79 research outputs found

    Effect of non-identity of beam position monitors manufacturing on measurement accuracy of the reference orbit coordinates

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    Effect of geometrical and electrical non-identity of monitors manufacturing on accuracy of measurement of beam position has been studied. It has been shown, that even providing mechanical accuracy of monitor manufacturing of about Β±100Β΅m and deviation of electric capacity of electrodes equal to Β±2%, their operating characteristics near the monitor center may differ from each other more than on Β±300Β΅m.Π’ΠΈΠ²Ρ‡Π΅Π½ΠΎ Π²ΠΏΠ»ΠΈΠ² Π³Π΅ΠΎΠΌΠ΅Ρ‚Ρ€ΠΈΡ‡Π½ΠΎΡ— Ρ‚Π° Π΅Π»Π΅ΠΊΡ‚Ρ€ΠΈΡ‡Π½ΠΎΡ— нСідСнтичності виготовлСння Π΄Π°Ρ‚Ρ‡ΠΈΠΊΡ–Π² Π½Π° Ρ‚ΠΎΡ‡Π½Ρ–ΡΡ‚ΡŒ Π²ΠΈΠΌΡ–Ρ€ΡŽΠ²Π°Π½Π½Ρ полоТСння ΠΏΡƒΡ‡ΠΊΠ°. Показано, Ρ‰ΠΎ Π½Π°Π²Ρ–Ρ‚ΡŒ ΠΏΡ€ΠΈ Π·Π°Π±Π΅Π·ΠΏΠ΅Ρ‡Π΅Π½Π½Ρ– ΠΌΠ΅Ρ…Π°Π½Ρ–Ρ‡Π½ΠΎΡ— точності виготовлСння Π΄Π°Ρ‚Ρ‡ΠΈΠΊΡ–Π² Β±100 ΠΌΠΊΠΌ Ρ‚Π° Ρ€ΠΎΠ·ΠΊΠΈΠ΄Ρƒ Π΅Π»Π΅ΠΊΡ‚Ρ€ΠΈΡ‡Π½ΠΎΡ— ємкості Π΅Π»Π΅ΠΊΡ‚Ρ€ΠΎΠ΄Ρ–Π² Β±2% Ρ—Ρ… Ρ€ΠΎΠ±ΠΎΡ‡Ρ– характСристики ΠΏΠΎΠ±Π»ΠΈΠ·Ρƒ Ρ†Π΅Π½Ρ‚Ρ€Ρƒ ΠΌΠΎΠΆΡƒΡ‚ΡŒ Π²Ρ–Π΄Ρ€Ρ–Π·Π½ΡΡ‚ΠΈΡΡŒ ΠΎΠ΄ΠΈΠ½ Π²Ρ–Π΄ ΠΎΠ΄Π½ΠΎΠ³ΠΎ Π±Ρ–Π»ΡŒΡˆΠ΅ Π½Ρ–ΠΆ Π½Π° Β±300 ΠΌΠΊΠΌ.Π˜Π·ΡƒΡ‡Π΅Π½ΠΎ влияниС гСомСтричСской ΠΈ элСктричСской нСидСнтичности изготовлСния Π΄Π°Ρ‚Ρ‡ΠΈΠΊΠΎΠ² Π½Π° Ρ‚ΠΎΡ‡Π½ΠΎΡΡ‚ΡŒ измСрСния полоТСния ΠΏΡƒΡ‡ΠΊΠ°. Показано, Ρ‡Ρ‚ΠΎ Π΄Π°ΠΆΠ΅ ΠΏΡ€ΠΈ обСспСчСнии мСханичСской точности изготовлСния Π΄Π°Ρ‚Ρ‡ΠΈΠΊΠΎΠ² Β±100 ΠΌΠΊΠΌ ΠΈ разброса элСктричСской Смкости элСктродов Β±2% ΠΈΡ… Ρ€Π°Π±ΠΎΡ‡ΠΈΠ΅ характСристики Π²Π±Π»ΠΈΠ·ΠΈ Ρ†Π΅Π½Ρ‚Ρ€Π° ΠΌΠΎΠ³ΡƒΡ‚ ΠΎΡ‚Π»ΠΈΡ‡Π°Ρ‚ΡŒΡΡ Π΄Ρ€ΡƒΠ³ ΠΎΡ‚ Π΄Ρ€ΡƒΠ³Π° Π±ΠΎΠ»Π΅Π΅ Ρ‡Π΅ΠΌ Π½Π° Β±300 ΠΌΠΊΠΌ

