Multichannel Radiation-Compensated Systems for Temperature and Humidity Monitoring for High Energy Physics Detectors

被引:0
|
作者
Kapic, Amar [1 ,2 ]
Tsirou, Andromachi [3 ]
Verdini, Piero Giorgio [4 ]
Carrara, Sandro [1 ]
机构
[1] Swiss Fed Inst Technol Lausanne EPFL, CH-2002 Neuchatel, Switzerland
[2] European Lab Nucl Res CERN, CH-1211 Geneva, Switzerland
[3] European Lab Nucl Res CERN, EP CMX, CH-1211 Geneva, Switzerland
[4] Ist Nazl Fis Nucl, Sez Pisa, I-56127 Pisa, Italy
关键词
Humidity monitoring; temperature monitoring; radiation; strong magnetic field; sub-zero temperatures; high-energy physics; SENSOR; IMPLEMENTATION;
D O I
10.1109/TCE.2024.3446895
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Monitoring humidity and temperature in silicon-based high-energy physics (HEP) detectors is indispensable but challenging due to space restrictions, radiation, sub-zero temperatures, and strong magnetic fields. This manuscript presents humidity and temperature monitoring systems with radiation compensation suitable for integration in HEP environments. The humidity monitoring system is based on the MK33-W sensor, which exhibits linear output capacitance change with accumulated fluence. The sensor is insensitive to strong magnetic field variations, and its temperature dependence is compensated using the inverse second-degree calibration function. The designed readout circuit is based on commercial off-the-shelf (COTS) components that are not radiation/magnetic field immune and must be placed far away (similar to 100 m) from the sensor. Passive and active shielding methods are applied to minimize the parasitic capacitance introduced by the cables. Furthermore, the readout unit effectively nullifies the sensor internal parasitic resistance. The Pt1000 Resistance Temperature Detector (RTD) is chosen for temperature monitoring due to its high radiation tolerance. The change in resistance of an RTD is equivalent to 2.3 degrees C after accumulating a dose of 4 center dot 10(16) protons/cm(2) which is the highest expected dose in the HL-LHC experiments after 10 years of operation. A cost-effective, embedded-based solution for a massive-temperature readout system that conditions up to 24 RTDs is proposed.
引用
收藏
页码:7535 / 7543
页数:9
相关论文
共 50 条
  • [21] Monolithic pixel detectors for high energy physics
    Snoeys, W.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2013, 731 : 125 - 130
  • [22] Multipurpose detectors for high energy physics, an introduction
    Hartmann, Frank
    Sharma, Archana
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2012, 666 : 1 - 9
  • [23] The role of pixel detectors in high energy physics
    Seiden, A.
    JOURNAL OF INSTRUMENTATION, 2016, 11
  • [24] NEW DETECTORS FOR HIGH-ENERGY PHYSICS
    HOFSTADTER, R
    SCIENCE, 1969, 164 (3887) : 1471 - +
  • [25] Diamond Particle Detectors for High Energy Physics
    Trischuk, William
    NUCLEAR AND PARTICLE PHYSICS PROCEEDINGS, 2016, 273 : 1023 - 1028
  • [26] Photomask specifications for high energy physics detectors
    Pindo, M
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2002, 485 (03): : 362 - 370
  • [27] Detectors for high energy nuclear physics experiments
    Viyogi, YP
    RADIATION PHYSICS AND CHEMISTRY, 1998, 51 (4-6): : 423 - 428
  • [28] Diamond detectors for high energy physics experiments
    Baeni, L.
    Alexopoulos, A.
    Artuso, M.
    Bachmair, F.
    Bartosik, M.
    Beacham, J.
    Beck, H.
    Bellini, V.
    Belyaev, V.
    Bentele, B.
    Berdermann, E.
    Bergonzo, P.
    Bes, A.
    Brom, J-M.
    Bruzzi, M.
    Cerv, M.
    Chiodini, G.
    Chren, D.
    Cindro, V.
    Claus, G.
    Collot, J.
    Cumalat, J.
    Dabrowski, A.
    D'Alessandro, R.
    Dauvergne, D.
    de Boer, W.
    Dorfer, C.
    Duenser, M.
    Eremin, V.
    Eusebi, R.
    Forcolin, G.
    Forneris, J.
    Frais-Koelbl, H.
    Gallin-Martel, L.
    Gallin-Martel, M. L.
    Gan, K. K.
    Gastal, M.
    Giroletti, C.
    Goffe, M.
    Goldstein, J.
    Golubev, A.
    Gorisek, A.
    Grigoriev, E.
    Grosse-Knetter, J.
    Grummer, A.
    Gui, B.
    Guthoff, M.
    Haughton, I.
    Hiti, B.
    Hits, D.
    JOURNAL OF INSTRUMENTATION, 2018, 13
  • [30] Silicon avalanche detectors with negative feedback as detectors for high energy physics
    Bisello, D
    Gotra, Y
    Jejer, V
    Kushpil, V
    Malakhov, N
    Paccagnella, A
    Sadygov, Z
    Stavitsky, I
    Tsyganov, E
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1995, 367 (1-3): : 212 - 214