MG5223F S-Band Magnetron

Similar documents
E2V Technologies MG5223F S-Band Magnetron

E2V Technologies M5187F X-Band Magnetron

MG7095 Tunable S-Band Magnetron

E2V Technologies MG5222 X-Band Magnetron

Abridged Data. General Data. MG7095 Tunable S-Band Magnetron for Switched Energy Applications. Cooling. Electrical. Accessories.

M5187 X-Band Magnetron

MG5193 Tunable S-Band Magnetron

MG6090 Tunable S-Band Magnetron

MG MW S-Band Magnetron

M5028 Precision Tuned Magnetron

X-band Magnetron. Cooling (note 5) Water Output coupling (note 6) UG51/U Magnet (note 7) Integral, Permanent

X band Magnetron. Water: Anode cavity Forced-air: Input ceramics and terminals Output coupling (note 6) UG51/U Magnet (note 7) Integral, Permanent

E2V Technologies MG6028 Fast Tuned Magnetron

CX1140 Hydrogen Thyratron

S-band Magnetron. Tuner revolutions to cover frequency range 4.75 (note 3) Mounting position (note 4) Any Cooling (note 5) Water

E2V Technologies CX1175C Deuterium-Filled Ceramic Thyratron

S-band 500kW Magnetron

E2V Technologies CX1725, CX1725X Liquid Cooled, Hollow Anode, Two-Gap Metal/Ceramic Thyratrons

ABSOLUTE MAXIMUM RATINGS These ratings cannot necessarily be used simultaneously and no individual ratings should be exceeded.

PET1610F. Pilani Electron Tubes & Devices Pvt. Ltd. Forced-Air Cooled Triode. For Industrial RF Heating. Drop in equivalent of BW1610F

PET1606J2F. Pilani Electron Tubes & Devices Pvt. Ltd. Water Cooled Triode. For Industrial RF Heating. Drop in equivalent of BW1606J2F

PERFORMANCE SPECIFICATION SHEET ELECTRON TUBE, MAGNETRON TYPE 8943

PERFORMANCE SPECIFICATION SHEET ELECTRON TUBE, MAGNETRON TYPE DOD-011

CCD42-10 Back Illuminated High Performance AIMO CCD Sensor

Fig.1 Heater dissipation test circuit

CCD47-10 NIMO Back Illuminated Compact Pack High Performance CCD Sensor

STA3318 Series StellarMini TM 180 W, Ku-Band Antenna Mount TWTA

CCD97-00 Back Illuminated 2-Phase IMO Series Electron Multiplying CCD Sensor

9007 Power Tube. VHF Linear Power Amplifier Tube 33 Kilowatt Peak Sync Output Thru VHF-TV Band

4665 Power Tube UHF Pulsed Power Amplifier Tube

MA2709A Thyratron Trigger System

CCD30-11 NIMO Back Illuminated Deep Depleted High Performance CCD Sensor

8988 Power Tube. Linear Beam Power Tube

CCD30-11 Front Illuminated Advanced Inverted Mode High Performance CCD Sensor

Power Tube. Beam Power Tube

R S / R 100ppb 0.1. Fig. 1: R S /R 0 as a function of gas concentration at 50% RH and 25 C.

CCD Back Illuminated 2-Phase IMO Series Electron Multiplying CCD Sensor

MEDIUM-MU AIR-COOLED POWER TRIODE 3CX15,000H3

TECHNIlCAL DATA. Amperes Cathode Heating Time..300

8984 Power Tube. VHF Linear Beam Power Tube

L A B O R A T O R I E S 9740 COZYCROFT AVENUE * CHATSWORTH * CALIFORNIA (800) * (818) * FAX: (818)

YC-179 / YC-179A CPI HIGH-MU 4CW50,000J POWER TRIODE YC-179 / YC-179A

CCD67 Back Illuminated AIMO High Performance Compact Pack CCD Sensor

8121 Power Tube. Linear Beam Power Tube

CCD42-40 NIMO Back Illuminated High Performance CCD Sensor

Current Probes. User Manual

CCD30 11 Back Illuminated High Performance CCD Sensor

Model 113 Scintillation Preamplifier Operating and Service Manual

CCD42-40 NIMO Back Illuminated High Performance CCD Sensor

RADIAL BEAM POWER CPI RADIAL 4CW50,000J BEAM POWER TETRODE 4CX20,000C

CCD47-20 Back Illuminated NIMO High Performance NIMO Back Illuminated CCD Sensor

CCD55-30 Inverted Mode Sensor High Performance CCD Sensor

6884 Power Tube. Beam Power Tube

Svetlana 4CX7500A Radial Beam Power Tetrode

E2V Technologies CCD42-80 Back Illuminated High Performance CCD Sensor

CCD42-80 Back Illuminated High Performance CCD Sensor

8807 Power Tube. Beam Power Tube

Marconi Applied Technologies CCD39-01 Back Illuminated High Performance CCD Sensor

