Fixed Displacement Pump A4FO Series 10 Axial Piston Unit, Swashplate Design

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Fixed Displacement Pump A4FO Series 10 Axial Piston Unit, Swashplate Design Sizes 71 0 Nominal pressure 3 bar Peak pressure 400 bar RE 91455/01.94 RE 91455/01.94 Replaces 07.88 Other fixed displacement pumps: A2FO fixed displacment pump Size 10 RE 91401 Size 2 0 RE 91425 KFA fixed displacement pump Size 45 107 RE 910 A4FO axial piston fixed displacement pumps of swashplate design are used for hydraulic drives in open loop circuits. Flow is proportional to the drive speed and to the displacement. Good suction characteristic Low noise level Long service life Pump combinations possible Through drive of % torque HF operation possible with reduced data 1

Code A4F O / 10 13 Fluid Mineral oil (no short code) HFC fluid E Axial piston unit Swashplate design, fixed displacement A4F Operating type Pump, open loop circuit Size displacement V g max (cm 3 ) O 71 125 2 0 Series 10 Direction of rotation View on drive shaft Clockwise Anti-clockwise R L Seals NR - Nitril caoutchouc DIN ISO 1629 (una N) / Shaft sealing ring: FPM FPM - Fluor caoutchouc DIN ISO 1629 Shaft ends Parallel with key DIN 6885 External spline DIN 5480 Mounting flange ISO 4 hole ISO 8 hole Connection to working lines Pressure port Side SAE rotated by 90 Suction port S Metric fixing thread P V P Z H 13 Through drive 71 125 2 0 Without through drive With through drive for mounting axial piston unit Flange Hub/Shaft For mounting of: ISO 140, 4 hole 40x2x18x9g spline A4FSO 71 ISO 160, 4 hole x2x24x9g spline A4FSO 125 ISO 224, 4 hole 60x2x28x9g spline A4FSO 2 ISO 315, 8 hole 80x3x25x9g spline A4FSO 0 ISO, 2 hole 22 dia. key A10VSO 28 ISO, 2 hole 25 dia. key A10VSO 45 ISO 125, 2 hole 32 dia. key A10VSO 71 ISO 125, 2 hole 40 dia. key A10VSO N00 K33 K34 K35 K43 K25 K26 K27 K37 = available = in preparation 2

Fluid Mineral oil or HF fluids efore designing your system please consult our data sheets RE 90220 (mineral oil), RE 90221 (eccologically acceptable fluids) and RE 90223 (HF fluids) for comprehensive information on the choice of fluids and conditions of application. If HF fluids are used, limitations in the technical data need to be taken into account. If necessary, please consult us. Operating viscosity range We recommend that an operating viscosity (at operating temperature) in the optimum range for efficiency and idle time with respect to tank temperature (open loop circuit) of is used. ν opt = opt. operating viscosity 16...36 mm 2 /s Viscosity limit range The following values are valid for limiting conditions: ν min = 10 mm 2 /s briefly at max. permissible leakage oil temperature of 90 C. ν max = 0 mm 2 /s briefly at cold start. Temperature range (cf. selection diagram) t min = 25 C t max = + 90 C Fluid selection In order to select the correct fluid, the operating temperature in the tank (open loop circuit), dependent on the ambient temperature, needs to be known. The fluid selected should be such that in the operating temperature range the operating viscosity is within the optimum range (ν opt ).This is the shaded area on the selection diagram. We recommend that the higher viscosity class is chosen. Example: At an ambient temperature of X C an operating temperature of 60 C occurs in the tank. The optimum operating viscosity range (ν opt ; shaded area) corresponds to viscosity classes VG 46 and VG 68. Select VG 68. Note: The leakage oil temperature, effected by pressure and speed, is usually higher than the tank temperature. However the temperature must not exceed 90 C at any point in the system. If the above requirements cannot be met at extreme operating parameters or due to a high ambient temperature, please consult us. Fluid filtration (axial piston unit) At least fluid cleanliness class 9 to NAS 1638 or 6 to SAE; ASTM, AIA must be maintained for the fluid in order to ensure reliable functioning of the system. This is possible by using, e.g. filter elements, type... D 020... (see RE 31278). The following degree of separation is obtained β 20. Selection diagram 0 600 400 20 0 20 40 60 80 0 VG 68 VG 46 VG 32 VG 22 VG Viscosity ν (mm 2 /s) 80 60 40 36 20 10 0 16 ν opt 10 25 t min = 25 C 10 10 10 30 70 90 Temperature t ( C) Fluid temperature range t max = + 90 C 3

