Technical Specification for the Cryogenic Testing of HTS Current Leads
|
|
|
- Sheryl Rice
- 9 years ago
- Views:
Transcription
1 Group Ref.: AT-MEL-CF EDMS No.: The Large Hadron Collider Project IT-3303/AT/LHC Technical Specification for the Cryogenic Testing of HTS Current Leads Abstract This specification concerns the testing of High Temperature Superconducting (HTS) current leads at cryogenic temperatures. In total 1049 HTS current leads operating at currents of 600 A, 6000 A and A shall be tested. The date foreseen for delivery is from September 2004 to mid 2006 with a delivery rate of about 100 leads tested per month. March 2004
2
3 IT-3303/AT/LHC i Table of Contents 1. INTRODUCTION Introduction to CERN Introduction to the LHC project Subject of the specification SCOPE OF THE TENDER Scope of the supply Items supplied by CERN GENERAL CONDITIONS FOR CONTRACTING Contract Procedure Pre-contract Discussions Preliminary Programme Contract execution Responsibility for Design, Components and Performance Contract Follow-up Contract Engineer Progress Report Test equipment and procedure Approval Pre-series Testing Deviations from the Specification Laboratory Access TECHNICAL DESCRIPTION General Description Number of leads and current ratings Arrangement of the leads Labelling and equipment code Mass of current leads and overall dimensions Cryogenics Cooling scheme Cryogen requirement Gas flow and control Temperature control Nominal Pressure of hydraulic circuits Design pressure of hydraulic circuits of the lead Leak rate Electrical performance and design parameters Electrical insulation tests Steady state operation Transient operation and protection of the leads Instrumentation inside the current leads Instrumentation wires and connectors Heating system Test to be carried out in the presence of CERN representatives Tests to be carried out at CERN TESTS TO BE CARRIED OUT Preparation of tests...11
4 ii IT-3303/AT/LHC 5.2 Powering of the leads A - Leads A - Leads A -Leads Warm-up POWER CONVERTER AN CURREN MONITORING ACCEPTANCE CRITERIA A - Leads A - Leads A - Leads Failure of leads INFORMATION AND DOCUMENT MANAGEMENT Engineering Drawings Planning and Scheduling Quality Control Records Data Recording and Protocols QUALITY Quality assurance provisions PROVISIONAL DELIVERY SCHEDULE HANDLING, TRANSPORT AND INSTALLATION CERN SUPPLIED ITEMS AND SERVICES ACCEPTANCE AN GUARANTEE CONTACT PERSONS FOR TECHNICAL MATTERS 17 ANNEX A: List of Drawings List of Tables Table 1: Number of HTS leads... 4 Table 2: Equipment code...4 Table 3: Cooling requirements and expected thermal performance of HTS leads....5 Table 4: Insulation test voltage of current leads 295 K ± 5 K, 0.13 MPa)..7 Table 5: Pin designation of the Fischer DEE104 A086 connector Table 6: Pin designation of the connector relative to TT Table 7: LHC QAP topics and documents..15 Table 8: Provisional delivery schedule.16 Table 9: Permissible forces and torques at the top and bottom connections...17
5 IT-3303/AT/LHC iii Terms and Definitions Term CDD EDMS QAP HTS Definition CERN Drawing Directory Engineering Data Management System Quality Assurance Plan High Temperature Superconducting
6
7 IT-3303/AT/LHC 1 1. INTRODUCTION 1.1 Introduction to CERN The European Laboratory for Particle Physics (CERN) is a European intergovernmental organisation with 20 Member States*. It has its seat in Geneva but straddles the Swiss-French border. Its objective is to provide for collaboration among European States in the field of high energy particle physics research and to this end it designs, constructs and runs the necessary particle accelerators and the associated experimental areas. At present more than 5000 physicists from research institutes world-wide use the CERN installations for their experiments. 1.2 Introduction to the LHC project The Large Hadron Collider (LHC) is the next accelerator being constructed on the CERN site. The LHC machine will mainly accelerate and collide 7 TeV proton beams but also heavier ions up to lead. It will be installed in the existing 27 km circumference tunnel, about 100 m underground, formerly housing the Large Electron Positron Collider (LEP). The LHC design is based on superconducting twin-aperture magnets which operate in a superfluid helium bath at 1.9 K. This machine is scheduled to come into operation in the year Subject of the specification This Technical Specification concerns the testing of High Temperature Superconducting (HTS) current leads of various current ratings at cryogenic temperatures. The functionality and the design of the mechanical interfaces are the subjects of separate documents [LHC Project Document, EDMS CERN Database, Document No : LHC HTS Current Leads, Drawings in Annex A]. 2. SCOPE OF THE TENDER 2.1 Scope of the supply This Technical Specification concerns the complete testing of HTS leads for powering the LHC superconducting magnets. These leads will operate in a temperature range between room temperature and liquid helium temperature. The scope of the supply comprises: testing of the HTS leads at cryogenic temperatures, provision of the test equipment and consumables for the testing, documentation and protocols of all test results, packing, transport, and delivery to CERN. The responsibility for the test equipment and the test results rests with the Contractor. * CERN Member States are: Austria, Belgium, Czech Republic, Denmark, Finland, France, Germany, Greece, Hungary, Italy, The Netherlands, Norway, Poland, Portugal, Slovak Republic, Spain, Sweden, Switzerland, Bulgaria and the United Kingdom.
8 2 IT-3303/AT/LHC The requirements stated in this specification are based on the testing experience gained at CERN on numerous prototype and pre-series HTS current leads. 2.2 Items supplied by CERN The HTS current leads to be tested will be supplied by CERN. They will be delivered at a rate consistent with the testing schedule and agreed with the Contractor. 3. GENERAL CONDITIONS FOR CONTRACTING Please refer to the Tender Form for more complete information. 3.1 Contract Procedure Pre-contract Discussions The Contractor is strongly encouraged to contact CERN and discuss details of the specification before the Contract is placed. In particular, CERN wishes to ensure that no doubt exists as to the interpretation of this specification Preliminary Programme The Contractor shall propose a preliminary testing schedule, based on the specified CERN delivery schedule. 3.2 Contract execution Responsibility for Design, Components and Performance The Contractor shall be responsible for the correct performance of all test equipment, irrespective of whether it has been chosen by the Contractor or suggested by CERN. CERN's approval of the test equipment and procedure does not release the Contractor from his responsibilities in this respect. CERN assumes responsibility for the performance parameters of items and subsystems supplied by CERN Contract Follow-up Contract Engineer The Contractor shall assign an engineer to be responsible for the Contract and its follow-up including all contacts with CERN throughout the duration of the Contract Progress Report The Contractor shall supply, within one month of adjudication of the order, a written programme detailing the test schedule. The programme shall include preliminary dates for inspections and tests. A written progress report shall be sent to CERN every month until the completion of the full test programme.
9 IT-3303/AT/LHC Test equipment and procedure Approval The detailed concept for the testing of the HTS leads shall be submitted to CERN for approval within one month of adjudication of the order. CERN will give its approval or refusal, in writing, within 4 weeks. The ordering of test equipment and materials shall not start without CERN s written approval Pre-series Testing Before starting the series testing of the HTS leads at cryogenic temperatures, at least two leads of each type shall be tested in the presence of CERN representatives to qualify the test benches and other test equipment for the series testing. These pre-series leads shall be shipped to CERN for re-testing and comparison. Series testing at cryogenic temperatures of the HTS leads shall not start before CERN has given its formal approval in writing Deviations from the Specification If, after the Contract is placed, the Contractor discovers that he has misinterpreted the specification, this will not be accepted as an excuse and CERN will expect that the Contractor delivers equipment according to the specification at no extra cost. During execution of the Contract, all proposed deviations from this Technical Specification, or any other subsequent contractual agreement, shall be submitted to CERN in writing. CERN will give its approval or refusal in writing 3.3 Laboratory Access CERN shall have free access during normal working hours to the test sites, including any subcontractor s premises, during the contract period. The place of testing may only be changed after written approval by CERN. CERN will give 5 working days' notice of any visit. 4. TECHNICAL RESCRIPTION 4.1 General Description The LHC involves the operation of about 8000 superconducting magnets of various current ratings. Essential elements for the powering of these magnets are HTS leads mounted inside the liquid helium vessel and operating at cryogenic temperatures. The operation of the LHC will require more than 1000 HTS leads. The use of HTS material incorporated in the lower part of the lead allows a reduction of heat load into the liquid helium by a factor of about 10 if compared to conventional selfcooled leads. The corresponding reduction in total cooling power is about a factor of 3. The HTS current leads provide the electrical link between the warm cables from/to the power converter and the low temperature superconducting bus bar bringing the current from/to the cryo-magnets (see Fig. 1).