    Operating characteristics of the electrostatic monitors of elliptic, rectangular and circular cross-section

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    The various methods of approximation of operating characteristics of electrostatic beam position monitors were investigated. The new method that allows on order to increase the precision of approximation of horizontal coordinate is found. The simulation of measurement of frequencies of betatron oscillations is carried out.ДослідТСно Ρ€Ρ–Π·Π½Ρ– ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΈ апроксимації Ρ€ΠΎΠ±ΠΎΡ‡ΠΈΡ… характСристик СлСктростатичних Π΄Π°Ρ‚Ρ‡ΠΈΠΊΡ–Π² полоТСння ΠΏΡƒΡ‡ΠΊΠ°. Π—Π½Π°ΠΉΠ΄Π΅Π½ΠΎ Π½ΠΎΠ²ΠΈΠΉ ΠΌΠ΅Ρ‚ΠΎΠ΄, Ρ‰ΠΎ дозволяє Π½Π° порядок ΠΏΡ–Π΄Π²ΠΈΡ‰ΠΈΡ‚ΠΈ Ρ‚ΠΎΡ‡Π½Ρ–ΡΡ‚ΡŒ апроксимації Π³ΠΎΡ€ΠΈΠ·ΠΎΠ½Ρ‚Π°Π»ΡŒΠ½ΠΎΡ— ΠΊΠΎΠΎΡ€Π΄ΠΈΠ½Π°Ρ‚ΠΈ. Π’ΠΈΠΊΠΎΠ½Π°Π½ΠΎ модСлювання Π²ΠΈΠΌΡ–Ρ€ΡŽΠ²Π°Π½Π½Ρ частот Π±Π΅Ρ‚Π°Ρ‚Ρ€ΠΎΠ½Π½ΠΈΡ… коливань.Π˜ΡΡΠ»Π΅Π΄ΠΎΠ²Π°Π½Ρ‹ Ρ€Π°Π·Π»ΠΈΡ‡Π½Ρ‹Π΅ ΠΌΠ΅Ρ‚ΠΎΠ΄Ρ‹ аппроксимации Ρ€Π°Π±ΠΎΡ‡ΠΈΡ… характСристик элСктростатичСских Π΄Π°Ρ‚Ρ‡ΠΈΠΊΠΎΠ² полоТСния ΠΏΡƒΡ‡ΠΊΠ°. НайдСн Π½ΠΎΠ²Ρ‹ΠΉ ΠΌΠ΅Ρ‚ΠΎΠ΄, ΠΏΠΎΠ·Π²ΠΎΠ»ΡΡŽΡ‰ΠΈΠΉ Π½Π° порядок ΠΏΠΎΠ²Ρ‹ΡΠΈΡ‚ΡŒ Ρ‚ΠΎΡ‡Π½ΠΎΡΡ‚ΡŒ аппроксимации Π³ΠΎΡ€ΠΈ- Π·ΠΎΠ½Ρ‚Π°Π»ΡŒΠ½ΠΎΠΉ ΠΊΠΎΠΎΡ€Π΄ΠΈΠ½Π°Ρ‚Ρ‹. Π’Ρ‹ΠΏΠΎΠ»Π½Π΅Π½ΠΎ ΠΌΠΎΠ΄Π΅Π»ΠΈΡ€ΠΎΠ²Π°Π½ΠΈΠ΅ измСрСния частот Π±Π΅Ρ‚Π°Ρ‚Ρ€ΠΎΠ½Π½Ρ‹Ρ… ΠΊΠΎΠ»Π΅Π±Π°Π½ΠΈΠΉ

    Approximations of operating characteristics of the elliptic cross-section beam position monitors