Technical data (Valid for operation using mineral oil. See RE 90223 for fluids containing water) Input operating pressure range Absolute pressure at port S (suction port) p abs min p abs max Output operating pressure range Pressure at port Nominal pressure p N Peak pressure p max (Pressure data to DIN 24312) Direction of flow: S to. 0,8 bar 30 bar 3 bar 400 bar Leakage pressure The max. permissible leakage pressure (housing pressure) is dependent on speed (see diagram). The pressure in the housing must be equal to or greater than the external pressure on the shaft sealing ring. Max. leakage pressure (housing pressure) p max 4 bar abs. 4 0 2 125 71 Size Leakage pressure p abs (bar) 3 2 1 0 0 0 3000 4000 Speed n (rpm) Table of values Theoretical and rounded values, without taking into account η mh and η v Size 71 125 2 0 Displacement V g max cm 3 71 125 2 0 Max. speed at input pressure p abs 1 bar at port "S" n o max rpm 2 1800 10 1320 Max. permissible speed (speed limit) with increase in input pressure p abs = 1,7 bar n o max. rpm 2700 2 1800 1600 Max. flow at n o max max L/min 156 225 375 660 at n E = 10 rpm L/min 107 186 375 581 Max. power ( p = 3 bar) at n o max P o max kw 91 131 219 385 at n E = 10 rpm kw 62 109 219 339 Max. torque ( p = 3 bar) M max Nm 395 696 1391 2783 Torque ( p = bar) M Nm 113 199 398 795 Moment of inertia at drive axis J kgm 2 0,0121 0,03 0,0959 0,3325 Capacity l 2,0 3,0 7,0 11,0 Approx. weight (pump with pressure controller) m kg 34 61 120 220 Max. axial force at housing pressure p max 1 bar abs. ± F ax max N 1400 1900 3000 4000 Max. axial force at housing pressure p max 4 bar abs. + F ax max N 810 10 18 20 F ax max N 1990 27 41 50 Max. shearing force F q max N 1700 20 4000 00 Determination of size Flow = V g n η v (L/min) Torque M = 0 1,59 V g p η mh (Nm) Drive power 2π M n M n p P = = = 60000 9549 600 η t (kw) V g = geometric displacement (cm 3 ) per revolution p = Pressure drop (bar) n = Speed (rpm) η v = Volumetric efficiency η mh = Mechanical-hydraulical efficiency η t = Total efficiency (η t = η v η mh ) Force diagram Fq ± Fax X/2 X/2 X 4

Drive power and flow (Fluid: hydraulic oil ISO VG 46 DIN 51519, t = C) Size 71 Size 2 1 1 0 2 Flow (L/min) P max Drive power P (kw) Flow (L/min) 400 300 P max 1 Drive power P (kw) P zero Null Size 125 0 0 0 300 3 Operating pressure p (bar) n = 2 rpm n = 10 rpm P zero Null 0 0 0 300 3 Operating pressure p (bar) 300 1 n = 10 rpm n = 0 rpm Flow (L/min) P max Drive power P (kw) Size 0 800 400 P zero Null 0 0 0 300 3 Operating pressure p (bar) n = 1800 rpm n = 10 rpm Flow (L/min) 700 600 0 3 300 2 Drive power P (kw) 400 P max 300 1 Total efficiency: η t = p P max 600 Volumetric efficiency: η v = theor P Null zero 0 0 0 300 3 Operating pressure p (bar) n = 1320 rpm n = 0 rpm 5