CCD97 00 Front Illuminated 2-Phase IMO Series Electron Multiplying CCD Sensor

4X150A/7034 Radial Beam Power Tetrode

Marconi Applied Technologies CCD30-11 Inverted Mode Sensor High Performance CCD Sensor

Marconi Applied Technologies CCD47-20 High Performance CCD Sensor

8791 Power Tube. Linear Beam Power Amplifier Tube

Advanced Regulating Pulse Width Modulators

PERFORMANCE SPECIFICATION SHEET ELECTRON TUBE, MAGNETRON TYPE 6410A

Siemens Aktiengesellschaft 211

General Data Electrical Heater for Oxide-Coated Unipotential Cathode: Voltage (AC or DC) 26.5 ± 10% Current at 26.5 volts

4662 Power Tube. Linear Beam Power Tube

CCD77-00 Front Illuminated High Performance IMO Device

E2V Technologies CCD42-10 Inverted Mode Sensor High Performance AIMO CCD Sensor

Marconi Applied Technologies

Siemens Aktiengesellschaft 137

Advanced Regulating Pulse Width Modulators

8792 Power Tube. Linear Beam Power Amplifier Tube

Rotating Anode X-Ray Tube Housing Assembly. General Data. IEC Classification... Class I Type B

User Guide. SIB Channel APD Array Interface Board Hamamatsu S8550 series

RF-LAMBDA LEADER OF RF BROADBAND SOLUTIONS

186 Siemens Aktiengesellschaft

IDEAL INDUSTRIES, INC. TECHNICAL MANUAL MODEL: MODEL: Multimeter Service Information

SDN136-STR. Features. Description. Agency Approvals. Applications. Absolute Maximum Ratings. Schematic Diagram. Ordering Information

Model 9305 Fast Preamplifier Operating and Service Manual

MAIN FEATURES OVERVIEW GENERAL DATA ORDERING INFORMATION

RF-LAMBDA LEADER OF RF BROADBAND SOLUTIONS

HIGH-MU POWER TRIODE 3CW40,000A7

DC/DC power module 1.8 V / 5A / 9W

4CM500,000G MULTIPHASE-COOLED POWER TETRODE

HITEK POWER OLH10K SERIES

Log Periodic Antenna

Siemens Aktiengesellschaft 299

4-400C/6775 Radial Beam Power Tetrode

Current Transducer CTSR 1-P = 1A

ROTANODE TM E7252X E7252FX E7252GX Rotating Anode X-Ray Tube Housing Assembly. General Data. IEC Classification... Class I Electrical :

Rotating Anode X-Ray Tube Housing Assembly. General Data. IEC Classification... Class I

Transmitter Triode RS 2041 V YD 1262

TL594 PULSE-WIDTH-MODULATION CONTROL CIRCUITS

RCTrms Technical Notes

8072 Power Tube. VHF Linear Amplifier Tube. Coaxial-Electrode Structure Ceramic-Metal Seals Full Input to 500 MHz Conduction Cooled

Supply Voltage Supervisor TL77xx Series. Author: Eilhard Haseloff

SM6T250CAY. Automotive 600 W Transil. Description. Features. Complies with the following standards

Analog Technologies. Multimeter 15B and17b

Transcription:

