Information injection-pump assembly
BOSCH
9 460 614 290
9460614290
ZEXEL
104740-3110
1047403110
MITSUBISHI
MD062270
md062270

Rating:
Cross reference number
BOSCH
9 460 614 290
9460614290
ZEXEL
104740-3110
1047403110
MITSUBISHI
MD062270
md062270
Zexel num
Bosch num
Firm num
Name
104740-3110
9 460 614 290
MD062270 MITSUBISHI
INJECTION-PUMP ASSEMBLY
4D55 K 11CJ INJECTION PUMP ASSY VE4 VE
4D55 K 11CJ INJECTION PUMP ASSY VE4 VE
Calibration Data:
Adjustment conditions
(Note)
For Japan: year/month/day (change sequence) 1988/11/24 (1)
For Japan: year/month/day (change sequence) 1988/11/24 (1)
Test oil
1404 Test oil ISO4113orSAEJ967d
1404 Test oil ISO4113orSAEJ967d
Test oil temperature
degC
45
45
50
Nozzle
105000-2010
Bosch type code
NP-DN12SD12TT
Nozzle holder
105780-2080
Opening pressure
MPa
14.7
14.7
15.19
Opening pressure
kgf/cm2
150
150
155
Injection pipe
Inside diameter - outside diameter - length (mm) mm 2-6-840
Inside diameter - outside diameter - length (mm) mm 2-6-840
Transfer pump pressure
kPa
20
20
20
Transfer pump pressure
kgf/cm2
0.2
0.2
0.2
Direction of rotation (viewed from drive side)
Right R
Right R
Injection timing adjustment
Pump speed
r/min
600
600
600
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
33
32.5
33.5
Difference in delivery
mm3/st.
2.5
Basic
*
Injection timing adjustment_02
Pump speed
r/min
850
850
850
Boost pressure
kPa
26.65
25.3
28
Boost pressure
mmHg
200
190
210
Average injection quantity
mm3/st.
42.7
42.2
43.2
Basic
*
Remarks
Refer to additional devices.
Refer to additional devices.
Injection timing adjustment_03
Pump speed
r/min
2650
2650
2650
Boost pressure
kPa
83.3
82
84.6
Boost pressure
mmHg
625
615
635
Average injection quantity
mm3/st.
22.6
17.6
27.6
Injection timing adjustment_04
Pump speed
r/min
2100
2100
2100
Boost pressure
kPa
83.3
82
84.6
Boost pressure
mmHg
625
615
635
Average injection quantity
mm3/st.
45.4
42.9
47.9
Injection timing adjustment_05
Pump speed
r/min
1250
1250
1250
Boost pressure
kPa
63.75
62.4
65.1
Boost pressure
mmHg
478
468
488
Average injection quantity
mm3/st.
51.6
49.1
54.1
Injection timing adjustment_06
Pump speed
r/min
850
850
850
Boost pressure
kPa
26.65
25.3
28
Boost pressure
mmHg
200
190
210
Average injection quantity
mm3/st.
42.7
41.7
43.7
Injection timing adjustment_07
Pump speed
r/min
600
600
600
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
33
32
34
Injection timing adjustment_08
Pump speed
r/min
600
600
600
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
32.2
31.7
32.7
Difference in delivery
mm3/st.
2.5
Basic
*
Remarks
For Japan
For Japan
Injection timing adjustment_09
Pump speed
r/min
850
850
850
Boost pressure
kPa
26.65
25.3
28
Boost pressure
mmHg
200
190
210
Average injection quantity
mm3/st.
41.7
41.2
42.2
Basic
*
Remarks
For Japan: refer to additional devices
For Japan: refer to additional devices
Injection timing adjustment_10
Pump speed
r/min
2650
2650
2650
Boost pressure
kPa
83.3
82
84.6
Boost pressure
mmHg
625
615
635
Average injection quantity
mm3/st.
22.1
17.1
27.1
Remarks
For Japan
For Japan
Injection timing adjustment_11
Pump speed
r/min
2100
2100
2100
Boost pressure
kPa
83.3
82
84.6
Boost pressure
mmHg
625
615
635
Average injection quantity
mm3/st.
44.3
41.8
46.8
Remarks
For Japan
For Japan
Injection timing adjustment_12
Pump speed
r/min
1250
1250
1250
Boost pressure
kPa
63.75
62.4
65.1
Boost pressure
mmHg
478
468
488
Average injection quantity
mm3/st.
