3CX10000H3

Drop-in equivalent of 3CX10000H3
Air Cooled Triode For Industrial RF Heating

Power Triode Tube Valve

Output Power: 28 kW (CW mode)

Anode voltage: 10 kV max

Anode dissipation: 10 kW max

Frequency: 90 MHz max

Warranty: 12 months irrespective of number of hours in operation

Condition: Brand New

Price: Please call +91-9815309603 or email: sales@pilanielectron.com

Manufactured in India, in a world-class facility equipped with high quality machinery, materials and components sourced from reputed suppliers in America, Europe and Japan.

Category: Product ID: 4850

Description

3CX10000H3 is a forced air-cooled, ceramic-metal power triode with a robust mesh filament, for use in industrial radio-frequency heating

Electrical Characteristics of 3CX10000H3 
Filament thoriated tungsten
Filament voltage (see note 1) 7.5 V
Filament current 100 A
Surge Filament current (peak) (see note 2) 500 A
Filament cold resistance 9.7 mΩ
Peak usable cathode current 26 A
Amplification factor (Va = 2.3 kV, la = 1.0 A) 20
Mutual conductance (Va = 2.5 kV, la = 1.3 A) 31 mA/V
Grid to anode 39 pF
Grid to filament 54 pF
Anode to filament 2.0 pF
Mechanical Characteristics of 3CX10000H3

Connections: Filament leads and grid contact flange

Operating position: vertical, either way up

Maximum operating temperature: 250 °C

Maximum dimensions: See outline drawings

Net weight: 6 kg (13 pounds) approx

Accessories

Cathode connector: CWPA830

Note: For frequencies above 2MHz, CWPA830 should be used in conjunction with a strip connection to provide a low inductance cathode return.

Cooling of 3CX10000H3

Sufficient air must be passed through the radiator to keep the temperatures of ceramic to metal seals and of the anode (measured next to the radiator) below the maximum rated value of 250 OC. The air flows required to maintain seal temperature at 225 OC in an ambient temperature of 50 OC and with an operating frequency of less than 30 MHz are shown in the following table.

An additional air flow is required for the filament seals. 16 ft3/min directed at the centre contact ring, ½ inch below the outer contact ring, through a 1 ½ inch internal diameter air duct at 45O to the axis of the tube, is sufficient for operation up to 30 MHz at 50  OC ambient and 5000 ft altitude.

Minimum Radiator Air Flow Requirements of 3CX10000H3
Anode Dissipation (Watts) Sea Level 5000 Feet
Air Flow (ft³/min) Pressure Drop (inches Water) Air Flow (ft³/min) Pressure Drop (inches Water)
4000 85 0.18 105 0.21
6000 145 0.38 175 0.46
8000 215 0.68 260 0.82
10000 295 1.08 360 1.32

The values given allow for maximum filament and grid dissipation in addition to anode dissipation shown.

Radio Frequency Oscillator For Industrial Service
(Class C conditions, one tube)
Maximum Ratings  of 3CX10000H3 (Absolute Values)
Frequency 90 MHz max
Anode voltage d.c. 10 kV max
Anode current d.c. (see note 3) 4.0 A max
Anode input power 40 kW max
Anode dissipation 10 kW max
Grid voltage d.c. -1000 V max
Grid current d.c. (see note 4) 0.6 A max
Grid dissipation 250 W max
Cathode current d.c. 5.0 A max
Typical Operating Conditions of 3CX10000H3
Frequency 30 30 MHz
Anode voltage d.c. 7.0 9.0 kV
Anode current d.c. 4.0 4.0 A
Anode dissipation 9 7 kW
Grid voltage d.c. -670 -930 V
Grid resistor 2450 2160 Ω
Grid current d.c. 275 430 mA
Grid dissipation 94 168 W
Drive power 260 570 W
Anode input power 28 36 kW
Anode output power 19 29 kW
Output power less drive 18.7 28.4 kW
NOTES
  1. The filament voltage measured at the tube should be 7.5 V ± 5% for satisfactory performance, maximum life is obtained at -5%.
  2. The filament current of 3CX10000H3 must not exceed 500 A, even momentarily, at any time.
  3. The anode supply should include current-limiting resistors, and an over-current trip to remove anode voltage quickly in the event of an overload or arc (such load variations and faults are common in industrial service). Spark gaps should be connected between anode and ground, to protect the tube from voltage transients under fault conditions.
  4. The grid current rating of 0.6 A d.c. should not be exceed, except for very short periods during tuning. The grid circuit should include over-current protection, and d.c. grid current should be monitored continuously during industrial operation with varying loads.
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