efore finalising your design, please request a certified drawing. All rights reserved - Subject to revision. Unit dimensions (Port ) View X Ports S R (L) T M M S Pressure port (high pressure series), on request available on the left (enter in clear text) Suction port (standard pressure series) Oil filler and breather Oil drain (closed) Operating pressure measuring point (closed) Suction pressure measuring point (closed) Size A 1 A 2 A 3 A 4 A 5 A 6 A 7 A 8 A 9 A 10 A 11 A 12 A 13 A 14 A 15 A 16 A 17 71 140 h8 80 276 170 170 40 k6 M12 1,5 68 34 28 8 10 20 132 232 87 125 160 h8 92 321 k6 M16 1,5 80 36 36 8 10 24 156 276 102 2 224 h8 115 405 260 265 60 m6 M20 3,0 48 42 8 10 30 203 346 138 Size A 18 A 19 A 20 A 21 A 22 A 23 A 24 A 25 A 26 A 27 A 28 A 29 A 30 A 31 71 85 61 57,2 27,8 M12; 17 deep 180 83,5 85 106 83,5 15 12 h9 43 77,8 125 102 74 66,7 31,8 M14; 19 deep 98,5 102 124 98,5 20 14 h9 53,5 88,9 2 130 91 79,4 36,5 M16; 24 deep 280 124,5 130 158 131 24 18 h9 64 106,4 Ports Size A 32 A 33 A 34 A 35 (DIN 5480) S R (L), T M, M S 71 42,9 M12; 20 deep 45 W40x2x18x9g 1" SAE 2" SAE M27x2 M14x1,5 125,8 M12; 17 deep 54 Wx2x24x9g 1 1/4" SAE 2 1/2" SAE M33x2 M14x1,5 2 61,9 M16; 24 deep 70 W60x2x28x9g 1 1/2" SAE 3" SAE M42x2 M14x1,5 6

efore finalising your design, please request a certified drawing. All rights reserved - Subject to revision. Unit dimensions R(L) U T M S M S X T (Port 1 ) (Port ) View X S Ports S R (L) T M M S U Pressure port (high pressure series), on request available on the left (enter in clear text) Suction port (standard pressure series) Oil filler and breather Oil drain (closed) Operating pressure measuring point (closed) Suction pressure measuring point (closed) Flushing port (bearing flushing) Size A 1 A 2 A 3 A 4 A 5 A 6 A 7 A 8 A 9 A 10 A 11 A 12 A 13 A 14 A 15 A 16 A 17 0 315 h8 180 489 380 380 80 m6 M20 3,0 125 80 42 16 30 255 411 180 Size A 18 A 19 A 20 A 21 A 22 A 23 A 24 A 25 A 26 A 27 A 28 A 29 A 30 A 31 A 32 A 33 0 161 103 96,8 44,5 M20; 24 deep 360 155 158 194 20 14 24 22 h9 85 161 152,4 Ports Size A 34 A 35 A 36 A 37 (DIN 5480) 1 S R (L), T M, M S U 0 92,1 M16; 23 deep 90 W80x3x25x9g 2" SAE M48x2 5" SAE M48x2 M14x1,5 M14x1,5 7

Mannesmann Rexroth Corporation Rexroth Hydraulics Div., Industrial, 2315 City Line Road, ethlehem, PA 18017-2131 Tel. (610) 694-8300 Fax: (610) 694-8467 Rexroth Hydraulics Div., Mobile, 1700 Old Mansfield Road, Wooster, OH 44691-0394 Tel. (330) 263-3400 Fax: (330) 263-3333 8 All rights reserved - Subject to revision Printed in U.S.A.