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    In the specialized storage rings it is necessary to measure a position of a beam with an absolute accuracy up to 10 Β΅m that corresponds to a relative accuracy about 10⁻³ for the central region of a monitor. The position of a beam is usually measured with the help of electrostatic button monitors. Operating characteristics of a beam position monitor are individual for each copy, are measured on precision benches and approximated by analytical functions. In the paper the various methods of approximation of operating characteristics are considered and the variant allowing one to reduce an error of approximation in tens times in comparison with a traditional method is found.Π’ спСціалізованих Π½Π°Π³Ρ€ΠΎΠΌΠ°Π΄ΠΆΡƒΠ²Π°Ρ‡Π°Ρ… Π½Π΅ΠΎΠ±Ρ…Ρ–Π΄Π½ΠΎ виміряти полоТСння ΠΏΡƒΡ‡ΠΊΡƒ Π· Π°Π±ΡΠΎΠ»ΡŽΡ‚Π½ΠΎΡŽ Ρ‚ΠΎΡ‡Π½Ρ–ΡΡ‚ΡŽ Π΄ΠΎ 10 ΠΌΠΊΠΌ, Ρ‰ΠΎ Π²Ρ–Π΄ΠΏΠΎΠ²Ρ–Π΄Π°Ρ” відносній точності біля 10⁻³ для Ρ†Π΅Π½Ρ‚Ρ€Π°Π»ΡŒΠ½ΠΎΡ— області Π΄Π°Ρ‚Ρ‡ΠΈΠΊΠ°. ПолоТСння ΠΏΡƒΡ‡ΠΊΡƒ Π²ΠΈΠΌΡ–Ρ€ΡŽΡŽΡ‚ΡŒΡΡ Π·Π° допомогою СлСктростатичних ΠΊΠ½ΠΎΠΏΠΊΠΎΠ²ΠΈΡ… Π΄Π°Ρ‚Ρ‡ΠΈΠΊΡ–Π². Π ΠΎΠ±ΠΎΡ‡Ρ– характСристики Π΄Π°Ρ‚Ρ‡ΠΈΠΊΡ–Π² полоТСння ΠΏΡƒΡ‡ΠΊΡƒ Ρ” Ρ–Π½Π΄ΠΈΠ²Ρ–Π΄ΡƒΠ°Π»ΡŒΠ½ΠΈΠΌΠΈ для ΠΊΠΎΠΆΠ½ΠΎΠ³ΠΎ СкзСмпляру, ΠΎΠ΄Π΅Ρ€ΠΆΡƒΡŽΡ‚ΡŒΡΡ Π½Π° ΠΏΡ€Π΅Ρ†ΠΈΠ·Ρ–ΠΉΠ½ΠΈΡ… стСндах Ρ‚Π° Π°ΠΏΠΏΡ€ΠΎΠΊΡΠΈΠΌΡƒΡŽΡ‚ΡŒΡΡ Π°Π½Π°Π»Ρ–Ρ‚ΠΈΡ‡Π½ΠΈΠΌΠΈ функціями. Π’ Ρ€ΠΎΠ±ΠΎΡ‚Ρ– розглянуто Ρ€Ρ–Π·Π½Ρ– ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΈ апроксимації Ρ€ΠΎΠ±ΠΎΡ‡ΠΈΡ… характСристик Ρ‚Π° Π·Π½Π°ΠΉΠ΄Π΅Π½ΠΎ Π²Π°Ρ€Ρ–Π°Π½Ρ‚, Ρ‰ΠΎ дозволяє Π·ΠΌΠ΅Π½ΡˆΠΈΡ‚ΠΈ ΠΏΠΎΡ…ΠΈΠ±ΠΊΡƒ апроксимації Π² дСсятки Ρ€Π°Π·Ρ–Π² Π² зрівнянні с Ρ‚Ρ€Π°Π΄ΠΈΡ†Ρ–ΠΉΠ½ΠΈΠΌ ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΎΠΌ.Π’ спСциализированных накопитСлях Π½Π΅ΠΎΠ±Ρ…ΠΎΠ΄ΠΈΠΌΠΎ ΠΈΠ·ΠΌΠ΅Ρ€ΡΡ‚ΡŒ ΠΏΠΎΠ»ΠΎΠΆΠ΅Π½ΠΈΠ΅ ΠΏΡƒΡ‡ΠΊΠ° с Π°Π±ΡΠΎΠ»ΡŽΡ‚Π½ΠΎΠΉ Ρ‚ΠΎΡ‡Π½ΠΎΡΡ‚ΡŒΡŽ Π΄ΠΎ 10 ΠΌΠΊΠΌ, Ρ‡Ρ‚ΠΎ соотвСтствуСт ΠΎΡ‚Π½ΠΎΡΠΈΡ‚Π΅Π»ΡŒΠ½ΠΎΠΉ точности ΠΎΠΊΠΎΠ»ΠΎ 10⁻³ для Ρ†Π΅Π½Ρ‚Ρ€Π°Π»ΡŒΠ½ΠΎΠΉ области Π΄Π°Ρ‚Ρ‡ΠΈΠΊΠ°. ПолоТСниС ΠΏΡƒΡ‡ΠΊΠ° ΠΎΠ±Ρ‹Ρ‡Π½ΠΎ измСряСтся с ΠΏΠΎΠΌΠΎΡ‰ΡŒΡŽ элСктростатичСских ΠΊΠ½ΠΎΠΏΠΎΡ‡Π½Ρ‹Ρ… Π΄Π°Ρ‚Ρ‡ΠΈΠΊΠΎΠ². Π Π°Π±ΠΎΡ‡ΠΈΠ΅ характСристики Π΄Π°Ρ‚Ρ‡ΠΈΠΊΠΎΠ² полоТСния ΠΏΡƒΡ‡ΠΊΠ° ΡΠ²Π»ΡΡŽΡ‚ΡΡ ΠΈΠ½Π΄ΠΈΠ²ΠΈΠ΄ΡƒΠ°Π»ΡŒΠ½Ρ‹ΠΌΠΈ для ΠΊΠ°ΠΆΠ΄ΠΎΠ³ΠΎ экзСмпляра, ΡΠ½ΠΈΠΌΠ°ΡŽΡ‚ΡΡ Π½Π° ΠΏΡ€Π΅Ρ†ΠΈΠ·ΠΈΠΎΠ½Π½Ρ‹Ρ… стСндах ΠΈ Π°ΠΏΠΏΡ€ΠΎΠΊΡΠΈΠΌΠΈΡ€ΡƒΡŽΡ‚ΡΡ аналитичСскими функциями. Π’ Ρ€Π°Π±ΠΎΡ‚Π΅ рассмотрСны Ρ€Π°Π·Π»ΠΈΡ‡Π½Ρ‹Π΅ ΠΌΠ΅Ρ‚ΠΎΠ΄Ρ‹ аппроксимации Ρ€Π°Π±ΠΎΡ‡ΠΈΡ… характСристик ΠΈ Π½Π°ΠΉΠ΄Π΅Π½ Π²Π°Ρ€ΠΈΠ°Π½Ρ‚, ΠΏΠΎΠ·Π²ΠΎΠ»ΡΡŽΡ‰ΠΈΠΉ ΡƒΠΌΠ΅Π½ΡŒΡˆΠΈΡ‚ΡŒ ΠΏΠΎΠ³Ρ€Π΅ΡˆΠ½ΠΎΡΡ‚ΡŒ аппроксимации Π² дСсятки Ρ€Π°Π· ΠΏΠΎ ΡΡ€Π°Π²Π½Π΅Π½ΠΈΡŽ с Ρ‚Ρ€Π°Π΄ΠΈΡ†ΠΈΠΎΠ½Π½Ρ‹ΠΌ ΠΌΠ΅Ρ‚ΠΎΠ΄ΠΎΠΌ

