h
bar
°C
°C
m3/h
Pressure Loss, Interpretation
14)
Kv-Value Interpretation
15) 16)
a bar / m3/h
bar
kW
°C
°C
K
m3 I. n./h
%
%
V / kW / Ah
dm3
dm3
dm3
dm3
dm3
DN / mbar mbar
Hz
dB
Hz
dB
Lin dB
dB A
dB
Hz
dB
Hz
dB
Lin dB
dB A
dB
mm
mm
mm
kg
EDAM / EDAT
22) Max. permissible cos phi in dependence of the voltage in accordance with the requirements of the BDEW medium voltage Directive
6
/
40 / 43.4
Mixture cooling 2. Level, EXT.
/
Heating Water (Inlet / Outlet), Design
Of Heating Water Volume Flow, Interpretation
14) 16)

50
-
-
-
97.1
Max. Operating Pressure Heating Water
Radiant heat from the unit
17)
Supply air temperature: min. / Interpretation / max.
Efficiency
20 / 25 / 30
15
20
100
Room ventilation
Combustion air temperature
Width
Frequency
Gear oil
250
35.3
Heating water
20)
Nominal diameter / gas pressure min. - max.
96.5
Rated voltage / power / capacity battery
Lubricating oil in the engine
the engine coolant
Min. Machine-room temperature
18)
Weight with consumables (excluding the consumables)
Sea level
Sound power level
Sound pressure level
Humming Sound Pressure Level
0.72
/
42.6
Heating circuit interface
Max. Operating Pressure (Mixture Cooler Inlet)
Engine Coolant (Inlet / Outlet), Interpretation
Minimum Flow / Minimum Operating Pressure
Max. Operating Pressure (Mixture Cooler Inlet)
Mixture coolant temperature (inlet / outlet), interpretation of
coolant flow, design, constant
13) 14)

Frequency
Sound Pressure Level
Frequency
Sound Pressure Level
Max. Temperature Difference (Supply Air / Exhaust Air)
Minimum Supply Air Volume Flow (Combustion + Cooling)
19)

Quantities
22500
24 / 2 x 9 / --
350
310
23
Starter and battery system
Mixture coolant
63
94.5
250
92.6
Sound power level
Transmission
75
3) generator terminal power at rated voltage, cos phi = 1 and frequency
4) According to ISO 3046 (+ 5 % tolerance) with reference fuel at nominal voltage, cos phi = 1, and rated frequency
5) emission values for mains parallel operation
6) thermal performance in the interpretation of temperature; tolerance +/- 8 %
7) power consumption of the module / unit built-consumer
91.1
114.4
102.1
~ 5900
~ 2000
Design a project-specific basis
~ 2400
~ 19700 (~ 19000)
Design a project-specific basis
Dimensions (Unit)
Power reduction
Boundary conditions and materials
Design a project-specific basis
1) standard cubic meter at p = 1013 mbar and T = 273 K
93.8
2) The interpretation in the island operation must be a specific project done
Mixture Coolant Temperature (Entry)
Methane Number
Height
100
180 - 250
/
/
Mixture cooling 1. Level, external
mixture coolant temperature (inlet / outlet), interpretation of
coolant flow, design, constant
13) 14)
105
10) approximate value, at nominal load (without an oil change quantity)
11) Generator at rated operation up to max. 1000 m installation height max. 40 °C intake air temperature in a power reduction of
12) Max. allowable power factor at rated power (from producer's point of view)
13) values for a mixture of 65% water and 35% glycol; in the case of differing coolant composition correction is required.
14) loss of pressure when the volume flow of the medium,
15) The Kv value is the flow rate in m3/h at 1 bar pressure loss. For the minimum and maximum flow limits are set to
16) values for 100 % of the water, in the case of differing coolant composition correction required
In the design of the system must have the tolerance are taken into account.
83.3
21) All of the sound level values at rated output
Humming Sound Pressure Level
Frequency
Sound Pressure Level
Length
Machine noise
21)

(1 Meter, free field based) +3 dB(A) for A-weighted level of tolerance


Gas control system
500
125
93.8
8000
4000
500
91.7
2000
102.8
4000
100.1
120.3
63
114.1
Exhaust noise
21)
(1-Meter distance from the outlet 90°, free-field based) +3 dB(A) for A-weighted level of tolerance
20) when a module incl. Connection pipes
87.2
1000
110.4
1000
86.3
75.4
99.7
104.8
2000
8000
Systems and materials must following MTU factory standards conform to:
A001067
125
110.7
Design a project-specific basis
17) Only Generator and surface losses
18) frost freedom must be guaranteed
19) ventilation quantities, if necessary, the gas safety concept
8) for the determination of the energy balance; deviations efficiency and exhaust emissions affect
9) ability to run the machine
2/2
93800050096 / V08 / 27.05.2015

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