Model Allowable Moment (Nm) Allowable dynamic moment Model Mounting orientation Load movement direction LTF6 200 Horizontal/Lateral Horizontal/Lateral Lateral Horizontal a Mep L1 (mm) Pitching 100 m a=1000 a=2000 a=3000 L1 30 20 10 0 Transfer load m (kg) L2 200 a=1000 a=2000 a=3000 Mer L2 (mm) Rolling Yawing 100 m L2 Mer 30 20 10 0 m Transfer load m (kg) 200 a=1000 a=2000 a=3000 L3 (mm) 100
Use a 3 wire switch if this specification will not be satisfied. Moreover, leakage current flow to the load will be "n" times larger when "n" auto switches are connected in parallel. 7. Do not use a load that generates surge voltage.
A B 3 5.5 7 7 15 60 65 + 45 (n-2) D-H7, D-H7W D-H7F 30.5 28.5 30 30 n-2 2 15 + 50 ( ) (n = 2, 4, 6...) Approx. Hs 30.5 35 40.5 47.5 D-H7C 15 65 10 65 + 50 (n-2) A B Approx. Hs 3 5.5 7 7 n-2 2 D-H7C 31.5 28.5 30 30 15 + 50 ( ) (n = 2, 4, 6...)
When a load, such as a relay or solenoid, which generates surge is directly driven, use a type of switch with a built-in surge absorbing element. 8.
F9B MSQ A 10 MSQ B 10 A F9B Basic Type Number of auto switch 2 pcs. 1 pc. n pcs.
HRX-OM-S004-N Operation Manual InstallationOperation Original Instructions Thermo chiller HRS100-A-20HRS150-A-20HRS100-A-40HRS150-A-40HRS100-A-46HRS150-A-46HRS100-W-20HRS150-W-20HRS100-W-40HRS150-W-40HRS100-W-46HRS150-W-46Keep this manual available whenever necessary 2023 SMC CORPORATION All Rights Reserved To the users Thank you for purchasing SMCs Thermo chiller (hereinafter referred to
Dimensions [mm] Model A B C D E F G H J K L M N P Q R S T U V W Weight [g]*1 Outer body dia.
Metric size Inch size With One-touch fitting 04 06 08 10 12 01 03 05 07 09 11 4 6 8 10 12 1/8" 5/32" 3/16" 1/4" 5/16" 3/8" Thread type Nil Metric thread (M5) Unified thread (10-32 UNF) R NPT AS N ASP Bore size ASN M5 U10/32 01 02 03 04 M5 x 0.8 10-32 UNF 1/8 1/4 3/8 1/2 AQ ASV AK ASS Needle Valve/Flow Characteristics (Inlet Pressure: 0.5 MPa) ASR ASD230F ASD330F ASD430F ASF 100 200 400 1.5
Allowable driving force Fn (N) Allowable driving force Fn (N) Allowable driving force Fn (N) Allowable driving force Fn (N) Allowable driving force Fn (N) 50 100 40 30 20 20 30 40 50 3. Select the bore size and type of magnet holding force (types H, L) from Lo and Fn based on data K A .
A A a B B s j C f g t C0.5 C0.2 C0.2 b d e 45 45 Section A-A p k C0.5 45 C n h i l (d) C0.5 q m O Section B-B r (l) View C (mm) +0.2 0 l i o j k m n p q r s t b e g a c d f h Model 0 0.2 0.05 0.15 + 0.1 0 +0.2 0 3.5 +0.013 +0.001 CXS 6 2.75 M2.5 x 0.45 4.5 3.5 4.75 C0.5 2.8 0.5 4 3.5 3 3.5 16 0.1 M3 x 0.5 4 1 5.5 6 +0.2 0 0.05 0.15 0 0.2 + 0.1 0 +0.2 0 5 +0.016 +0.001 CXS10 4 M3 x 0.5 8 5
Mounting side Closed C B A A Open D Open E F F Mounting side MHL2-25DZ-X86/X86A MHL2-25D Z-X86/X86A 1 2 200 200 160 160 Gripping force [N] Gripping force [N] Pressure 0.6 MPa Pressure 0.6 MPa 0.5 MPa 120 120 0.5 MPa 0.4 MPa 0.4 MPa 80 80 0.3 MPa 0.3 MPa Closed F (Fingers closed) 40 40 0 0 40 80 120 160 200 0 0 40 80 120 160 200 [mm] Model A B C D E F Weight [g] MHL2-25DZ-X86(A) 9 106 128
of arm section) L1 = 50 [mm] L2 = 40 [mm] a m L2 Item Load factor n Note zLoad mass 1 = m/mmax = 0.5/5 = 0.1 Investigate m.
DO (n+1) 0 V DO (n) FE / Shield N.C.
Manual override (Pitch) P = 10.5 9 (Pitch) P = 10.5 12.5 L2 3.5 L1 (Station n) (Station 1) (Station 1) (Station n) (Light/surge voltage suppressor) (Light/surge voltage suppressor) 43.5 [50.5] + + + + + + + 28.1 A A B B 15 15 12 12 B B A A 1 1 3 3 (Pitch) P = 10.5 13.5 (Pitch) P = 10.5 M3 x 0.5 (A, B port) M3 x 0.5 (A, B port) 14.5 L plug connector (L) M plug connector (M) M8 connector (W0
A A A A 10 SZ 2-4.5 (For mounting) (Station 1) (Station n) L2 4 SY (Light/Surge voltage suppressor) L1 (Station n) (Station 1) SYJ (Light/Surge voltage suppressor) + + 48.5 [55.5] A A 20 SX 15 + + B B 5 33.1 1.5 One-touch fitting (A, B port) Applicable tubing O.D.: 4, 5/32" (Pitch) P = 10.5 A A 20 15 5 11.8 B B 1.5 (Pitch) P = 10.5 M5 x 0.8 (A, B port) 11.8 M8 connector (WO) L plug connector
O e b u t ) h c n I ( . n i M e l o h . a i d d a e r h T T P N . o N t r a P H ) . x e H ( D L A * M . t W ) f g ( 6 9 . 0 ) 5 . 4 2 ( 1 8 . 0 ) 5 . 0 2 ( 5 7 . 0 ) 9 1 ( 8 1 . 0 ) 6 . 4 ( 8 / 1 S 4 3 7 0 H R K 9/ 6 1 ) 9 2 . 4 1 ( 3 6 . 0 ) 6 1 ( 1 1 5 7 . 0 ) 9 1 ( 6 1 4 / 1 S 5 3 7 0 H R K 8 9 . 0 ) 5 2 ( 4 / 1 8 / 3 S 6 3 7 0 H R K 1 1 / 6 1 ) 6 4 . 7 1 ( 3 7 . 0 ) 5 . 8 1 ( 8 2 0 4
Note 3) A particulate generation test has been conducted in a vacuum environment of 10-Pa. a t e l u g c 2 Stainless steel linear guide & low particulate generation vacuum grease e i t n r a e p r a 0.0 10 0 20 10 w t i o o n L Operation cycles a t e l u g c e 1 i t n r a e Particulate generation from the linear guide unit has been reduced with the use of a stainless steel linear guide and