10 4 IT-3303/AT/LHC 4.2 Number of leads and current ratings The HTS leads to be tested have three different nominal current ratings. They were designed and validated at CERN. Prototypes of each lead have been successfully tested under nominal operating conditions. Table 1 summarises the total number (N TOT ) of HTS leads to be tested and their corresponding nominal current (I nom ). I nom (A) N TOT Table 1: Number of HTS leads to be tested 4.3 Arrangement of the leads The 6000 A and the A current leads are supplied as single units. The 600 A current leads are supplied mounted on a common flange in a group of 4, see technical drawings in the Annex A. 4.4 Labelling and equipment code Each HTS lead is labelled individually by a number, which shall be entered in the corresponding testing data sheet. The following equipment code is adopted: A 600 A 6000 A DFLAS DFLBS DFLCS Table 2: Equipment code 4.5 Mass of HTS leads and overall dimensions The 600 A HTS current lead assembly has a mass of about 40 kg, while for a single 6000 A and A current lead the mass amounts to about 50 kg and 70 kg respectively. Each HTS lead has a maximum overall length of 1.5 m. The outer diameter of the insulating mounting flange is 218 mm for the A and for the 6000 A lead and 255 mm for the assembly of four 600 A leads. The external diameter of the envelope is about 128 mm for the A lead and 50 mm for each 600 A lead. Detailed information on the size of the components is given in the technical drawings in the Annex A.
11 IT-3303/AT/LHC Cryogenics Cooling Scheme The HTS current lead consists of a resistive heat exchanger and a HTS part (see Fig.1). The resistive heat exchanger is cooled using 20 K helium gas at 0.13 MPa. It operates between room temperature and the operating temperature of the HTS (T HTS ) and its cryogenic envelope is thermally insulated from the cryostat environment via a vacuum jacket. The HTS part operates between T HTS and 4.5 K. The HTS cold end dips into liquid helium (4.5 K) and is self-cooled by the vapour created by the heat conducted into the bath. The 20 K circuit and the 4.5 K circuit are hydraulically separated at the warm end of the HTS. A warm cryogenic valve controls the nominally 20 K helium flow of each lead to maintain a fixed temperature at the top of the HTS section. The resistive part of the lead is designed to work stably (stable temperature profile with the maximum temperature of the resistive heat exchanger never exceeding room temperature) at all currents up to I nom. The gas escaping at the warm end of the HTS stays in the helium vessel and is recovered with the cryostat boil-off Cryogen requirements The HTS lead operation requires: helium gas, at a temperature in the range 10 K to 25 K (0.13 MPa), for the cooling of the resistive part, liquid helium at 4.5 K covering the cold end of the HTS (see section 5.2) Gas flow and control A room temperature helium control valve is required for each HTS lead on test. The valve shall be controlled using the signal from one of the platinum sensors incorporated at the top end of the HTS part (TT821 or TT822 in Fig.1). The helium flow shall be adjusted to maintain the temperature at the top end of the HTS at a fixed value of 70 K ± 2 K in stand-by operations and at a fixed value of 48 K ± 2 K when the lead is powered. The 20 K helium mass flow (m 20K ) necessary to operate the leads at zero and nominal current and the corresponding heat load into the liquid helium bath (Q 4.5K ) are given in Table 3. The maximum pressure drop of the 20 K helium gas inside the resistive heat exchanger is 3 kpa. LEAD I=0 A I=I nom CURRENT RATING TT821=TT822=70 K TT821=TT822=50 K (A) m 20K (g/s) Q 4.5K (W) m 20K (g/s) Q 4.5K (W) ± ± ± ± ± ± Table 3: Cooling requirements and expected thermal performance of HTS current leads
12 6 IT-3303/AT/LHC (EE) (TT) Fig.1: LHC HTS lead schematic
13 IT-3303/AT/LHC Temperature control Operation with current Nominal set points of T HTS in the range 30 K-60 K shall be foreseen. The tolerance on the set point temperature is ± 2 K Operation in stand-by conditions (without current) A nominal set point of T HTS of 70 K shall be foreseen. The tolerance on the set point temperature is ± 2 K. Lower set point temperatures shall be avoided to prevent icing at the top of the leads Nominal Pressure of hydraulic circuits The inlet pressure of the 20 K helium gas is 0.13 MPa ± 0.01 MPa. The nominal pressure of the saturated helium bath is 0.12 MPa ± 0.01 MPa Design pressure of hydraulic circuits of the lead The design pressure of the 20 K and 4.5 K helium circuits is 0.35 MPa Leak rate The integral of leak detected at operating conditions is specified to be: mbar l s -1 for the 20 K circuit, mbar l s -1 for the lead vacuum insulation. 4.7 Electrical performance and design parameters Electrical insulation tests The insulation test and the maximum leakage current (I LEAKAGE ) admitted per each type of lead are given in Table 4. The insulation test of the lead shall be performed with warm helium gas (295 K ± 5 K, 0.13 MPa) in the resistive heat exchanger and in the cryostat environment. Lead Current Rating (A) U (V) I LEAKAGE (µa) Voltage Test duration (s) Table 4: Insulation test voltage of current leads 295 K ± 5 K, 0.13 MPa)
14 8 IT-3303/AT/LHC Steady state operation The total voltage drop across the lead operating at nominal current and nominal cooling conditions is 70 mv for each type of lead Transient operation and protection of the leads The resistive section and the HTS section of the leads shall be protected independently. In case of thermal run-away of the resistive heat exchanger, the total voltage drop across the lead shall never exceed 100 mv. Within 5 seconds from the detection of this threshold, the leads shall be discharged at its nominal current decay rate with a time constant of 120 s for the 13 ka leads, with a time constant of 30 s for the 6 ka leads, and with a time constant of 20 s for the 600 A leads. In case of resistive transition of the HTS element, the total voltage drop across the HTS shall never exceed 3 mv. Within 5 seconds from the detection of this threshold, the leads shall be discharged at the nominal current decay rate as stated above Instrumentation inside the current leads Instrumentation (voltage taps and temperature probes) is incorporated in the lead for: control of the 20 K helium flow, independent protection of both the resistive heat exchanger and the HTS part. Two additional voltage taps are made available for the protection of the LHC magnets circuit. Each current lead of any current rating is equipped with the same type and number of instrumentation signals. These signals consist of (see Fig.1): 1. Eight voltage taps located at: warm end of resistive heat exchanger (EE11, EE12), warm end of HTS (EE21, EE22), cold end of HTS (EE31, EE32), low temperature superconducting wires (EE41, EE42); 2. Three platinum resistance thermometers (Pt100 IEC) located at: warm end of resistive heat exchanger (TT811), warm end of HTS (TT821, TT822). The voltage taps in any position on the lead and the temperature sensors at the warm end of the HTS are doubled to allow redundancy. The purpose of the voltage signals is as follows: the voltage EE11-EE21 (or EE12-EE22) is for the protection of the resistive heat exchanger, the voltage EE21-EE31 (or EE22-EE32) is for the protection of the HTS part,