50.3
47.8
52.8
Remarks
For Japan
For Japan
Injection timing adjustment_13
Pump speed
r/min
850
850
850
Boost pressure
kPa
26.65
25.3
28
Boost pressure
mmHg
200
190
210
Average injection quantity
mm3/st.
41.7
40.7
42.7
Remarks
For Japan
For Japan
Injection timing adjustment_14
Pump speed
r/min
600
600
600
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
32.2
31.2
33.2
Remarks
For Japan
For Japan
Injection quantity adjustment
Pump speed
r/min
2650
2650
2650
Boost pressure
kPa
83.3
82
84.6
Boost pressure
mmHg
625
615
635
Average injection quantity
mm3/st.
22.6
19.6
25.6
Difference in delivery
mm3/st.
6.5
Basic
*
Injection quantity adjustment_02
Pump speed
r/min
3050
3050
3050
Boost pressure
kPa
83.3
82
84.6
Boost pressure
mmHg
625
615
635
Average injection quantity
mm3/st.
5.1
Injection quantity adjustment_03
Pump speed
r/min
2650
2650
2650
Boost pressure
kPa
83.3
82
84.6
Boost pressure
mmHg
625
615
635
Average injection quantity
mm3/st.
22.1
19.1
25.1
Difference in delivery
mm3/st.
6.5
Basic
*
Remarks
For Japan
For Japan
Injection quantity adjustment_04
Pump speed
r/min
3050
3050
3050
Boost pressure
kPa
83.3
82
84.6
Boost pressure
mmHg
625
615
635
Average injection quantity
mm3/st.
5
Remarks
For Japan
For Japan
Governor adjustment
Pump speed
r/min
375
375
375
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
8.6
7.1
10.1
Difference in delivery
mm3/st.
2.5
Basic
*
Governor adjustment_02
Pump speed
r/min
600
600
600
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
3
Governor adjustment_03
Pump speed
r/min
375
375
375
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
8.6
6.6
10.6
Governor adjustment_04
Pump speed
r/min
375
375
375
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
8.4
6.9
9.9
Difference in delivery
mm3/st.
2.5
Basic
*
Remarks
For Japan
For Japan
Governor adjustment_05
Pump speed
r/min
600
600
600
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
3
Remarks
For Japan
For Japan
Governor adjustment_06
Pump speed
r/min
375
375
375
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
8.4
6.4
10.4
Remarks
For Japan
For Japan
Timer adjustment
Pump speed
r/min
100
100
100
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
78
68
88
Basic
*
Timer adjustment_02
Pump speed
r/min
100
100
100
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
76
66
86
Basic
*
Remarks
For Japan
For Japan
Speed control lever angle
Pump speed
r/min
375
375
375
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
0
0
0
Remarks
Magnet OFF
Magnet OFF
Speed control lever angle_02
Pump speed
r/min
375
375
375
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Average injection quantity
mm3/st.
0
0
0
Remarks
For Japan: Magnet OFF
For Japan: Magnet OFF
0000000901
Pump speed
r/min
1250
1250
1250
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Overflow quantity
cm3/min
390
258
522
_02
Pump speed
r/min
1250
1250
1250
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Overflow quantity
cm3/min
420
288
552
Remarks
For Japan
For Japan
Stop lever angle
Pump speed
r/min
1250
1250
1250
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Pressure
kPa
480.5
451
510
Pressure
kgf/cm2
4.9
4.6
5.2
Basic
*
Stop lever angle_02
Pump speed
r/min
600
600
600
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Pressure
kPa
323.5
294
353
Pressure
kgf/cm2
3.3
3
3.6
Stop lever angle_03
Pump speed
r/min
1250
1250
1250
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Pressure
kPa
480.5
451
510
Pressure
kgf/cm2
4.9
4.6
5.2
Stop lever angle_04
Pump speed
r/min
2100
2100
2100
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Pressure
kPa
676.5
647
706
Pressure
kgf/cm2
6.9
6.6
7.2
Stop lever angle_05
Pump speed
r/min
1250
1250
1250
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Pressure
kPa
470.5
441
500
Pressure
kgf/cm2
4.8
4.5
5.1
Basic
*
Remarks
For Japan
For Japan
Stop lever angle_06
Pump speed
r/min
600
600
600
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Pressure
kPa
313.5
284
343
Pressure
kgf/cm2
3.2
2.9
3.5
Remarks
For Japan
For Japan
Stop lever angle_07
Pump speed
