Design of the small-sized nanosecond pulse-periodic electron accelerator

The design features of high-voltage electron nanosecond accelerators based on the Tesla transformer are considered. The construction of the pulse-periodic accelerator with an energy of ~ 300 keV , a current of ~ 10 kA and a pulse duration of ~ 50 ns is given. Рассмотрены особенности конструкций высо...

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Published in:Вопросы атомной науки и техники
Date:2014
Main Authors: Yuferov, V.B., Buravilov, I.V., Zhivankov, K.I., Pakhomov, A.Y., Nikulshina, V.V.
Format: Article
Language:English
Published: Національний науковий центр «Харківський фізико-технічний інститут» НАН України 2014
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Online Access:https://nasplib.isofts.kiev.ua/handle/123456789/80501
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Cite this:Design of the small-sized nanosecond pulse-periodic electron accelerator / V.B. Yuferov, I.V. Buravilov, K.I. Zhivankov, A.Y. Pakhomov, V.V. Nikulshina // Вопросы атомной науки и техники. — 2014. — № 5. — С. 150-152. — Бібліогр.: 4 назв. — англ.

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Digital Library of Periodicals of National Academy of Sciences of Ukraine
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author Yuferov, V.B.
Buravilov, I.V.
Zhivankov, K.I.
Pakhomov, A.Y.
Nikulshina, V.V.
author_facet Yuferov, V.B.
Buravilov, I.V.
Zhivankov, K.I.
Pakhomov, A.Y.
Nikulshina, V.V.
citation_txt Design of the small-sized nanosecond pulse-periodic electron accelerator / V.B. Yuferov, I.V. Buravilov, K.I. Zhivankov, A.Y. Pakhomov, V.V. Nikulshina // Вопросы атомной науки и техники. — 2014. — № 5. — С. 150-152. — Бібліогр.: 4 назв. — англ.
collection DSpace DC
container_title Вопросы атомной науки и техники
description The design features of high-voltage electron nanosecond accelerators based on the Tesla transformer are considered. The construction of the pulse-periodic accelerator with an energy of ~ 300 keV , a current of ~ 10 kA and a pulse duration of ~ 50 ns is given. Рассмотрены особенности конструкций высоковольтных электронных наносекундных ускорителей на основе трансформатора Тесла. Предлагается конструкция ускорителя частотно-периодического режима действия с энергией ~ 300 кэВ, током ~ 10 кА и длительностью импульса ~ 50 нс. Розглянуто особливостi конструкцiй високовольтних електронних прискорювачiв на основi трансформатора Тесла. Пропонується конструкцiя прискорювача частотно-перiодичного режиму дiї з енергiєю ~ 300 кеВ, струмом ~ 10 кА i тривалiстю iмпульсу ~ 50 нс.
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fulltext DESIGN OF THE SMALL-SIZED NANOSECOND PULSE-PERIODIC ELECTRON ACCELERATOR V.B.Yuferov, I.V.Buravilov∗, K. I.Zhivankov, A.Y.Pakhomov, V.V.Nikulshina National Science Center ”Kharkov Institute of Physics and Technology”, 61108, Kharkov, Ukraine (Received June 27, 2014) The design features of high-voltage electron nanosecond accelerators based on the Tesla transformer are considered. The construction of the pulse-periodic accelerator with an energy of ∼ 300 keV , a current of ∼ 10 kA and a pulse duration of ∼ 50ns is given. PACS: 29.17.+w, 41.75.Fr, 84.30.Jc, 84.70.