15 IT-3303/AT/LHC 9 the voltage tap EE41 (or EE42) is provided for the protection of the magnet circuit. The purpose of the temperature sensors is as follows: TT821 (or TT822) is for the control of the 20 K helium flow, TT811 is for monitoring the temperature at the top of the lead and verifying the integrity of the lead heating system. A 16-pin instrumentation helium-tight connector is incorporated in the top terminal of each lead. It is at the lead potential and it provides the leak tight separation between the 4.5 K helium circuit and the room temperature outside environment. All the wires of the lead instrumentation terminate in this connector with the exception of the temperature sensor TT811, located at the top of the resistive heat exchanger and accessible from outside. The wires of the TT811 temperature sensor are connected in a 4-pin connector incorporated in the top terminal of the lead. The body of the two instrumentation connectors is at the lead potential. The temperature sensors are electrically insulated (100 V) from the lead body. During the high voltage insulation tests, the lead instrumentation shall be left floating Instrumentation wires and connectors The 16-pin connector at the top of the resistive heat exchanger is a leak tight Fischer connector DEE 104 A086. The pin designation of the connector is indicated in Table 6.1. The four wires of each temperature sensor are twisted. U +, orange Pt-100 I +, yellow U -, black I -, brown Fig.2: Schematic of Pt-100 probe and instrumentation wires in the lead Fig.3: Schematic of DBEE 104 A086 instrumentation connector (seen underside)
16 10 IT-3303/AT/LHC Pin Sensor Signal 1 EE11 Voltage 2 EE12 Voltage 3 EE21 Voltage 4 EE22 Voltage 5 EE31 Voltage 6 EE32 Voltage 7 EE41 Voltage 8 EE42 Voltage 9 TT821 U + 10 TT821 U - 11 TT821 I + 12 TT821 I - 13 TT822 U + 14 TT822 U - 15 TT822 I + 16 TT822 I - Table 5: Pin designation of the Fischer DBEE104 A086 connector The wires of the temperature sensor TT811 terminate in a 4-pin connector. The pin designation of this connector is given in Table 6. Pin Sensor Signal 1 TT811 U + 2 TT811 U - 3 TT811 I + 4 TT811 I - Table 6: Pin designation of the connector relative to TT Heating system Cartridge heaters are incorporated inside the top part of each lead to avoid heavy condensation or ice formation when the leads are operating at zero current or at a current
17 IT-3303/AT/LHC 11 lower than the nominal one. These heaters guarantee that the temperature at the top of the lead stays above the dew point on condition that the helium flow in the resistive part of the lead does not exceed the values specified both for stand-by conditions and operation with current. The heater electrical circuit operates at 24 V-a.c.. The insulation transformers (220 V-a.c./24 V-a.c., one per lead) and the heaters control system will be supplied by CERN. The maximum power supplied by the heating system is about 1000 W for each A lead, 500 W for each 6000 A lead and 100 W for each 600 A lead Tests to be carried out in the presence of CERN representatives CERN reserves the right to be present, or to be represented by an organisation of its choice, to witness any tests Tests to be carried out at CERN The pre-series HTS leads of each lead will be re-tested at CERN for comparison. The tests specified in chapter 5 will be repeated at CERN in a sampling mode on some leads. If, on such a test the lead does not meet the acceptance criteria, it will be rejected. 5. TESTS TO BE CARRIED OUT 5.1 Preparation of tests The leads shall be electrically connected at their cold end by clamping the free end of the LTS wires. These wires are soldered together in a rectangular shape. The procedure for this electrical connection shall be proposed by the Contractor and approved by CERN. Prior to integration of the lead in the test cryostat, the Contractor shall verify: the electrical insulation (see section 4.7.1), the leak tightness of the vacuum jacket and of the 20 K circuit (see section 4.6.7), the integrity and continuity of the instrumentation signals inside the lead body. In case of non-conformities, the Contractor shall report to CERN who will assure the repair or replacement of the faulty components. During cool-down of the test cryostat, all the temperature signals inside the current lead, the inlet temperature and the mass flow rate of the helium cooling the resistive heat exchanger shall be recorded. In this phase, the 20 K helium mass flow rate in the resistive heat exchanger shall never exceed the values specified in Table 3 for stand-by operation. When the temperature of the lead has reached the nominal values for stand-by operation (T HTS =70±2 K, TT811=295±2 K), the lead shall undergo an electrical insulation test as specified in section The helium flow rate necessary to cool the resistive heat exchanger with T HTS =70±2 K and the corresponding pressure drop shall be recorded. 5.2 Powering of the leads The leads shall not be powered unless protected by an interlock on T HTS set to 60 K. The HTS leads can only be powered once:
18 12 IT-3303/AT/LHC the temperature T HTS is adjusted to 48 K ± 2 K, the liquid helium level covers the last 5 cm ± 1 cm measured from the bottom end of the lead, the protection system is connected and operational (see section 4.7.3). When the power converter is switched on and prior to powering, the voltage drops across the lead (see section 4.7.2) shall be recorded A - Leads The temperature T HTS shall be fixed to 48 K ± 2 K. The leads shall be powered up to A with a ramp rate of 40 A/s. A constant current of A shall be carried by the leads during 2 hours. Finally, the helium flow rate inside the resistive heat exchanger shall be stopped and the current shall be made to decay exponentially with a time constant of 120s. The following signals shall be recorded versus time with a sampling rate of 1 s: - Current. - Helium flow rate inside the resistive heat exchanger. - Inlet temperature of the helium inside the resistive heat exchanger. - Pressure drop of the helium inside the resistive heat exchanger. - Voltage drops inside the lead via EE11 EE21, EE22 - EE31, EE32 of 1. lead EE32 2. lead. - Temperature signals inside the lead TT811, TT821, TT Liquid helium level. The pressure drop in the resistive heat exchanger shall be recorded as a function of helium mass flow A - Leads The temperature T HTS shall be fixed to 48 K ± 2 K. The HTS leads shall be powered up to 6000 A with a ramp rate of 40 A/s. A constant current of 6000 A shall be carried by the leads during 1 hour. T HTS shall be lowered to 40±2 K and a constant current of 7500 A shall be carried by the leads during 1 hour. Finally, the helium flow rate inside the resistive heat exchanger shall be stopped and the current shall be made to decay exponentially with a time constant of 10 s. The following signals shall be recorded versus time with a sampling rate of 1 s: - Current. - Helium flow rate inside the resistive heat exchanger. - Inlet temperature of the helium inside the resistive heat exchanger. - Pressure drop of the helium inside the resistive heat exchanger. - Voltage drops inside the lead via EE11 EE21, EE22 - EE31, EE32 of 1. lead EE32 2. lead. - Temperature signals inside the lead TT811, TT821, TT Liquid helium level.