r/min
1250
1250
1250
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Pressure
kPa
470.5
441
500
Pressure
kgf/cm2
4.8
4.5
5.1
Remarks
For Japan
For Japan
Stop lever angle_08
Pump speed
r/min
2100
2100
2100
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Pressure
kPa
666.5
637
696
Pressure
kgf/cm2
6.8
6.5
7.1
Remarks
For Japan
For Japan
0000001101
Pump speed
r/min
850
850
850
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Timer stroke
mm
1.3
1.1
1.5
Basic
*
_02
Pump speed
r/min
850
850
850
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Timer stroke
mm
1.3
0.9
1.7
_03
Pump speed
r/min
1750
1750
1750
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Timer stroke
mm
6.9
6.3
7.5
_04
Pump speed
r/min
2100
2100
2100
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Timer stroke
mm
8.2
7.8
8.6
_05
Pump speed
r/min
850
850
850
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Timer stroke
mm
1.3
1.1
1.5
Basic
*
Remarks
For Japan
For Japan
_06
Pump speed
r/min
850
850
850
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Timer stroke
mm
1.3
0.9
1.7
Remarks
For Japan
For Japan
_07
Pump speed
r/min
1750
1750
1750
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Timer stroke
mm
6.7
6.1
7.3
Remarks
For Japan
For Japan
_08
Pump speed
r/min
2100
2100
2100
Boost pressure
kPa
0
0
0
Boost pressure
mmHg
0
0
0
Timer stroke
mm
8.2
7.8
8.6
Remarks
For Japan
For Japan
0000001201
Max. applied voltage
V
8
8
8
Test voltage
V
13
12
14
Timing setting
K dimension
mm
3.3
3.2
3.4
KF dimension
mm
5.8
5.7
5.9
MS dimension
mm
0.9
0.8
1
BCS stroke
mm
4.4
4.3
4.5
Control lever angle alpha
deg.
59
55
63
Control lever angle beta
deg.
46
41
51
Test data Ex:
0000001801 M-FICD ADJUSTMENT
M-FICD adjustment
1. Position the control lever in the idle position.
2. Adjust the M-FICD installation position so that the distance from the FICD lever is L1.
----------
L1=1+1mm
----------
----------
L1=1+1mm
----------
0000001901 ADJUSTMENT PRECAUTIONS
Adjustment precautions
1. After adjusting at full injection quantity and speed N1, at speed N2 set the boost pressure to P1and adjust the injection quantity using the BCS spring setscrew.
2. At boost pressure of at least P2, confirm that the injection quantity is as specified.
----------
N1=600r/min N2=850r/min P1=25.3~28.0kPa(190~210mmHg) P2=93.3kPa(700mmHg)
----------
----------
N1=600r/min N2=850r/min P1=25.3~28.0kPa(190~210mmHg) P2=93.3kPa(700mmHg)
----------
Information:
Air-to-air aftercooling systems are simple, reliable and easy to maintain and provide for one or more benefits.* Improved fuel consumption* Lower emissions* Increased powerOperation of ATAAC
Heated compressed air from the engine turbocharger is conveyed to an air-to-air aftercooler that is positioned in front of the engine radiator. The combined effect of the engine fan and ram air moves cooled air through the system to reduce the turbocharged air temperature before it enters the engine intake manifold.Lower intake air temperature allows more air to enter the cylinder, resulting in more complete fuel combustion and reduced exhaust emissions.Air-to-air aftercoolers can achieve charge air temperatures lower than water-to-air systems for additional efficiency.
To maintain an adequate water pump cavitation temperature for efficient water pump performance in an Air-to-Air aftercooled engine, Caterpillar recommends that the coolant mix contain a minimum of 30% Caterpillar Antifreeze, GM-6038M or equivalent.Only use a greater concentration (above 30%) of antifreeze as needed for anticipated outside temperatures.Ethylene glycol raises the boiling point of water.Do not exceed a coolant mixture of 60% ethylene glycol to water since a concentration above 60% ethylene glycol will reduce the engine's freeze protection and increase the possibility of deposit formation in the cooling system.Dowtherm 209 Full-Fill coolant cannot be substituted for ethylene glycol, due to its inability to raise the water pump cavitation temperature. Dowtherm 209 Full-Fill coolant lowers the boiling point of water.