+p 1. INTRODUCTION Pulse-periodic accelerators are widely used for the needs of nuclear energy, medicine, industry, etc. A special niche among them is occupied by accelera- tors based on the Tesla transformer. Such acceler- ators are relatively cheap and easy to manufacture and maintain, they have a great life. The beams pa- rameters vary widely, but there are some parameters that can be called typical: energy 200...2000 keV , current duration 20...50ns and strength ∼ 10 kA. This paper presents a design of compact nanosecond electron pulse-periodic accelerator with an energy of ∼ 300 keV , a current of ∼ 10 kA and a pulse duration of ∼ 50ns. 2. NANOSECOND ACCELERATORS BASED ON THE TESLA TRANSFORMER DESIGN FEATURES The constructions of some native and foreign pulse- periodic nanosecond transformer type accelerators are considered in [1-4]. Let’s briefly examine their characteristics: Metallic chamber. A high-voltage part of the ac- celerator is placed into a single grounded tank, which is filled with a pressurized gas (nitrogen N2 or sul- fur hexafluoride SF6), or with a dielectric liquid (oil, water, glycerin) to prevent electrical breakdown be- tween the transformer windings and the chamber. Transformer coils. The primary coil in such ac- celerators performed cylindrical or conical with a small taper to increase the coupling coefficient and reduce the accelerator dimensions. The coil is mas- sive, which increases its heat capacity, and reduces the electrical resistance, thereby prolonging the op- eration time of the accelerator in the periodic mode without overheating. In some constructions the pri- mary coil is formed as a heat exchanger – a flat strip with the tubes at the edges through which coolant runs (such the primary winding should be used when the dielectric medium is a gas). The secondary coil is concentric to the primary one; it has the form of tightly wound cylindrical helix of thin wire. It usu- ally consists of several hundred turns. The magnetic core is not generally used. Pulse shaping line. It is intended for energy stor- age and transfer to the vacuum diode. Beam current pulse amplitude and width depends on shaping line’s capacitance and inductance. It is electrically con- nected to the transformer’s high voltage output, and often has the form of a cylindrical conductor located inside the frame of a secondary winding. Sharpening spark gap performs two functions - re- ducing the current pulse edges and the accelerating voltage value adjustment (if the design of the spark gap provides clearance adjustment). Spark gap can be located in the mutual volume with the transformer or in a separate chamber filled with the gas under the pressure. Many well-known pulse-periodic accelerators based on Tesla transformer have similar structures, but they can not be considered identical because of some features related to their assignment, working conditions, required parameters [1-4]. 3. THE DESIGN OF THE ”VGIK -1P” ACCELERATOR The construction of the ”VGIK-1P” accelerator is shown in Fig.1. The generating part is placed into a stainless steel cylindrical chamber 1 filled with trans- former oil, and is separated from the vacuum diode 13 with plexiglass insulator 10 that includes aluminum cathode holder 11. Inside the chamber the cylindri- cal primary coil 4 made of copper bus, and the sec- ondary coil 3 made of the copper wire in the varnish insulation, wound around the dielectric frame are ∗Corresponding author E-mail address: igor buravilov@kipt.kharkov.ua 150 ISSN 1562-6016. PROBLEMS OF ATOMIC SCIENCE AND TECHNOLOGY, 2014, N5 (93). Series: Nuclear Physics Investigations (63), p.150-152. placed. The cylindrical pulse shaping line 7 mounted on the bar of the plate capacitor 2 connected to the high voltage output of the transformer and placed inside the secondary coil frame. Sharpening spark