    Study on the process of Fe (III) oxide fluorination

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    The article deals with a fundamentally new fluoride technology for obtaining fluoride materials, provides data on the kinetics of the process of fluorination of Fe oxide with fluorine, fluoride and ammonium bifluoride. The physical and chemical properties of obtained fluorides are shown: a study of the elemental composition, grain-size composition using the method of scanning electron microscopy and laser diffraction

    ΠžΡ†Π΅Π½ΠΊΠ° свойств ΠΊΠΎΡΡ‚Π½ΠΎΠ·Π°ΠΌΠ΅Ρ‰Π°ΡŽΡ‰ΠΈΡ… ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠ² Π½Π° основС ΠΏΠΎΠ»ΠΈΡΡ‚ΠΈΠ»Π΅Π½Π³Π»ΠΈΠΊΠΎΠ»ΡŒ Π΄ΠΈΠ°ΠΊΡ€ΠΈΠ»Π°Ρ‚Π° ΠΈ ΠΎΠΊΡ‚Π°ΠΊΠ°Π»ΡŒΡ†ΠΈΠ΅Π²ΠΎΠ³ΠΎ фосфата Π½Π° ΠΌΠΎΠ΄Π΅Π»ΠΈ ΠΌΠΎΠ½ΠΎΠΊΠΎΡ€Ρ‚ΠΈΠΊΠ°Π»ΡŒΠ½ΠΎΠ³ΠΎ Π΄ΠΈΠ°Ρ„ΠΈΠ·Π°Ρ€Π½ΠΎΠ³ΠΎ Π΄Π΅Ρ„Π΅ΠΊΡ‚Π° Π±Π΅Π΄Ρ€Π΅Π½Π½ΠΎΠΉ кости крысы: ΡΠΊΡΠΏΠ΅Ρ€ΠΈΠΌΠ΅Π½Ρ‚Π°Π»ΡŒΠ½ΠΎΠ΅ исслСдованиС