19 IT-3303/AT/LHC 13 The pressure drop in the resistive heat exchanger shall be recorded as a function of helium mass flow A - Leads The temperature T HTS shall be fixed to 48 K ± 2 K. The HTS leads shall be powered up to 600 A with a ramp rate of 40 A/s. A constant current of 600 A shall be carried by the leads during 2 hours. Finally, the helium flow rate inside the resistive heat exchanger shall be stopped and the current shall be made to decay exponentially with a time constant of 10 s. The following signals shall be recorded versus time with a sampling rate of 1 s: - Current. - Helium flow rate inside the resistive heat exchanger. - Inlet temperature of the helium inside the resistive heat exchanger. - Pressure drop of the helium inside the resistive heat exchanger. - Voltage drops inside the lead via EE11 EE21, EE22 - EE31, EE32 of 1. lead EE32 2. lead. - Temperature signals inside the lead TT811, TT821, TT Liquid helium level. The pressure drop in the resistive heat exchanger shall be recorded as a function of helium mass flow. 5.3 Warm-up Warm up to ambient can be accelerated by using heaters inside the cryostat and simultaneously monitoring the temperature T HTS (TT821). No heaters shall be attached to the leads. The removing of the insert from the cryostat shall not be carried out before T HTS (TT821) has reached room temperature. After the cold tests, instrumentation, electrical insulation and leak tightness shall be checked at room temperature. These tests include integrity, continuity, and the HV-test as specified in section POWER CONVERTER AND CURRENT MONITORING A power converter of sufficient output voltage and about 13 ka DC output current is required for testing. The maximum current ripple and noise of the power converter has to be small enough for the precise measurement (± 0.5 µv) of the voltage drop across the HTS-part, which is in the order of 10 µv at 13 ka. In order to meet this demand, adequate filtering may be needed. The power converter should be capable of supplying a nominal current of I max =13 ka within a maximum rise time of 5 minutes up to a peak current of 13 ka ± 50 A. The ramp up to 13 ka has not to be strictly linear and a short overshoot up to about 13.2 ka is acceptable. The maximum acceptable length of the current overshoot shall not exceed 5 s. The accuracy for the current measurement shall be better than ± 0.1 % relative and ± 0.5 % absolute of the maximum value.
20 14 IT-3303/AT/LHC 7. ACCEPTANCE CRITERIA A - Leads - The temperature T HTS shall not exceed 60 K at any current level. - The voltage drop across the resistive part shall not exceed 70 mv under nominal conditions. - The voltage drop across the HTS part shall not exceed 300 µv. - The helium mass flow through the resistive part shall not exceed the values shown in Table 3 under nominal conditions A - Leads - The temperature T HTS shall not exceed 60 K at any current level. - The voltage drop across the resistive part shall not exceed 70 mv under nominal conditions. - The voltage drop across the HTS part shall not exceed 300 µv. - The helium mass flow through the resistive part shall not exceed the values shown in Table 3 under nominal conditions A - Leads - The temperature T HTS shall not exceed 60 K at any current level. - The voltage drop across the resistive part shall not exceed 70 mv under nominal conditions. - The voltage drop across the HTS part shall not exceed 60 µv. - The helium mass flow through the resistive part shall not exceed the values shown in Table 3 under nominal conditions. 7.4 Failure of leads If a HTS current lead fails during testing or does not fully meet the acceptance criteria stated in Chapter 7, CERN shall be informed. CERN will decide weather the lead shall be returned to the lead manufacturer or the lead shall be shipped to CERN. For the conditions governing the re-testing of the HTS leads see the Addendum No.1 to the Collaboration Agreement K828/SL 8. INFORMATION AND DOCUMENT MANAGEMENT 8.1 Engineering Drawings Engineering drawings prepared by the Contractor for the execution of the contract must comply with the procedure defined in chapter 8 of the QAP document No LHC-PM-QA , Drawing Process External Drawings. 8.2 Planning and Scheduling Planning and scheduling activities must be performed according to the procedure defined in the QAP document No LHC-PM-QA , Planning and Scheduling Requirements.
21 IT-3303/AT/LHC Quality Control Records All specified tests and measurements results shall be recorded in a specific file for each HTS lead, called the "traveller". 8.4 Data Recording and Protocols A data sheet shall be filled for each HTS lead recording all measurement results for all the tests (see section 5.2). The measurement results shall also be stored on disks in a PC readable format. In addition, both measurements and protocol information have to be stored on CD-ROMs in a PC readable format together with the series numbers of the HTS lead. Written and signed protocols, in English or French, shall be prepared by the Contractor for all tests performed. Examples for protocols established at CERN during the testing of prototype and pre-series leads are available from CERN on request. 9. QUALITY 9.1 Quality assurance provisions The Contractor shall plan, establish, implement and maintain a documented quality assurance program that fulfils all the requirements described in the technical specification and drawn up according to the Quality Assurance Plan for the LHC Project. The list of relevant topics covered by the LHC Quality Assurance Plan, together with the corresponding documents, is given in the table below. Copies of these documents can be sent on request. Topic Document Title Doc. Number LHC Configuration Management Configuration Management - Change Process And Control LHC-PM-QA Design Quality Assurance Categories LHC-PM-QA Planning and Scheduling Drawing Process-External Drawings Planning and Scheduling Requirements for Institutes, Contractors and Suppliers LHC-PM-QA LHC-PM-QA Document & Data Management Document Standards LHC-PM-QA Table 7: LHC QAP topics and documents
22 16 IT-3303/AT/LHC 10. PROVISIONAL DELIVERY SCHEDULE Delivery / Date 13kA leads 6kA leads 0.6 ka lead assemblies 1 th September th November st February st April th June th August st October st December th February th April st June st August st October Table 8: Provisional delivery schedule 11. HANDLING, TRANSPORT AND INSTALLATION The leads will be delivered to the Contractor by CERN in purpose-built crates, which assure damage-free delivery. Lifting shall be done via lugs screwed in the lead flanges. It is the responsibility of the Contractor to deliver the tested HTS current leads to CERN well protected and without damage. Top (warm electrical connection) and bottom (free end of LTS wires) connections of the lead can withstand a maximum force (F MAX ) applied in any direction and a maximum torque (C MAX ) as specified in Table 9. The maximum horizontal and vertical acceleration that the HTS leads are able to withstand during transport when supported vertically by fastening the lead insulating flange to the cryostat flange at the specified torque - as after installation in the cryostat chimney corresponds respectively to 0.5 g and 1.5 g.