gap formed by the pulse shaping line bottom end and a screw 8, turned into the cathode holder 11. Fig.1. The construction of the ”VGIK-1P” accelerator The electrode gap in the sharpening arrester can be adjusted in the range 0...20mm by turning the screw 8 through the hole in the camera body, the flat ca- pacitor 2 and pulse shaping line 7. Regulated also is the distance between the plates of the plane capacitor – upper (grounded) plate fixed to the movable pins and can be moved in the axial direction, allowing to change the gap width in the range of 0...50mm. Using the transformer oil as a dielectric medium makes it possible to make the generating part of ac- celerator small-sized (diameter of chamber is 350mm, height of the cylindrical part is 650mm, the gaps between the coils of the transformer 45mm, be- tween the chamber wall and the edge of a plane capacitor 25mm) with an operating voltage up to 400 kV because of relatively high electric strength of oil (∼ 45 kV , after multiple breakdowns increases to 60 kV across the gap 2.5mm) [3]. Furthermore, transformer oil has ε ≈ 4, which increases the ca- pacity of the secondary circuit and provides a more uniform distribution of the electric field near the sec- ondary coil through the close values of permittivity of oil and varnish insulation of the wire. The vacuum chamber is pumped out with a dif- fusion pump with a nitrogen trap to a pressure of 10−5 Torr. 4. THE POWER SUPPLY CIRCUIT AND ELECTRICAL PARAMETERS OF THE ACCELERATOR Electrical scheme of the ”VGIK-1P” power supply system is shown in Fig.2, where T1 – autotransformer (voltage regulator); T2 – high-voltage transformer; VD – diode bridge; L1 – reactor that limits primary circuit capacity charging current; C1 – primary cir- cuit capacitor; Cf, Lf – filter capacitance and induc- tance, that obstructs the HF influences in the sup- ply network; FV1 – multigap rotary spark gap; T3 – Tesla transformer; C2 and C3 – capacitance of the plane capacitor and of the pulse shaping line, respec- tively (in conjunction they make up the capacity of the secondary circuit); L2, L3 – inductance of the pulse shaping line and of the cathode holder; FV2 – sharpening spark gap; VL – vacuum diode. Fig.2. The power supply system of the ”VGIK-1P” accelerator For efficient energy transfer between the circuits of the transformer is necessary that the natural fre- quency of them were equal to each other (f1 = f2), which can also be written as L1C1 = L2C2, (1) where L1, L2 – inductances and C1, C2 – capaci- ties of the primary and secondary circuits respec- tively. The calculated values of the natural fre- quencies in ”VGIK-1P” accelerator are equal up to 1%, f1,2 ≈ 86 kHz, which corresponds to period T1,2 ≈ 11.6µs. To ensure the fulfillment of the con- dition (1) there is a possibility of smooth adjustment of the secondary circuit capacity within 300...450 pF by capacitor C2 plate movement. Electron beam parameters were calculated based 151 on the values of the secondary circuit capacitance C2 and the discharge circuit inductance LP that con- sists of inductances of pulse shaping line, sharpen- ing arrester and vacuum diode. With C2 = 350 pF , LP = 180nH and the voltage across the secondary coil of the Tesla transformer U2 = 300 kV electron beam has a length of ∼ 50ns, current ∼ 10 kA and energy of 300 keV . Rotating multigap arrester is used for energy commutation in the primary circuit; it can provide the pulse repetition rate up to 320Hz. The amplitude of the voltage pulse on the vacuum diode depends on the primary circuit arrester gap length, and the repetition rate of pulses - on the frequency of rotation of the rotating multigap, the number of elec- trodes in it, and the amperage in the charging loop of the primary capacitor. 