Load (kg) m1 m4 m2 m3 Moment (Nm) F3 M3=F3 x L3 L3 F1 M1=F1 x L1 F2 M2=F2 x L2 L1 L2
AS ASP ASN AQ ASV Dimensions AK Universal type Weight (g) T H1 H2 D1 D2 D3 L1 L2 L3 L4 L5 A M1 Max. Min. Max. Min.
In-line Type Applicable tubing O.D. d Inch Size Metric Size Applicable tubing O.D. d Applicable tubing O.D. d Model Weight D1 D2 L1 L2 M1 L3 Max. Min. (g) Model Weight D1 D2 L1 L2 M1 L3 Max. Min.
L3 Max. 1 4 1 2 L1 L2 D Min. L3 Max. Model Port size Model Port size 120 150 AS800 AS900 1 1 , 2 74 93 204 262 192 250 80 94 AS420 AS500 AS600 67.5 74 90 1/4, 3/8, 1/2 3/4 1 38 42 55 122 115 158 112 105 148 50 50 62 15-9-33
592 537 482 427 372 317 262 207 152 L1 ARM3000 578 523 468 413 358 303 248 193 138 L2 550 495 440 385 330 275 220 165 110 L3 1.5-27 Regulator with Check Valve/Modular Style AR1000 to 6060 Standard Specifications AR1000 AR2060 AR2560 AR3060 AR4060 AR4060-06 AR5060 AR6060 Model AC 4 1/ / / / 4 1 4 1/ 8 1/ 4 3/ 8 3/ / 4 1/ M5 x 0.8 1 1 Port size 4 3 / 8 3 8 3 AV 2 1 Air Fluid AU 1.5MPa Proof
Office: (650) 588-9200-Outside Local Area: (800) 258-9200-www.stevenengineering.com 4-M3 x 0.5 depth 6 (Bracket mounting screw) (Pitch) n-Rc 1/8 (A port) L Dimension n: Stations n L 1 37 27 2 56 46 3 75 65 4 94 84 5 113 103 6 132 122 7 151 141 8 170 160 9 189 179 10 208 198 11 227 217 12 246 236 13 265 255 14 284 274 15 303 293 16 322 312 17 341 331 18 360 350 19 379 369 20 398 388 L1 L2 L3
V100 SY (L5) Plug assembly 1 2 3 2-4.5 mounting hole (L4) SYJ VVQ100-12A(L3) 88 (8.5) L2 VK 48.7 L1 VZ Courtesy of Steven Engineering, Inc.-230 Ryan Way, South San Francisco, CA 94080-6370-Main Office: (650) 588-9200-Outside Local Area: (800) 258-9200-www.stevenengineering.com VT (45) (35) 33 25 (5.5) 23.5 VP 12.3 VG R11 (Min. bending inner radius) Manual override 21.5 (29.3) VP 104 S070
L4 356 464 572 680 788 896 1004 L4 = 108 x n + 140 L3 = 108 x n + 90 306 414 522 630 738 846 954 VVPA460 ( ) for VVPA460 5-3-30 1 4/5 Port Air Operated Valve Series VSA420 Model Flow characteristics P A/B A/B EA/EB Valve model Port size Rc Note) Weight (kg) Body size Pilot port size Function SA C [dm3/(sbar)] 4.2 5.1 5.6 4.2 5.1 5.6 4.1 5.0 5.4 4.3 4.7 5.1 C [dm3/(sbar)] 4.1 5.9 6.5
L4 356 464 572 680 788 896 1004 L4 = 108 x n + 140 L3 = 108 x n + 90 306 414 522 630 738 846 954 VVPA460 ( ) for VVPA460 5-3-30
414 522 630 738 846 954 L3 = 108 x n + 90 L4 L dimension L1 L2 VVP450 VVP460 464 ( ): VVP460 3-6-10 11 Made to Order Specifications: Series VP450/470 External Pilot/With Surge Voltage Suppressor External Pilot/-X40 Model no.