MG5223F S-Band Magnetron The data should be read in conjunction with the Magnetron Preamble. ABRIDGED DATA Fixed frequency pulse magnetron. Operating frequency... 3050 ± 10 MHz Typical peak output power... 30 kw Magnet... integral Output... no. 10 waveguide Coupler... mates with NATO S.N. 5985-99-083-0058 Cooling... natural or forced-air GENERAL DATA Electrical Cathode... indirectly heated Heater voltage (see note 1)... 6.3 V Heater current at 6.3 V... 1.25 A Heater starting current, peak value, not to be exceeded... 6.0 A max Cathode pre-heating time (minimum)... 180 s Mechanical Overall dimensions... see outline Net weight... 2.1 kg approx Mounting position... any A minimum clearance of 50 mm must be maintained between the magnetron and any magnetic materials. Cooling (see note 2)... natural or forced-air MAXIMUM AND MINIMUM RATINGS (Absolute values) These ratings cannot necessarily be used simultaneously, and no individual rating should be exceeded. Min Max Heater voltage (see note 1)... 5.7 6.9 V Heater starting current (peak)...- 6.0 A Anode voltage (peak)... 7.5 8.5 kv Anode current (peak)... 6.0 12 A Anode input power (mean) (see note 3)...- 100 W Duty cycle...- 0.001 Pulse duration...- 1.2 µs Rate of rise of voltage pulse (see note 4)...- 150 kv/µs VSWR at the output coupler...- 1.5:1 Anode temperature (see note 2)...- 120 C TYPICAL OPERATION Operating Conditions Condition 1 2 Heater voltage... 5.3 6.3 V Anode current (peak)... 8.0 8.0 A Pulse duration... 0.55 0.07 µs Pulse repetition rate... 1000 4000 pps Rate of rise of voltage pulse... 150 150 kv/µs Typical Performance Anode voltage (peak)... 8.0 8.0 kv Output power (peak)... 30 30 kw Output power (mean)... 16.5 8.4 W Whilst e2v technologies has taken care to ensure the accuracy of the information contained herein it accepts no responsibility for the consequences of any use thereof and also reserves the right to change the specification of goods without notice. e2v technologies accepts no liability beyond the set out in its standard conditions of sale in respect of infringement of third party patents arising from the use of tubes or other devices in accordance with information contained herein. e2v technologies (uk) limited, Waterhouse Lane, Chelmsford, Essex CM1 2QU United Kingdom Holding Company: e2v technologies plc Telephone: +44 (0)1245 493493 Facsimile: +44 (0)1245 492492 Contact e2v by e-mail: enquiries@e2v.com or visit www.e2v.com for global sales and operations centres. e2v technologies (uk) limited 2016 A1A-MG5223F Version 8, June 2016 Template: DF764388A-3 123197

TEST CONDITIONS AND LIMITS The magnetron is tested to comply with the following electrical specification. Test Conditions Oscillation 1 Oscillation 2 Heater voltage (for test)... 5.3 6.3 V Anode current (mean)... 4.4 2.25 ma Duty cycle... 0.00055 0.00024 Pulse duration (see note 5)... 0.55 0.06 µs VSWR at the output coupler... 1.15:1 1.15:1 max Rate of rise of voltage pulse (see note 4)... 150 150 kv/µs Limits Min Max Min Max Anode voltage (peak)... 7.5 8.5 - - kv Output power (mean)... 16.0-8.1 - W Frequency (see note 6)... 3040 3060 - - MHz RF bandwidth at ¼ power (see note 7)... - 4.0-30 MHz Frequency pulling (VSWR not less than 1.5:1)... - 13 - - MHz Frequency pushing (see note 7)... - 1.5 - - MHz/A Stability (see note 8)... - 0.5-0.5 % Cold impedance... see note 9 Heater current... see note 10 Temperature coefficient of frequency... see note 11 LIFE TEST The quality of all production is monitored by the random selection of tubes which are then life-tested under Test Conditions Oscillation 1. If the tube is to be operated under conditions other than those specified herein, e2v technologies should be consulted to verify that the life of the magnetron will not be impaired. End of Life Criteria (under Test Conditions Oscillation 1) Min Max Output power (mean)... 13 - W RF bandwidth at ¼ power (see note 7)...- 4.5 MHz Frequency... 3040 3060 MHz Stability (see note 8)...- 1.0 % NOTES 1. With no anode input power. On the application of anode power, the heater voltage must be reduced as follows: Mean input power Heater voltage (W) (V rms ) less than 25 6.3 25 to 62 5.3 62 to 100 4.5 The magnetron heater must be protected against arcing by the use of a minimum capacitance of 4000 pf shunted across the heater directly at the input terminals; in some cases a capacitance as high as 2 µf may be necessary depending on the equipment design. For further details see the Magnetron Preamble. 2. The anode temperature must be kept below the limit specified by means of a suitable flow of air over the anode body. 3. The various parameters are related by the following formula: Pi = i apk x v apk x Du where Pi = mean input power in watts i apk = peak anode current in amperes v apk = peak anode voltage in volts and Du = duty cycle. 4. Defined as the steepest tangent to the leading edge of the voltage pulse above 80% amplitude. Any capacitance in the viewing system must not exceed 6.0 pf. The maximum rate of rise of voltage for stable operation depends upon detailed characteristics of the applied pulse and the pulser design. The specified maximum rating applies to typical hard tube pulsers. 5. Tolerances: oscillation 1 ±10%, oscillation 2 ±30%. 6. Other frequency ranges can be supplied on request. 7. Measured as the peak anode current is varied between 6 and 12 A. 8. With the magnetron operating into a VSWR of 1.5:1, phased to give maximum instability. Pulses are defined as missing when the RF energy level is less than 70% of the normal energy level in the frequency range 3040 to 3060 MHz. Missing pulses are expressed as a percentage of the number of input pulses applied during the last minute of a test period not to exceed 5 minutes. 9. The impedance of the magnetron measured at the operating frequency when not oscillating will be such as to give a VSWR of at least 10:1, with a voltage minimum 43 to 61 mm from the output flange away from the anode. 10. Measured with heater voltage of 6.3 V and no anode input power, the heater current limits are 1.1 A minimum, 1.4 A maximum. 11. Design test only. The maximum frequency change with anode temperature change (after warming) is 0.07 MHz/ C. e2v technologies (uk) limited 2016 Document subject to disclaimer on page 1 A1A-MG5223F Version 8, page 2