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    Background. The problem of bone defects replacement is relevant nowadays, that is why many scientists create new synthetic bone substitutes, but the ideal material has not been found so far. The aims of the study: 1) to determine the suitability of the monocortical defect model in the rat femur diaphysis with additional prophylactic reinforcement with a bone plate for assessing the biological properties of implanted materials using the commercially available ChronOS material as an example; 2) to assess of the osteoconductive properties of composite materials based on poly(ethylene glycol)diacrylate and octacalcium phosphate with architecture Kelvin and gyroid types on the developed model. Methods. A prospective study, level of evidence II. A monocortical defect of the rat femoral diaphysis (length 7 mm) was produced under anaesthesia in aseptic conditions and fixed with a polyetheretherketone plate and six titanium screws. In the control group, the defect was left empty. In other groups, blocks of one of three materials were implanted сhronOS and composites of poly(ethylene glycol)diacrylate and octacalcium phosphate with 3D-printed Kelvin and gyroid architectures. After 3 and 6 weeks, the rats were sacrificed, and histological examination of the defect zone was performed. The amount of newly formed bone tissue was histometricly assessed, followed by statistical processing of the results. Results. All rats have reached the planned endpoint, and there were no infectious complications or loss of fixation. Histological examination of the defect zone revealed minimal bone growth in the Control group, rather slow bone formation in the Gyroid group, and statistically significantly more pronounced bone formation in the pores of the materials in the Kelvin and Chronos groups. Conclusions. Bone defect in this model was not spontaneously filled with bone tissue and allowed us to study the biological properties of bone substitutes (the ability to biodegrade and osteoconductive properties). The osteoconductive properties of a composite material based on poly(ethylene glycol)diacrylate and octacalcium phosphate with a Kelvin architecture are higher than with a gyroid architecture and are comparable to that of the сhronOS.