23 IT-3303/AT/LHC 17 TOP CONNECTION BOTTOM CONNECTION F MAX (N) C MAX (N m) F MAX (N) A A A Table 9: Permissible forces and torques at the top and bottom connections 12. CERN SUPPLIED ITEMS AND SERVICES All HTS leads to be tested will be supplied by CERN. The heating system (see section 4.7.3) will be supplied by CERN. 13. ACCEPTANCE AND GUARANTEE Provisional acceptance will be given by CERN only after all documentation referred to in clause 4 of the Technical Specification has been delivered, all tests specified in clause 4 have been successfully completed and all tests or other certificates have been supplied to CERN. 14. CONTACT PERSONS FOR TECHNICAL MATTERS Amalia Ballarino Phone: Fax: [email protected] Or in case of absence Karl Hubert Mess Phone: Fax: [email protected]
24 18 IT-3303/AT/LHC Annex A: List of Drawings 13 ka HTS leads Drawing No. Version Title LHCDFLAS0001 AF General assembly LHCDFLAS0002 AC Interface drawing LHCDFLAS00011 AD Insulating flange LHCDFLAS00025 AB Helium gas inlet connection-modified DN 16 LHCDFLAS Vacuum jacket sub-assembly-union small flange DN 16 LHCDFLAS00039 AD Top copper block sub-assembly-outer block LHCDFLAS00042 AA Top copper block sub-assembly-insert for helium outlet 6 ka HTS leads Drawing No. Version Title LHCDFLCS0001 AF General assembly LHCDFLCS0002 AD Interface drawing LHCDFLCS00011 AD Insulating flange LHCDFLCS00025 AC Helium gas inlet connection-modified DN 16 LHCDFLCS00031 AD Vacuum envelope sub-assembly-union small flange DN 16 LHCDFLCS00039 AE Top copper block sub-assembly-outer block LHCDFLCS00042 AB Top copper block sub-assembly-insert for helium outlet 0.6 ka HTS leads Drawing No. Version Title LHCDFLBS0001 AB General assembly LHCDFLBS Interface drawing LHCDFLBS Insulating flange LHCDFLBS00033 AB Top part sub-assembly-electrical connection LHCDFLBS00052 AA 20 K Helium inlet-modified DN 16 LHCDFLBS Vacuum jacket sub-assembly-union small flange DN 16
How To Use High Temperature Superconductor For A Power Source
High Temperature Superconducting Current Leads for the Large Hadron Collider A.Ballarino CERN, European Organization for Nuclear Research, 1211 Geneva 23, Switzerland Abstract The Large Hadron Collider
The commissioning of the LHC: first the technical systems, then the commissioning with beam
The commissioning of the LHC: first the technical systems, then the commissioning with beam Roberto Saban 4. Ulusal Parçacık Hızlandırıcıları ve Uygulamaları Kongresi 30 Ağustos 1 Eylül 2010, Bodrum -
BB-18 Black Body High Vacuum System Technical Description
BB-18 Black Body High Vacuum System Technical Description The BB-18 Black Body is versatile and is programmed for use as a fixed cold target at 80 K or variable target, at 80 K- 350 K no extra cost. The
How To Build A Powerline Box Powerline Generator
Quick Reference Guide DYNAMIC Series Dynamic Series is a broad product family that provides connector solutions ranging from signal level circuitry through power circuit connectivity in a ruggedized, industrialized
Automation System TROVIS 6400 TROVIS 6493 Compact Controller
Automation System TROVIS 6400 TROVIS 6493 Compact Controller For panel mounting (front frame 48 x 96 mm/1.89 x 3.78 inch) Application Digital controller to automate industrial and process plants for general
HIGH-CAPACITY HIGH TEMPERATURE SUPERCONDUCTING POWER CABLES
HIGH-CAPACITY HIGH TEMPERATURE SUPERCONDUCTING POWER CABLES Jean-Maxime SAUGRAIN NEXANS Corporate VP Technical IASS Workshop Postdam May 13, 2011 Rationale High-capacity High Temperature Superconducting
Agilent 4339B/4349B High Resistance Meters
Agilent 4339B/4349B High Resistance Meters Technical Overview Within Budget Without Compromise Introducing the Agilent Technologies 4339B and 4349B High Resistance Meters Used for Making Ultra- High Resistance
Cross-beam scanning system to detect slim objects. 100 mm 3.937 in
891 Object Area Sensor General terms and conditions... F-17 Related Information Glossary of terms... P.1359~ Sensor selection guide...p.831~ General precautions... P.1405 PHOTO PHOTO Conforming to EMC
Large Systems Commissioning
Large Systems Commissioning, DESY CAS Vacuum in Accelerators Platja D`Aro, May 21, 2006 Special thanks to O. Gröbner 1 Outline Introduction Pump Down and Leak Check Components Check Bake Out Interlocks/Safety
APPLICATION NOTE How to Deal with Electrical Noise and Interference in the Measuring Chain using a NEXUS
APPLICATION NOTE How to Deal with Electrical Noise and Interference in the Measuring Chain using a NEXUS Conditioning Amplifier by Claus Lindahl and Bernard Ginn, Brüel&Kjær When making vibration measurements,
Differential Pressure Sensors for air and non-corrosive gases, with calibration certificate
1 919 1919P01 1919P03 QBM65/C, QBM75-1U/C Differential Pressure Sensors for air and non-corrosive gases, with calibration certificate QBM751-1/C QBM65/C QBM75/C Highly accurate measurements with calibration
Subminiature Load Cell Model 8417
w Technical Product Information Subminiature Load Cell 1. Introduction... 2 2. Preparing for use... 2 2.1 Unpacking... 2 2.2 Using the instrument for the first time... 2 2.3 Grounding and potential connection...
J TB/TW Temperature limiter, temperature monitor
JUMO GmbH & Co. KG Delivery address:mackenrodtstraße 14, 36039 Fulda, Germany Postal address: 36035 Fulda, Germany Phone: +49 661 6003-0 Fax: +49 661 6003-607 e-mail: [email protected] Internet: www.jumo.net
ABB i-bus EIB / KNX Analogue Input AE/S 4.2
Product Manual ABB i-bus EIB / KNX Analogue Input AE/S 4.2 Intelligent Installation Systems This manual describes the functionality of Analogue Input AE/S 4.2. Subject to changes and errors excepted. Exclusion
AMSC s Superconductor Cable Technologies for Electric Utilities
International Workshop 2014 AMSC s Superconductor Cable Technologies for Electric Utilities Michael Ross, P.E. Managing Director of Superconductor Power Systems AMSC Corporate Facts Headquartered in MA,
Agilent 87421A/87422A Power Supply
Agilent 87421A/87422A Power Supply Technical Overview Designed specifically for Agilent Technologies microwave system amplifiers Bias cable permits remote placement Compact size for easy system integration
Isolated AC Sine Wave Input 3B42 / 3B43 / 3B44 FEATURES APPLICATIONS PRODUCT OVERVIEW FUNCTIONAL BLOCK DIAGRAM
Isolated AC Sine Wave Input 3B42 / 3B43 / 3B44 FEATURES AC averaging technique used to rectify, amplify, and filter 50 Hz to 400 Hz sine-wave signals. Accepts inputs of between 20 mv to 550 V rms to give
MagIC 6100. Installation Manual. Point of Sales Terminals TD06014B
MagIC 6100 Installation Manual Point of Sales Terminals TD06014B Contents Description 3 Introduction 3 Presentation of the MagIC 6100 terminal 3 Technical Data 4 Installation 5 Unpacking 5 Safety recommendations
USER S MANUAL FH052EAV1 FH070EAV1. System Air Conditioner (Cooling and Heating) ENGLISH ESPAÑOL FRANÇAIS ITALIANO PORTUGUÊS DEUTSCH E HNIKA
USER S MANUAL FH052EAV1 FH070EAV1 E HNIKA PORTUGUÊS ENGLISH ESPAÑOL ITALIANO DEUTSCH FRANÇAIS System Air Conditioner (Cooling and Heating) E S F I P D G DB98-29263A(1) Safety Precautions Register your
LHC MACHINE PROTECTION
LHC MACHINE PROTECTION Rossano Giachino, CERN, Geneva, Switzerland Abstract The energy stored in LHC magnets presents a considerable challenge for commissioning even before any beam is injected. Furthermore,
Short Form Catalogue. Alarm Systems. Reliable Supervision and Control
Short Form Catalogue Alarm Systems Reliable Supervision and Control Alarm Monitors and Indicators The SELCO product range includes a number of alarm monitors and indicator panels for use in numerous applications.
3-Component Measuring System
Force 3-omponent Measuring System for utting Force Measurement During Turning Modular system for measurement of cutting forces when turning outside and inside diameters on turret lathes. Machine adapters
2/8.10.01. These vacuum switches are used in measuring ranges between -1 and 0 bar.