Load weight (kg) m1 m2 m3 Moment (Nm) M1=F1 x L1 F1 F2 M3=F3 x L3 F3 M2=F2 x L2 L1 L2 L3 Maximum load weight
N L1 L2 L3 L4 L5 L6 P Q1 Q2 M KRM12-06-02-10 KRM12-06-02-6 99 10 6 6 89 47 1 4 17 19.5 33.5 23.5 33 13.5 8.5 13 19 10 125 6 108 10 55 73 106 104 KRM12-08-03-10 KRM12-08-03-6 3 8 8 19 139 11.5 22.5 37.5 26 36.5 10 15.5 20.5 14.7 86 126 119
Load (kg) m1 m2 m3 Moment (Nm) M3 = F3 x L3 F3 M1 = F1 x L1 F1 M2 = F2 x L2 F2 L1 L2 L3
P=10.5 15.5 Station n L1 L2 3 52 44 Station 20 230.5 222.5 6 83.5 75.5 8 104.5 96.5 10 125.5 117.5 Station 2 41.5 33.5 4 62.5 54.5 5 73 65 7 94 86 9 115 107 11 136 128 12 146.5 138.5 13 157 149 14 167.5 159.5 15 178 170 16 188.5 180.5 17 199 191 18 209.5 201.5 19 220 212 12 Series SYJ300 Type 20R Manifold: Top Ported (External Pilot Type)/SS3YJ3-20RStations -00 [ ] for AC Grommet (G) L3
When wires used for L11 and L21 are thinner than wires used for L1, and L3, use a molded-case circuit breaker. 11. Connecting a servo motor of the wrong axis to U, V, W, or CN2 of the driver may cause a malfunction. 12. The illustration of the 24 V DC power supply is divided between input signal and output signal for convenience.
DC (Note 12) CN3 (Note 5) Forced stop 2 DOCOM DICOM 24 V DC (Note 12) Malfunction (Note 4) (Note 5) ALM CN8 RA1 (Note 9) Short-circuit connector (Packed with the servo amplifier) [1] Power supply input terminals, L1, L3: Provide specified power supply to input terminals L1 and L2. [2] Connect the motor power supply input terminal (U, V, W) to the driver power terminal (U, V, W).
MY1B m2 m3 Moment (Nm) MY1M M1 = F1 x L1 F1 M2 = F2 x L2 M3 = F3 x L3 F3 F2 MY1C L2 L1 L3 MY1H 4. Accuracy Mechanically jointed rodless cylinders do not guarantee traveling parallelism. When accuracy in traveling parallelism and intermediate stroke position is required, please contact SMC sales representatives.
Load mass (kg) m1 m2 Moment (Nm) m3 M3 = F3 x L3 F3 F2 M1 = F1 x L1 F1 M2 = F2 x L2 L2 L1 L3 Calculation of Guide Load Factor 1) Maximum load mass (1), static moment (2), and dynamic moment (3) (at the time of impact with stopper) must be examined for the selection calculations. To evaluate, use a (average speed) for (1) and (2), and (collision speed = 1.4a) for (3).
-X 20m2 m3 Data Moment (Nm) M1 = F1 x L1 F1 F2 M3 = F3 x L3 F3 M2 = F2 x L2 L1 L2 L3 Maximum Load Weight Select the load from within the range of limits shown in the graphs. Note that the maximum allowable moment value may sometimes be exceeded even within the operating limits shown in the graphs. Therefore, also check the allowable moment for the selected conditions.
MY1 HT m2 m3 MY1 W MY1 W Moment (Nm) M3=F3 x L3 F3 F2 M1=F1 x L1 F1 M2=F2 x L2 MY2C L2 L1 L3 Maximum Load Mass MY2 H/HT Select the load from within the range of limits shown in the graphs. Note that the maximum allowable moment value may sometimes be exceeded even within the operating limits shown in the graphs. Therefore, also check the allowable moment for the selected conditions.