ΠΠΊΡ‚ΡƒΠ°Π»ΡŒΠ½ΠΎΡΡ‚ΡŒ. ΠŸΡ€ΠΎΠ±Π»Π΅ΠΌΠ° замСщСния Π΄Π΅Ρ„Π΅ΠΊΡ‚ΠΎΠ² кости Π°ΠΊΡ‚ΡƒΠ°Π»ΡŒΠ½Π° Π² настоящСС врСмя, постоянно вСдутся поиски Π½ΠΎΠ²Ρ‹Ρ… синтСтичСских ΠΊΠΎΡΡ‚Π½ΠΎΠ·Π°ΠΌΠ΅Ρ‰Π°ΡŽΡ‰ΠΈΡ… ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠ², ΠΎΠ΄Π½Π°ΠΊΠΎ ΠΈΠ΄Π΅Π°Π»ΡŒΠ½Ρ‹ΠΉ ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π» Π½Π΅ Π½Π°ΠΉΠ΄Π΅Π½ Π΄ΠΎ сих ΠΏΠΎΡ€. Π¦Π΅Π»ΠΈ исслСдования: 1) ΠΎΠΏΡ€Π΅Π΄Π΅Π»Π΅Π½ΠΈΠ΅ пригодности ΠΌΠΎΠ΄Π΅Π»ΠΈ ΠΌΠΎΠ½ΠΎΠΊΠΎΡ€Ρ‚ΠΈΠΊΠ°Π»ΡŒΠ½ΠΎΠ³ΠΎ Π΄Π΅Ρ„Π΅ΠΊΡ‚Π° Π΄ΠΈΠ°Ρ„ΠΈΠ·Π° Π±Π΅Π΄Ρ€Π΅Π½Π½ΠΎΠΉ кости крысы с Π΄ΠΎΠΏΠΎΠ»Π½ΠΈΡ‚Π΅Π»ΡŒΠ½Ρ‹ΠΌ профилактичСским Π°Ρ€ΠΌΠΈΡ€ΠΎΠ²Π°Π½ΠΈΠ΅ΠΌ ΠΏΡ€ΠΈ ΠΏΠΎΠΌΠΎΡ‰ΠΈ накостной пластины для ΠΎΡ†Π΅Π½ΠΊΠΈ биологичСских свойств ΠΈΠΌΠΏΠ»Π°Π½Ρ‚ΠΈΡ€ΡƒΠ΅ΠΌΡ‹Ρ… ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠ² Π½Π° ΠΏΡ€ΠΈΠΌΠ΅Ρ€Π΅ коммСрчСски доступного ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»Π° сhronOS; 2) ΠΎΡ†Π΅Π½ΠΊΠ° остСокондуктивных свойств ΠΊΠΎΠΌΠΏΠΎΠ·ΠΈΡ‚Π½Ρ‹Ρ… ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠ² Π½Π° основС ΠΏΠΎΠ»ΠΈΡΡ‚ΠΈΠ»Π΅Π½Π³Π»ΠΈΠΊΠΎΠ»ΡŒ Π΄ΠΈΠ°ΠΊΡ€ΠΈΠ»Π°Ρ‚Π° ΠΈ ΠΎΠΊΡ‚Π°ΠΊΠ°Π»ΡŒΡ†ΠΈΠ΅Π²ΠΎΠ³ΠΎ фосфата с Π°Ρ€Ρ…ΠΈΡ‚Π΅ΠΊΡ‚ΡƒΡ€ΠΎΠΉ КСльвина ΠΈ Ρ‚ΠΈΠΏΠ° Π³ΠΈΡ€ΠΎΠΈΠ΄ Π½Π° Ρ€Π°Π·Ρ€Π°Π±ΠΎΡ‚Π°Π½Π½ΠΎΠΉ ΠΌΠΎΠ΄Π΅Π»ΠΈ. ΠœΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π» ΠΈ ΠΌΠ΅Ρ‚ΠΎΠ΄Ρ‹. ΠœΠΎΠ½ΠΎΠΊΠΎΡ€Ρ‚ΠΈΠΊΠ°Π»ΡŒΠ½Ρ‹ΠΉ Π΄Π΅Ρ„Π΅ΠΊΡ‚ Π΄ΠΈΠ°Ρ„ΠΈΠ·Π° Π±Π΅Π΄Ρ€Π΅Π½Π½ΠΎΠΉ кости крыс Ρ€Π°Π·ΠΌΠ΅Ρ€ΠΎΠΌ 7 ΠΌΠΌ Π² Π΄Π»ΠΈΠ½Ρƒ ΠΏΡ€ΠΎΠΈΠ·Π²ΠΎΠ΄ΠΈΠ»ΠΈ ΠΏΠΎΠ΄ Π½Π°Ρ€ΠΊΠΎΠ·ΠΎΠΌ Π² асСптичСских условиях ΠΎΠΏΠ΅Ρ€Π°Ρ†ΠΈΠΎΠ½Π½ΠΎΠΉ ΠΈ фиксировали полиэфирэфиркСтоновой пластиной ΠΈ ΡˆΠ΅ΡΡ‚ΡŒΡŽ Ρ‚ΠΈΡ‚Π°Π½ΠΎΠ²Ρ‹ΠΌΠΈ Π²ΠΈΠ½Ρ‚Π°ΠΌΠΈ. ΠšΡ€Ρ‹Ρ распрСдСляли случайным ΠΎΠ±Ρ€Π°Π·ΠΎΠΌ Π½Π° Ρ‡Π΅Ρ‚Ρ‹Ρ€Π΅ Π³Ρ€ΡƒΠΏΠΏΡ‹ ΠΏΠΎ 12 особСй Π² ΠΊΠ°ΠΆΠ΄ΠΎΠΉ. Π’ Π³Ρ€ΡƒΠΏΠΏΠ΅ ΠšΠΎΠ½Ρ‚Ρ€ΠΎΠ»ΡŒ Ρƒ ΠΆΠΈΠ²ΠΎΡ‚Π½Ρ‹Ρ… костный Π΄Π΅Ρ„Π΅ΠΊΡ‚ Π½Π΅ заполняли. Π£ ΠΆΠΈΠ²ΠΎΡ‚Π½Ρ‹Ρ… Π² Π³Ρ€ΡƒΠΏΠΏΠ΅ Π₯ронос Π΄Π΅Ρ„Π΅ΠΊΡ‚ заполняли ΠΏΠΎΠ΄Π³ΠΎΡ‚ΠΎΠ²Π»Π΅Π½Π½Ρ‹ΠΌ ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠΌ chronOS Π² Π²ΠΈΠ΄Π΅ полуцилиндричСского Π±Π»ΠΎΠΊΠ°, Π² Π³Ρ€ΡƒΠΏΠΏΠ΅ КСльвин исслСдуСмым ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠΌ с Π°Ρ€Ρ…ΠΈΡ‚Π΅ΠΊΡ‚ΡƒΡ€ΠΎΠΉ КСльвина, Π² Π³Ρ€ΡƒΠΏΠΏΠ΅ Π“ΠΈΡ€ΠΎΠΈΠ΄ исслСдуСмым ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠΌ с Π°Ρ€Ρ…ΠΈΡ‚Π΅ΠΊΡ‚ΡƒΡ€ΠΎΠΉ Ρ‚ΠΈΠΏΠ° Π³ΠΈΡ€ΠΎΠΈΠ΄. Π§Π΅Ρ€Π΅Π· 3 ΠΈ 6 Π½Π΅Π΄. крыс Π²Ρ‹Π²ΠΎΠ΄ΠΈΠ»ΠΈ ΠΈΠ· экспСримСнта ΠΈ ΠΏΡ€ΠΎΠΈΠ·Π²ΠΎΠ΄ΠΈΠ»ΠΈ гистологичСскоС исслСдованиС Π·ΠΎΠ½Ρ‹ Π΄Π΅Ρ„Π΅ΠΊΡ‚Π°. Π—Π°Ρ‚Π΅ΠΌ выполняли Π³ΠΈΡΡ‚ΠΎΠΌΠ΅Ρ‚Ρ€ΠΈΡ‡Π΅ΡΠΊΡƒΡŽ ΠΎΡ†Π΅Π½ΠΊΡƒ количСства Π½ΠΎΠ²ΠΎΠΎΠ±Ρ€Π°Π·ΠΎΠ²Π°Π½Π½ΠΎΠΉ костной Ρ‚ΠΊΠ°Π½ΠΈ с ΠΏΠΎΡΠ»Π΅Π΄ΡƒΡŽΡ‰Π΅ΠΉ статистичСской ΠΎΠ±Ρ€Π°Π±ΠΎΡ‚ΠΊΠΎΠΉ Ρ€Π΅Π·ΡƒΠ»ΡŒΡ‚Π°Ρ‚ΠΎΠ². Π Π΅Π·ΡƒΠ»ΡŒΡ‚Π°Ρ‚Ρ‹. Π’ Ρ…ΠΎΠ΄Π΅ экспСримСнта всС ΠΆΠΈΠ²ΠΎΡ‚Π½Ρ‹Π΅ достигли ΠΏΠ»Π°Π½ΠΈΡ€ΡƒΠ΅ΠΌΠΎΠΉ ΠΊΠΎΠ½Π΅Ρ‡Π½ΠΎΠΉ Ρ‚ΠΎΡ‡ΠΊΠΈ, ΠΈΠ½Ρ„Π΅ΠΊΡ†ΠΈΠΎΠ½Π½Ρ‹Π΅ ослоТнСния ΠΈ потСря фиксации зафиксированы Π½Π΅ Π±Ρ‹Π»ΠΈ. ΠŸΡ€ΠΈ гистологичСском исслСдовании Π·ΠΎΠ½Ρ‹ Π΄Π΅Ρ„Π΅ΠΊΡ‚Π° выявлСн ΠΌΠΈΠ½ΠΈΠΌΠ°Π»ΡŒΠ½Ρ‹ΠΉ рост кости Π² Π³Ρ€ΡƒΠΏΠΏΠ΅ ΠšΠΎΠ½Ρ‚Ρ€ΠΎΠ»ΡŒ, достаточно ΠΌΠ΅Π΄Π»Π΅Π½Π½ΠΎΠ΅ ΠΎΠ±Ρ€Π°Π·ΠΎΠ²Π°Π½ΠΈΠ΅ кости Π² ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»Π΅ Π³Ρ€ΡƒΠΏΠΏΡ‹ Π“ΠΈΡ€ΠΎΠΈΠ΄ ΠΈ статистичСски Π·Π½Π°Ρ‡ΠΈΠΌΠΎ Π±ΠΎΠ»Π΅Π΅ Π²Ρ‹Ρ€Π°ΠΆΠ΅Π½Π½ΠΎΠ΅ ΠΎΠ±Ρ€Π°Π·ΠΎΠ²Π°Π½ΠΈΠ΅ костной Ρ‚ΠΊΠ°Π½ΠΈ Π² ΠΏΠΎΡ€Π°Ρ… ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠ² Π² Π³Ρ€ΡƒΠΏΠΏΠ°Ρ… КСльвин ΠΈ Π₯ронос. Π—Π°ΠΊΠ»ΡŽΡ‡Π΅Π½ΠΈΠ΅. Разработанная модСль Π΄Π΅Ρ„Π΅ΠΊΡ‚Π° кости спонтанно Π½Π΅ заполняСтся костной Ρ‚ΠΊΠ°Π½ΡŒΡŽ ΠΈ позволяСт ΠΏΡ€ΠΎΠ²ΠΎΠ΄ΠΈΡ‚ΡŒ ΠΈΠ·ΡƒΡ‡Π΅Π½ΠΈΠ΅ биологичСских свойств костнопластичСских ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»ΠΎΠ² (ΡΠΏΠΎΡΠΎΠ±Π½ΠΎΡΡ‚ΡŒ ΠΊ Π±ΠΈΠΎΠ΄Π΅Π³Ρ€Π°Π΄Π°Ρ†ΠΈΠΈ ΠΈ остСокондуктивныС свойства). ΠžΡΡ‚Π΅ΠΎΠΊΠΎΠ½Π΄ΡƒΠΊΡ‚ΠΈΠ²Π½Ρ‹Π΅ свойства ΠΊΠΎΠΌΠΏΠΎΠ·ΠΈΡ‚Π½ΠΎΠ³ΠΎ ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»Π° Π½Π° основС ΠΏΠΎΠ»ΠΈΡΡ‚ΠΈΠ»Π΅Π½Π³Π»ΠΈΠΊΠΎΠ»ΡŒ Π΄ΠΈΠ°ΠΊΡ€ΠΈΠ»Π°Ρ‚Π° ΠΈ ΠΎΠΊΡ‚Π°ΠΊΠ°Π»ΡŒΡ†ΠΈΠ΅Π²ΠΎΠ³ΠΎ фосфата с Π°Ρ€Ρ…ΠΈΡ‚Π΅ΠΊΡ‚ΡƒΡ€ΠΎΠΉ КСльвина Π²Ρ‹ΡˆΠ΅, Ρ‡Π΅ΠΌ с Π°Ρ€Ρ…ΠΈΡ‚Π΅ΠΊΡ‚ΡƒΡ€ΠΎΠΉ Ρ‚ΠΈΠΏΠ° Π³ΠΈΡ€ΠΎΠΈΠ΄, ΠΈ сопоставимы с Ρ‚Π°ΠΊΠΎΠ²Ρ‹ΠΌΠΈ Ρƒ ΠΌΠ°Ρ‚Π΅Ρ€ΠΈΠ°Π»Π° сhronOS