CATALOGUE > Release 8.5 > Electronic vacuum switches Series SWM Electronic miniature vacuum switches Series SWM These vacuum switches are used in measuring ranges between -1 and 0 bar. Small dimension
Max. Length of HTS Cables in the Future
Max. Length of HTS Cables in the Future K. Schippl, Nexans Deutschland Industries, Hannover, Germany TOPICS: Limitation of the cable design: 1. Physical limitations 2. Shipping limitations 3. Maintenance
ELECTRIC CENTRAL HEATING FLOW BOILER
ELECTRIC CENTRAL HEATING FLOW BOILER EKCO.T Used product can t be treated as general communal waste. Disassembled appliance has to be delivered to the collection point of electrical and electronic equipment
Ordering Information. Cylindrical Proximity Sensor E2E/E2E2
Cylindrical Sensor E2E/E2E2 A New Series of Easy-to-use and Tough E2E/E2E2 Models Long-size E2E2 Sensor Conforms to CENELEC Ideal for a variety of applications. With a metal connector that can be tightened
Pressure transmitter For general industrial applications Model A-10
Electronic pressure measurement Pressure transmitter For general industrial applications Model A-10 WIKA data sheet PE 81.60 for further approvals see page 9 Applications Machine building Shipbuilding
LM134-LM234-LM334. Three terminal adjustable current sources. Features. Description
Three terminal adjustable current sources Features Operates from 1V to 40V 0.02%/V current regulation Programmable from 1µA to 10mA ±3% initial accuracy Description The LM134/LM234/LM334 are 3-terminal
Heat. Investigating the function of the expansion valve of the heat pump. LD Physics Leaflets P2.6.3.2. Thermodynamic cycle Heat pump
Heat Thermodynamic cycle Heat pump LD Physics Leaflets P2.6.3.2 Investigating the function of the expansion valve of the heat pump Objects of the experiment g To study the operational components of the
English version. CEN members are bound to comply with the CEN/CENELEC Internal Regulations which stipulate the
EUROPEAN STANDARD NORME EUROPÉENNE EUROPÄISCHE NORM EN 4162 2012 ICS: 49.030.20 English version Aerospace series Screws 100 countersunk normal head, offset cruciform recess, coarse tolerance normal shank,
TDA2822 DUAL POWER AMPLIFIER SUPPLY VOLTAGE DOWN TO 3 V LOW CROSSOVER DISTORSION LOW QUIESCENT CURRENT BRIDGE OR STEREO CONFIGURATION
TDA2822 DUAL POER AMPLIFIER SUPPLY VOLTAGE DON TO 3 V. LO CROSSOVER DISTORSION LO QUIESCENT CURRENT BRIDGE OR STEREO CONFIGURATION DESCRIPTION The TDA2822 is a monolithic integrated circuit in 12+2+2 powerdip,
High-ohmic/high-voltage resistors
FEATURES These resistors meet the safety requirements of: UL1676 (range 510 kω to 11 MΩ) EN60065 BS60065 (U.K.) NFC 92-130 (France) VDE 0860 (Germany) High pulse loading capability Small size. APPLICATIONS
T0118 T2118 T3118. Instruction Manual
Programmable indoor transmitter of temperature T0118 Programmable indoor transmitter of atmospheric pressure T2118 Programmable indoor transmitter of temperature, relative humidity and other derived humidity
Speed sensor MiniCoder GEL 247
Speed sensor MiniCoder GEL 47 Flange assembly Technical information version 08.0 The MiniCoder family from Lenord + Bauer offers spacesaving solutions for the contactless measurement of rotational movements
SELECTION GUIDE INPUT CHARACTERISTICS. Voltage set point accuracy. Overall voltage error. Temperature coefficient of output voltage (slope)
OBSOLETE NMPD0 Series SELECTION GUIDE Order Code Nominal Input Voltage Output Voltage Efficiency (Min.) Power (Max.) V V % W NMPD003C 3. 9.50 NMPD005C 5. 9.5 NMPD0C. 0 0.00 NMPD05C 5. 9 0.00 FEATURES RoHS
Transformer oil cooler ALFA A02
A02 Transformer oil cooler ALFA Transformer oil cooler ALFA The transformer oil cooler ALFA is used to cool power transformers by means of forced air and oil flow. The oil in the cooler is circulated using
CONTOIL DFM 8EDM. Table of contents. Mounting and operating instructions
Mounting and operating instructions CONTOIL DFM 8EDM Table of contents Safety instructions 2 - Designed use - Installation, commissioning and operation - Operational safety - Return of the instruments
Agilent 4338B Milliohm Meter
Agilent 4338B Milliohm Meter 10 µω to 100 kω Technical Overview Introduction Ideal for precise measurements of extremely low resistances using an ac test signal, the Agilent Technologies 4338B suits bench-top
Installation Qualification/Operational Qualification Protocols and Instructions. Experion Automated Electrophoresis Station and Software
Installation Qualification/Operational Qualification Protocols and Instructions Experion Automated Electrophoresis Station and Software Validation Kit (Catalog #700-7051) Security Edition Software (Catalog
SELECTION GUIDE. Nominal Input
www.murata-ps.com NKE Series FEATURES RoHS Compliant Sub-Miniature SIP & DIP Styles 3kVDC Isolation UL Recognised Wide Temperature performance at full 1 Watt load, 40 C to 85 C Increased Power Density
Using Thermocouple Sensors Connecting Grounded and Floating Thermocouples
Connecting Grounded and Floating Thermocouples For best performance, Thermocouple sensors should be floating. This will ensure that no noise currents can flow in the sensor leads and that no common-mode
Research RF Sputtering Packages
Research RF Sputtering Packages Shown with 3" Polaris Adjustable Position Source with Tilt and Shutter 300 or 600 Watt Low Cost Packages for Those With Limited Budgets Desiring Full Capability 13.56 MHz
QUICK REFERENCE DATA. Pilkor components FEATURES APPLICATIONS
MKP RADIAL POTTED CAPACITORS Pitch 10.0/15.0/22.5/27.5 mm QUICK REFERENCE DATA Capacitance range (E6 series) * 0.01μF to 3.3μF Capacitance tolerance ±10 %, ±20 % Rated (AC) voltage 50 to 60 Hz 275 V ~
Safety Relay Units. G9SR family. Diagnosis with LEDs Selectable operating modes and times Increased extension possibilities. industrial.omron.
Safety Relay Units G9SR family Diagnosis with LEDs Selectable operating modes and times Increased extension possibilities industrial.omron.eu/g9sr ... A complete standalone Safety Relay Unit family - G9SR
High-ohmic/high-voltage resistors
FEATURES High pulse loading capability Small size. APPLICATIONS Where high resistance, high stability and high reliability at high voltage are required High humidity environment White goods Power supplies.
To install the I/O Module Board: 1. Remove AC power from decoder.
Installation Data (Catalog Number 2755-NB0, -NB1, -NB2) This document shows how to install the following components in the 2755-DSxx ➀ and 2755-DDxx ➀ Bar Code Decoders. I/O Module Board (Catalog No. 2755-NB1
Adsorption air dryers ADS 1 215
Adsorption air dryers ADS 25 INDUSTRY CUSTOMER SERVICE COMPRESSED AIR AIR INTAKE 20 C 70% UR 760 mm Hg 2 grh 2 O/m 3 AIR PRESSURE 0 bar COOLING SYSTEM 30 C 00% UR 0 bar 2,8 grh 2 O/m 3 A compressor that
film capacitors QUICK REFERENCE DATA Pilkor components FEATURES APPLICATIONS 10 and 15mm 22.5 and 27.5mm