Air Intake System
Never run the engine without an air cleaner installed or with a damaged air cleaner. Dirt will enter the engine and cause premature wear and damage to engine components.Service the air cleaner at regular intervals as determined by the operating environmental dust conditions. Check the air cleaner service indicator (if equipped) daily.As the air cleaner element becomes plugged, the difference of air pressure between the inlet side (dirty side) and the engine side (clean side) will increase. Service the air cleaners regularly or when the air cleaner service indicator diaphragm enters the red zone or the red piston locks in the visible position.Inspect the air intake hoses, elbows and gaskets for cracks or damage, replace as needed. Check for loose clamps, tighten as needed.Check the precleaner (if equipped) daily for accumulation of dust and debris.The Caterpillar air cleaner element may be cleaned up to six times, but must be replaced annually. The element when cleaned, should be thoroughly checked for rips and tears in the filter material and for gasket damage.Winter Fronts
Caterpillar discourages the use of winter fronts or other air flow restriction devices mounted in front of radiators with air-to-air aftercooled engines. Air flow restriction can cause higher exhaust temperatures, power loss, excessive fan usage, a reduction in fuel economy and possible engine damage.If a winter front must be used, then it should have a permanent circular or diamond-shaped opening directly in line with the fan hub and must have a minimum opening dimension of at least 120 sq. in. (770 sq. cm).A centered opening, versus a side or edge winter front opening is specified to provide sensing
Heated compressed air from the engine turbocharger is conveyed to an air-to-air aftercooler that is positioned in front of the engine radiator. The combined effect of the engine fan and ram air moves cooled air through the system to reduce the turbocharged air temperature before it enters the engine intake manifold.Lower intake air temperature allows more air to enter the cylinder, resulting in more complete fuel combustion and reduced exhaust emissions.Air-to-air aftercoolers can achieve charge air temperatures lower than water-to-air systems for additional efficiency.
To maintain an adequate water pump cavitation temperature for efficient water pump performance in an Air-to-Air aftercooled engine, Caterpillar recommends that the coolant mix contain a minimum of 30% Caterpillar Antifreeze, GM-6038M or equivalent.Only use a greater concentration (above 30%) of antifreeze as needed for anticipated outside temperatures.Ethylene glycol raises the boiling point of water.Do not exceed a coolant mixture of 60% ethylene glycol to water since a concentration above 60% ethylene glycol will reduce the engine's freeze protection and increase the possibility of deposit formation in the cooling system.Dowtherm 209 Full-Fill coolant cannot be substituted for ethylene glycol, due to its inability to raise the water pump cavitation temperature. Dowtherm 209 Full-Fill coolant lowers the boiling point of water.
Air Intake System
Never run the engine without an air cleaner installed or with a damaged air cleaner. Dirt will enter the engine and cause premature wear and damage to engine components.Service the air cleaner at regular intervals as determined by the operating environmental dust conditions. Check the air cleaner service indicator (if equipped) daily.As the air cleaner element becomes plugged, the difference of air pressure between the inlet side (dirty side) and the engine side (clean side) will increase. Service the air cleaners regularly or when the air cleaner service indicator diaphragm enters the red zone or the red piston locks in the visible position.Inspect the air intake hoses, elbows and gaskets for cracks or damage, replace as needed. Check for loose clamps, tighten as needed.Check the precleaner (if equipped) daily for accumulation of dust and debris.The Caterpillar air cleaner element may be cleaned up to six times, but must be replaced annually. The element when cleaned, should be thoroughly checked for rips and tears in the filter material and for gasket damage.Winter Fronts
Caterpillar discourages the use of winter fronts or other air flow restriction devices mounted in front of radiators with air-to-air aftercooled engines. Air flow restriction can cause higher exhaust temperatures, power loss, excessive fan usage, a reduction in fuel economy and possible engine damage.If a winter front must be used, then it should have a permanent circular or diamond-shaped opening directly in line with the fan hub and must have a minimum opening dimension of at least 120 sq. in. (770 sq. cm).A centered opening, versus a side or edge winter front opening is specified to provide sensing
Have questions with 104740-3110?
Group cross 104740-3110 ZEXEL
Mitsubishi
104740-3110
9 460 614 290
MD062270
INJECTION-PUMP ASSEMBLY
4D55
4D55