    The Kharkov X-ray Generator Facility NESTOR

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    WEPWA060 - ISBN 978-3-95450-122-9International audienceThe last few years the sources of the X-rays NESTOR based on a storage ring with low beam energy and Compton scattering of intense laser beam are under design and development in NSC KIPT. The main task of the project is to develop compact intense X-ray generator on the base of relatively cheap accelerator equipment and up-to-date laser technologies. The paper is devoted to description of the last results on construction and commissioning of the facility

    Using software support for quantum superposition effects to speed up the solution of the targeted enumeration issue in biometric data when extracting knowledge from a neural network

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    Background. The continuum/discrete processing of information by natural neurons and artificial neurons is considered. The purpose of the work is to demonstrate the possibilities of unlimitedly long-term support of the effects of quantum superposition by artificial neurons. Materials and methods. As an example, a network of 256 artificial binary neurons (perceptrons) is used. When simplifying the computational complexity of entropy estimates, the state standard GOST R 52633.3–2011 is used. When duplicating data, GOST R 52633.2–2010 is used. The inversion of matrices of neural network functionals with dimensions of 416Γ—256 is performed iteratively according to the criterion of reducing the entropy of the output codes of the neural network. Results and conclusions. It is shown that the support of the effects of quantum superposition with a duration of about 20 minutes on a conventional computer makes it possible to solve the inverse problem of neural network biometrics. It is possible to extract knowledge from the neural network with a confidence probability of 0.97 about the cryptographic key of the user β€œSvoy” and about the parameters of the biometric image of the user β€œSvoy”

    Small Layer-wound ReBCO Solenoids

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    AbstractThe development of the next generation of high field superconducting magnet systems demands studies of new technological approach for its internal sections. Several small HTS solenoids (21mm inner diameter, 32 layers) were fabricated by layer-winding technique from SuperPower type SCS-4050 ReBCO wire insulated by polyimide wrapping. Different designs of external and internal joints also were also tested. The highest field generated by HTS coil was 2.4 T in a 10 T background field (total field was 12.4 T) at 4.2K and achieved current density in the coil was 498 A/mm2. The results will be used in development of HTS inner sections for 25 T superconducting magnet
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