MKP RADIAL POTTED CAPACITORS Pitch 10.0/15.0/22.5/27.5/37.5mm 10 and 15mm 22.5 and 27.5mm QUICK REFERENCE DATA Capacitance range (E6 series) * Capacitance tolerance Rated (AC) voltage 50 to 60 Hz Climatic
FMA 3100/3100ST/3300/3300ST Series Thermal Mass Flow Sensors and Meters
FMA 3100/3100ST/3300/3300ST Series Thermal Mass Flow Sensors and Meters M-4270/0707, pg. 2 of 29 READ THIS MANUAL COMPLETELY BEFORE ATTEMPTING TO CONNECT OR OPERATE YOUR FLOW SENSOR. FAILURE TO DO SO MAY
How To Read A Pipe From A Sensor
Liquid Level Sensor Installation on pipes. Sensing by means electrostatic capacity and is not influenced by the color of the pipe or liquid. Available in 8 to mm dia. and to mm dia. models to enable sensing
understanding medium frequency induction melting furnace and its components
understanding medium frequency induction melting furnace and its components 9 Spruce Street, Jersey City, NJ 07306 USA [email protected] INDUCTION MELTING FURNACE AND ITS COMPONENTS The purpose
DIETRISOL SOLAR WATER HEATING SYSTEMS ENERGY SAVINGS AND ECOLOGICAL BENEFITS SUSTAINED COMFORT SIMPLICITY AND RELIABILITY INNOVATIVE, MODULAR SYSTEMS
DIETRISOL SOLAR WATER HEATING SYSTEMS ENERGY SAVINGS AND ECOLOGICAL BENEFITS SUSTAINED COMFORT SIMPLICITY AND RELIABILITY INNOVATIVE, MODULAR SYSTEMS DIETRISOL SOLAR WATER HEATING SYSTEMS NON-POLLUTING,
Big Data Analytics. for the Exploitation of the CERN Accelerator Complex. Antonio Romero Marín
Big Data Analytics for the Exploitation of the CERN Accelerator Complex Antonio Romero Marín Milan 11/03/2015 Oracle Big Data and Analytics @ Work 1 What is CERN CERN - European Laboratory for Particle
T U R B I N E G A S M E T E R
TURBINE GAS METER TURBINE GAS METER CGT 1 2 3 4 5 6 7 Design and function page 2 General technical data page 3 Measurement outputs page 4 Dimensions and weights page 5 Performance page 7 Pressure loss
CLASS-D VERTICAL DEFLECTION AMPLIFIER FOR TV AND MONITOR APPLICATION OUT CFLY + CFLY - BOOT VREG FEEDCAP FREQ. July 2001 1/8
CLASS-D VERTICAL DEFLECTION AMPLIFIER FOR TV AND MONITOR APPLICATION FEATURES PRELIMINARY DATA HIGH EFFICIENCY POWER AMPLIFIER NO HEATSINK SPLIT SUPPLY INTERNAL FLYBACK GENERATOR OUTPUT CURRENT UP TO.5
THERMAL ANEMOMETRY ELECTRONICS, SOFTWARE AND ACCESSORIES
TSI and TSI logo are registered trademarks of TSI Incorporated. SmartTune is a trademark of TSI Incorporated. THERMAL ANEMOMETRY ELECTRONICS, SOFTWARE AND ACCESSORIES IFA 300 Constant Temperature Anemometry
THE ALIGNMENT STRATEGY FOR THE SPIRAL2 SUPERCONDUCTING LINAC CRYOMODULES
THE ALIGNMENT STRATEGY FOR THE SPIRAL2 SUPERCONDUCTING LINAC CRYOMODULES R. Beunard, GANIL, BP 55027, 14076 CAEN, CEDEX 5, France Abstract The SPIRAL2* project, located at the GANIL** facility in Caen,
HEAT MONITORING AND CONTROL INSTRUMENTS FOR TRANSFORMERS MB 103 TEMPERATURE CONTROL UNIT PT 100 TEMPERATURE SENSOR
HEAT MONITORING AND CONTROL INSTRUMENTS FOR TRANSFORMERS MB 103 TEMPERATURE CONTROL UNIT PT 100 TEMPERATURE SENSOR 2 MB 103 TRANSFORMER TEMPERATURE CONTROL UNIT WITH CONTROL SIGNAL Recent approval of new
10 Project Costs and Schedule
II-367 10 Project Costs and Schedule 10.1 Overview The investment costs given in this chapter include all components necessary for the baseline design of TESLA, as described in chapters 3 to 9. Not included
BSN20. 1. Description. 2. Features. 3. Applications. 4. Pinning information. N-channel enhancement mode field-effect transistor
Rev. 3 26 June 2 Product specification. Description in a plastic package using TrenchMOS technology. Product availability: in SOT23. 2. Features TrenchMOS technology Very fast switching Logic level compatible
R&S ZVA-Z75, -Z110, -Z140, -Z170, -Z220, -Z325, -Z500 Converters Quick Start Guide
R&S ZVA-Z75, -Z110, -Z140, -Z170, -Z220, -Z325, -Z500 Converters Quick Start Guide (=7ÔWÌ) 1307.7039.62 06 Test & Measurement Quick Start Guide This Quick Start Guide describes the following converter
Magnet field- and Radiation Tolerant New Power Supply System PL500F8-12 MARATON
Magnet field- and Radiation Tolerant New Power Supply System PL500F8-12 MARATON Water-cooled Floating Power Supply with Monitoring & remote control to power readout or frontend electronics 24.11.03 LHCb
DS 600. A contact free flux gate based current measurement sensor 600A rms
DS 600 A contact free flux gate based current measurement sensor 600A rms DS 600 is member of the small housing sensor family. The family includes a 200A and a 600A version. 600A rms - 900A peak Maximum
Diagram of components 2. Reducer..3
Index Diagram of components 2 Reducer..3 Rail Filter - Rail Filter 4 - MAP Sensor.4 Injector & Nozzle - Single Injector / Rail Injector...5 - Bi-Fuel Connector...6 - Nozzle...7 ECU...8 Switch 9 Wiring
italtec PRINTED CIRCUITS EQUIPMENT PRINTED CIRCUITS EQUIPMENT Insulator machines Echting machines Special equipment and machines
PRINTED CIRCUITS EQUIPMENT PRINTED CIRCUITS EQUIPMENT Insulator machines Echting machines Special equipment and machines On customer request it is possible to supply: Benches for PCB Oven for PCB Chemicals
SWITCH-MODE POWER SUPPLY CONTROLLER PULSE OUTPUT DC OUTPUT GROUND EXTERNAL FUNCTION SIMULATION ZERO CROSSING INPUT CONTROL EXTERNAL FUNCTION
SWITCH-MODE POWER SUPPLY CONTROLLER. LOW START-UP CURRENT. DIRECT CONTROL OF SWITCHING TRAN- SISTOR. COLLECTOR CURRENT PROPORTIONAL TO BASE-CURRENT INPUT REERSE-GOING LINEAR OERLOAD CHARACTERISTIC CURE
Fundamentals of Mass Flow Control
Fundamentals of Mass Flow Control Critical Terminology and Operation Principles for Gas and Liquid MFCs A mass flow controller (MFC) is a closed-loop device that sets, measures, and controls the flow of
L78MxxAB L78MxxAC. Precision 500 ma regulators. Features. Description
L78MxxAB L78MxxAC Precision 500 ma regulators Features Output current to 0.5 A Output voltages of 5; 6; 8; 9; 10; 12; 15; 18; 24 V Thermal overload protection Short circuit protection Output transition
Current valve. for AC 24 V pulse/pause control of electrical loads up to 30 kw
4 937 DESIO Current valve for AC 24 V pulse/pause control of electrical loads up to 30 kw SEA45.1 Use The current valve is used for the control of electric heating elements in heating, ventilation and
DTC B1423/23 Pressure Sensor Circuit
AIR CONDITIONI AIR CONDITIONI SYSTEM (for Manual Air Conditioning System) 145 DTC B1423/23 Pressure Sensor Circuit DESCRIPTION This DTC is output when the refrigerant pressure is either extremely low (0.19
Contents. Document information
User Manual Contents Document information... 2 Introduction... 3 Warnings... 3 Manufacturer... 3 Description... Installation... Configuration... Troubleshooting...11 Technical data...12 Device Scope: PCB
by knürr CoolTherm Server cabinet technology with outstanding benefits up to 35kW cooling capacity Blade-Server server optimized! www.knuerr.