12. Measurements taken as read' using suitably calibrated equipment. 13. Special testing (to mutually agreed limits) is carried out to ensure compatibility with Furuno equipment. PERFORMANCE CHART e2v technologies (uk) limited 2016 Document subject to disclaimer on page 1 A1A-MG5223F Version 8, page 3

OUTLINE (All dimensions without limits are nominal) Detail of Countersunk Holes Ref Millimetres A 165.1 max B 123.2 max C 60.0 max D 111.13 E 43.69 max F 11.09 G 51.59 H 32.54 + 0.15 J 7.14 0.00 Lead Connections Colour Element Green Heater Yellow Heater, cathode Outline Note Positional tolerance of holes 0.4 mm diameter with respect to waveguide. K 6.50 ± 0.05 L 305.0 ± 5.0 M 12.7 N 3.1 min P 20.0 max Q 22.0 R 48.0 S 16.0 T 15.0 U 4.25 ± 0.10 V 0.5 W 8.5 ± 0.1 e2v technologies (uk) limited 2016 Document subject to disclaimer on page 1 A1A-MG5223F Version 8, page 4

HEALTH AND SAFETY HAZARDS e2v technologies magnetrons are safe to handle and operate, provided that the relevant precautions stated herein are observed. e2v technologies does not accept responsibility for damage or injury resulting from the use of electronic devices it produces. Equipment manufacturers and users must ensure that adequate precautions are taken. Appropriate warning labels and notices must be provided on equipments incorporating e2v technologies devices and in operating manuals. High Voltage Equipment must be designed so that personnel cannot come into contact with high voltage circuits. All high voltage circuits and terminals must be enclosed and fail-safe interlock switches must be fitted to disconnect the primary power supply and discharge all high voltage capacitors and other stored charges before allowing access. Interlock switches must not be bypassed to allow operation with access doors open. RF Radiation Personnel must not be exposed to excessive RF radiation. All RF connectors must be correctly fitted before operation so that no leakage of RF energy can occur and the RF output must be coupled efficiently to the load. It is particularly dangerous to look into open waveguide or coaxial feeders while the device is energised. Screening of the cathode sidearm of high power magnetrons may be necessary. X-Ray Radiation High voltage magnetrons emit a significant intensity of X- rays not only from the cathode sidearm but also from the output waveguide. These rays can constitute a health hazard unless adequate shielding for X-ray radiation is provided. This is a characteristic of all magnetrons and the X-rays emitted correspond to a voltage much higher than that of the anode. e2v technologies (uk) limited 2016 Document subject to disclaimer on page 1 A1A-MG5223F Version 8, page 5