50, 100, 150, 200, 250, 300 12-CY3B15 15 1000 50, 100, 150, 200, 250, 300, 350, 400, 450, 500 12-CY3B20 20 100, 150, 200, 250, 300, 350, 400, 450, 500, 600, 700, 800 Rc1/8 NPT1/8 G1/8 12-CY3B25 25 (Both sides) Non-lube 12-CY3B32 32 1300 Rc1/4 NPT1/4 G1/4 12-CY3B40 40 100, 150, 200, 250, 300, 350, 400, 450, 500, 600, 700, 800, 900, 1000 12-CY3B50 50 12-CY3B63 63 Note 1) Stroke exceeding
90 0.5 W W W 0.5 F 117 108 95 76 0.7 C J G5-S 0.1 0 500 1000 1500 81 75 66 51 0.3 CV G 60 55 49 37 0.5 Cylinder stroke (mm) The above curve in the graph refers to P = 0.5 MPa of supply pressure.
For details on how the models are indicated, refer to How to Order. 315 or more 50 200 or more 63 CCT63 120 or more 80 75 or more 100 1164 Air-hydro Unit CC Series Data (A) Volume of Cylinder/Capacity of Converter 160 140 125 100 800 700 600 300 250 200 180 10,000 8,000 500 400 80 6,000 5,000 4,000 300 600 500 63 3,000 200 400 50 2,000 300 40 Effective oil level stroke (mm) 500 200 1,000
*1: To use the power of the device, the total load current must be 500 mA or less.
V : 150 [L] Cooled substance specific heat C : 1.0 x 103 [cal/(kgfC)] HRS 100/150 HRS 100/150 HRSH 090 HRSH Cooled substance temperature when cooling begins T0 : 30 [C] Cooled substance temperature after t hour Tt : 20 [C] Cooling temperature difference iT : 10 [C] (= T0 Tt) Cooling time it : 15 [min] Conversion factor: hours to minutes : 60 [min/h] Conversion factor: kcal/h to kW : 860
HRZ x V x C x iT it m x C x (T0 Tt) it Q = = HRZD 1 x 150 x 4.186 x 103 x 10 900 = = 6977 [J/s] 7.0 [kW] m x C x (T0 Tt) it x 860 x V x 60 x C x iT it x 860 HRW Q = = Cooling capacity = Considering a safety factor of 20%, 7.0 [kW] x 1.2 = HECR 1 x 150 x 60 x 1.0 x 103 x 10 15 x 860 8.4 [kW] = HEC Q x t: Heat capacity [kJ] Thermo-chiller Water bath 6977 [W] = 7.0 [kW] 20C HEB Cooling
[L] Cooled substance specific heat C : 1.0 x 103 [cal/(kgfC)] Cooled substance temperature when cooling begins T0 : 30 [C] Cooled substance temperature after t hour Tt : 20 [C] Cooling temperature difference iT : 10 [C] (= T0 Tt) Cooling time it : 15 [min] Conversion factor: hours to minutes : 60 [min/h] Conversion factor: kcal/h to kW : 860 [(cal/h)/W] * Refer to the following for the
Q = qm x C x (T2 T1) x qv x C X T 1 x 35 x 4.186 x 103 x 3.0 60 = = 60 qm x C x (T2 T1) 860 Q = = 7325 [J/s] 7325 [W] = 7.3 [kW] x qv x 60 x C x T = Cooling capacity = Considering a safety factor of 20%, 7.3 [kW] x 1.2 = 860 8.8 [kW] 1 x 35 x 60 x 1.0 x 103 x 3.0 860 = Thermo-chiller qv: Circulating fluid flow rate Q: Heat generation amount T2: Return temperature Users equipment 7325
C A D Model D C Model D C Mounting bolt (mm) Mounting bolt (mm) M18 x 125 l M18 x 135 l 125 135 C (D) Q2B18010DC C (D) Q2B20010DC M18 x 135 l M18 x 145 l 135 145 C (D) Q2B18020DC C (D) Q2B20020DC M18 x 145 l M18 x 155 l 145 155 C (D) Q2B18030DC C (D) Q2B20030DC M18 x 155 l M18 x 165 l 36 155 39 165 C (D) Q2B18040DC C (D) Q2B20040DC M18 x 165 l M18 x 175 l 165 175 C (D) Q2B18050DC C (D) Q2B20050DC
VDC Mega) between external terminal and case 10 to 500 Hz with a 1.5 mm amplitude or 98 m/s2 acceleration, whichever is smaller.
Specifications/Models IDU3D IDU4D IDU6D IDU8D Model Specification Air flow rate Note 2) 50Hz 60Hz 300 350 430 500 640 750 850 1000 Electrical Specifications Operating Ranges Rated Conditions l/min (ANR) Operating pressure (MPa) Inlet air temperature (C) Ambient temperature (C) Pressure dew point (C) Working fluid Inlet air temperature (C) Inlet air pressure (MPa) Ambient temperature (C)
Nil C Thread type Nil N F Rc NPT G The cable and connector are shipped unassembled. Lead wire (Refer to page 322.)
consumption (W) Max. operating frequency (Hz) A 80 1200 B 40 1000 C 10 550 D 4 350 E Note) Two mounting screws (M3 x 0.5) and a gasket are included.
Indication Item Setting and selection Setting range [High] Set the temperature range of the circulating fluid SP. +0.1 C to +10.0 C +1.0 C Upper/lower temperature limit (1) High/ Low [Low] Set the temperature range of the circulating fluid SP. -0.1 C to -10.0 C -1.0 C TEMP READY signal is output when the set time has passed after the circulating fluid temperature rises/drops within the
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
600 4.5 200 400 600 800 1,000 1,200 3 2 3 2 3 2 3 2 03 04 6 500 1,000 1,250 8 500 700 900 10 500 700 900 10 700 1,000 Flow rate Q l/min (ANR) How to read the graph The sonic range pressure to generate a flow rate of 500 l/min (ANR) is P1 0.14 MPa for a 6 orifice (VX2 4), and P1 0.3 MPa for a 4.5 orifice (VX23). 3 2 For Saturated Steam [663] (179) Upstream pressure of valve P1 1.0 MPa
S = 38mm VCA21 200 300 400 500 600 700 VCA21 VCA31 VCA31 VCA41 VCA41 VCA41 Other 200 400 400 600 800 1000 1200 1. Material HNBR: Nitrile hydride rubber 500 700 500 1000 1500 800 1000 1200 1000 500 Flow rate Q l/min (ANR) Viewing the graph The sonic range pressure to generate a flow rate of 500l/min (ANR) is P = 0.64MPa for a 3 orifice, and P = 0.35MPa for a 4 orifice.