HIGH DENSITY COOLING SOLUTIONS by knürr CoolTherm Server cabinet technology with outstanding benefits up to 35kW cooling capacity Blade-Server server optimized! optimiert! Setting benchmarks. Being the
TECHNICAL SERVICE DEPARTMENT Technical Service Bulletin 1-800-432-8373. Tankless Electric (RTE) Troubleshooting
Sequence of Operations 1 Power supply and field wiring block 2 Energy Cut Off (ECO) 3 Water flow plunger and cold inlet 4 Magnetic flow switch 5 Water temperature thermistor 6 Control panel and circuit
THE THERMAL FLOW METER, A GAS METER FOR ENERGY MEASUREMENT
THE THERMAL FLOW METER, A GAS METER FOR ENERGY MEASUREMENT Kazuto Otakane, Tokyo Gas Co., Ltd Katsuhito Sakai, Tokyo Gas Co., Ltd Minoru Seto, Tokyo Gas Co., Ltd 1. INTRODUCTION Tokyo Gas s new gas meter,
Vario-Series Accessories
Accessories and spare parts for GMW analogue panel meters and controllers Current Transformers pages 2-9 Shunt Resistors 10-11 Voltage Dividers 12 Power supply for indicator/controllers 13 Blanking Plates
Dyeing Programmer DP - 01
Dyeing Programmer DP - 01 Display and Controls. 1) Display: 16/2 alphanumeric display 2) Temperature range: 0 to 150 degree. 3) Resolution: 1 degree. 4) Accuracy: +/- 1 degree. 5) Temperature control setting:
LENORD. +BAUER... automates motion. PowerDRIVE-Positioning GEL 6109 Compact positioning drive for installation situations with limited space
PowerDRIVE-Positioning GEL 6109 Compact positioning drive for installation situations with limited space LENORD +BAUER... automates motion. Technical information Version 2014-09 General The PowerDRIVE-Positioning
Digital Pressure Measuring Instrument MDR480
Description The digital panel instrument MDR480 is designed to measure, display, and monitor pressures in industrial applications. The instrument is panel mounted with a front frame dimension of 96 mm
HERZ-Thermal Actuators
HERZ-Thermal Actuators Data Sheet 7708-7990, Issue 1011 Dimensions in mm 1 7710 00 1 7710 01 1 7711 18 1 7710 80 1 7710 81 1 7711 80 1 7711 81 1 7990 00 1 7980 00 1 7708 11 1 7708 10 1 7708 23 1 7709 01
Magnet field- and Radiation Tolerant New Power Supply System MARATON - Technical Overview. 22-Sep-03 1
Magnet field- and Radiation Tolerant New Power Supply System MARATON - Technical Overview 22-Sep-03 1 Modular Power Supply System MARATON 2 Versions: To power crates (UEP6..) or generic electronics (PL5..)
Series AMEPR30-AZ up to 2.5A AC-DC / DC-DC LED Driver / Converter
FEATURES: Click on Series name for product info on aimtec.com Models Single output Model Max Output Power (W) 1 AC-DC Constant Current or Constant Over temperature protection Voltage LED Driver Over current
Application Note TMA Series
1W, SIP, Single & Dual Output DC/DC Converters Features SIP Package with Industry Standard Pinout Package Dimension: 19.5 x 10.2 x 6.1 mm (0.77 x 0.4 x 0.24 ) 5V&12V Models 19.5 x 10.2 x 7.1 mm (0.77 x
Ergo-Pro Single Line Solar Station Installation and Operating Instructions
Rp 3/4 Ergo-Pro Single Line Solar Station Installation and Operating Instructions Item No Pump type 677.21.70 WILO ST 15/6 13 2 4 11 Technical Specifications Max. operating pressure: 6 bar Max. operating
Kompressoren. Adsorption Dryer AD
Kompressoren Adsorption Dryer AD Adsorption Drying: why? Modern industries require compressed air that is increasingly filtered with low dew point and condensate. Today, the equipment is more sophisticated
Thermal Storage Unit Using the Triple Point of Hydrogen
Storage Unit Using the Triple Point of Hydrogen I. Charles 1, A. Coynel 1, C. Daniel 2 1 CEA/DSM/INAC/SBT, 38 054 Grenoble Cedex 09, France 2 CNES, Toulouse, 31055 Cedex 4, France ABSTRACT The French space
RVL470. Heating Controller. Building Technologies HVAC Products. Series B
2 522 Heating Controller Series B RVL470 Multifunctional heating controller for use in residential and non-residential buildings; suitable for weather-dependent flow temperature control of heating zones
ITE. Indirect calorifier ITE - 400/500/600/750/1000. Installation, User and Service Manual. Innovation has a name.
ITE Indirect calorifier ITE - 400/500/600/750/1000 0310 117 Installation, User and Service Manual Innovation has a name. Read this manual carefully Warning Read this manual carefully before starting the
Expression of Interest in providing design and manufacturing of detectors for the construction of the European X-ray Free Electron Laser Facility
Wrocław Technology Park 54-424 Wrocław, Expression of Interest in providing design and manufacturing of detectors for the construction of the European X-ray Free Electron Laser Facility Introduction This
STW20NM50 N-CHANNEL 550V @ Tjmax - 0.20Ω - 20ATO-247 MDmesh MOSFET
N-CHANNEL 550V @ Tjmax - 0.20Ω - 20ATO-247 MDmesh MOSFET TYPE V DSS (@Tjmax) R DS(on) I D STW20NM50 550V < 0.25Ω 20 A TYPICAL R DS (on) = 0.20Ω HIGH dv/dt AND AVALANCHE CAPABILITIES 100% AVALANCHE TESTED
Obsolete Product(s) - Obsolete Product(s)
Vertical deflection booster for 3 App TV/monitor applications with 0 V flyback generator Features Figure. Heptawatt package Power amplifier Flyback generator Stand-by control Output current up to 3.0 App
ULN2801A, ULN2802A, ULN2803A, ULN2804A
ULN2801A, ULN2802A, ULN2803A, ULN2804A Eight Darlington array Datasheet production data Features Eight Darlington transistors with common emitters Output current to 500 ma Output voltage to 50 V Integral
ADJUSTABLE VOLTAGE AND CURRENT REGULATOR
L200 ADJUSTABLE VOLTAGE AND CURRENT REGULATOR ADJUSTABLE OUTPUT CURRENT UP TO 2 A (GUARANTEED UP TO Tj = 150 C) ADJUSTABLE OUTPUT VOLTAGE DOWN TO 2.85 V INPUT OVERVOLTAGE PROTECTION (UP TO 60 V, 10 ms)
THE BOILING WATER DISPENSER INSTALLATION & OPERATING INSTRUCTIONS
THE BOILING WATER DISPENSER INSTALLATION & OPERATING INSTRUCTIONS Applied Energy Products Limited, Morley Way, Peterborough, PE2 9JJ, UK Telephone: +44 (0) 844 372 7761 / Fax: +44 (0) 84 372 7762 Website:
ALARMLINE ANALOGUE Linear Heat Detection System
ALARMLINE ANALOGUE Alarmline Analogue sensor cable senses temperature variations by continuously monitoring the resistance of specially doped N.T.C. polymeric insulation. A change in temperature produces
帝 聞 企 業 股 份 有 限 公 司 DEE VAN ENTERPRISE CO., LTD. SP-235864 DSL-20WA 420024 1 Revision: A Date: 2011.10.24 FOR AC-DC LED DRIVER MODEL NO.
CUSTOMER: PART NUMBER: A200 APPROVAL SHEET FOR AC-DC LED DRIVER MODEL NO. DSL-20WA 420024 1 ORDER NO: SP-235864 承 認 書 确 認 后 請 簽 回 一 份 CUSTOMER APPROVED SIGNATURE DEE VAN ENTERPRISE CO., LTD (Head-Quarter)
RISH CON - Hz. Salient Features : Application : Product Features: FREQUENCY TRANSDUCER
Application : The RISH CON - Hz transducer is used for frequency measurement. The output signal is proportional to measured frequency and is either load independent DC Current or load independent DC Voltage.
CONNECTOR AMPLIFIER FOR PROPORTIONAL VALVES (4-20 ma Input Version)
TECHNICAL DATASHEET #TD1102AX CONNECTOR AMPLIFIER FOR PROPORTIONAL VALVES (4-20 ma Input Version) Part Number: Connector Amplifier CAPV-H-4-20MA-x complete with cable CAPV-4C-yM Where: x = current output
Technical Manual Functional Description for S800-RSU-H / S800W-RSU 2CCC413022M0205. 8201 Schaffhausen 1 / 10
ABB ABB Schweiz AG Technical Manual Functional Description for S800-RSU-H / S800W-RSU 2CCC413022M0205 09.04.2014 Page: 8201 Schaffhausen 1 / 10 Please use also the assembly instruction S800-RSU-H Remote