5. CONCLUSIONS The design of the pulse-periodic electron accelerator with an energy of ∼ 300 keV electron beam current of ∼ 10 kA, a pulse duration of ∼ 50ns and a pulse repetition frequency up to 320Hz is developed. References 1. A.N. Lebedev, A.V. Shalnov. Basics of accelera- tor physics and technology. Moscow: ”Energoat- omizdat”, 1991, 527 p. (in Russian). 2. V.A.Danilychev, D.D.Khodkevich. Intense pulsed electron gun based ELITE-1 accelerator // PTE. 1971, v. 3, p. 157-158. 3. L.P. Fominsky. Pulsed accelerator based ”ELITE-1” accelerator // PTE. 1975, v. 6, p. 19-21. 4. I. Boscolo, G.Brautti, R.Coisson, M. Leo, A. Luches. Tesla transformer accelerator for the production of intense relativistic electron beams // Rev. Sci. Instrum. 1975, v. 46, N11, p. 1535-1538. ÏÐÎÅÊÒ ÌÀËÎÃÀÁÀÐÈÒÍÎÃÎ ÍÀÍÎÑÅÊÓÍÄÍÎÃÎ ÝËÅÊÒÐÎÍÍÎÃÎ ÓÑÊÎÐÈÒÅËß ×ÀÑÒÎÒÍÎ-ÏÅÐÈÎÄÈ×ÅÑÊÎÃÎ ÐÅÆÈÌÀ ÄÅÉÑÒÂÈß Â.Á.Þôåðîâ, È.Â.Áóðàâèëîâ, Ê.È.Æèâàíêîâ, À.Þ.Ïàõîìîâ, Â.Â.Íèêóëüøèíà Ðàññìîòðåíû îñîáåííîñòè êîíñòðóêöèé âûñîêîâîëüòíûõ ýëåêòðîííûõ íàíîñåêóíäíûõ óñêîðèòåëåé íà îñíîâå òðàíñôîðìàòîðà Òåñëà. Ïðåäëàãàåòñÿ êîíñòðóêöèÿ óñêîðèòåëÿ ÷àñòîòíî-ïåðèîäè÷åñêîãî ðåæè- ìà äåéñòâèÿ ñ ýíåðãèåé ∼ 300 êýÂ, òîêîì ∼ 10 êÀ è äëèòåëüíîñòüþ èìïóëüñà ∼ 50 íñ. ÏÐÎÅÊÒ ÌÀËÎÃÀÁÀÐÈÒÍÎÃÎ ÍÀÍÎÑÅÊÓÍÄÍÎÃÎ ÅËÅÊÒÐÎÍÍÎÃÎ ÏÐÈÑÊÎÐÞÂÀ×À ×ÀÑÒÎÒÍÎ-ÏÅÐIÎÄÈ×ÍÎÃÎ ÐÅÆÈÌÓ ÄI� Â.Á.Þôåðîâ, I.Â.Áóðàâiëîâ, Ê. I.Æèâàíêîâ, À.Þ.Ïàõîìîâ, Â.Â.Íiêóëüøèíà Ðîçãëÿíóòî îñîáëèâîñòi êîíñòðóêöié âèñîêîâîëüòíèõ åëåêòðîííèõ ïðèñêîðþâà÷iâ íà îñíîâi òðàíñôîð- ìàòîðà Òåñëà. Ïðîïîíó¹òüñÿ êîíñòðóêöiÿ ïðèñêîðþâà÷à ÷àñòîòíî-ïåðiîäè÷íîãî ðåæèìó äi¨ ç åíåðãi¹þ ∼ 300 êåÂ, ñòðóìîì ∼ 10 êÀ i òðèâàëiñòþ iìïóëüñó ∼ 50 íñ. 152
id nasplib_isofts_kiev_ua-123456789-80501
institution Digital Library of Periodicals of National Academy of Sciences of Ukraine
issn 1562-6016
language English
last_indexed 2025-12-07T18:21:24Z
publishDate 2014
publisher Національний науковий центр «Харківський фізико-технічний інститут» НАН України
record_format dspace
spelling Yuferov, V.B.
Buravilov, I.V.
Zhivankov, K.I.
Pakhomov, A.Y.
Nikulshina, V.V.
2015-04-18T15:27:05Z
2015-04-18T15:27:05Z
2014
Design of the small-sized nanosecond pulse-periodic electron accelerator / V.B. Yuferov, I.V. Buravilov, K.I. Zhivankov, A.Y. Pakhomov, V.V. Nikulshina // Вопросы атомной науки и техники. — 2014. — № 5. — С. 150-152. — Бібліогр.: 4 назв. — англ.
1562-6016
PACS: 29.17.+w, 41.75.Fr, 84.30.Jc, 84.70.+p
https://nasplib.isofts.kiev.ua/handle/123456789/80501
The design features of high-voltage electron nanosecond accelerators based on the Tesla transformer are considered. The construction of the pulse-periodic accelerator with an energy of ~ 300 keV , a current of ~ 10 kA and a pulse duration of ~ 50 ns is given.
Рассмотрены особенности конструкций высоковольтных электронных наносекундных ускорителей на основе трансформатора Тесла. Предлагается конструкция ускорителя частотно-периодического режима действия с энергией ~ 300 кэВ, током ~ 10 кА и длительностью импульса ~ 50 нс.
Розглянуто особливостi конструкцiй високовольтних електронних прискорювачiв на основi трансформатора Тесла. Пропонується конструкцiя прискорювача частотно-перiодичного режиму дiї з енергiєю ~ 300 кеВ, струмом ~ 10 кА i тривалiстю iмпульсу ~ 50 нс.
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Національний науковий центр «Харківський фізико-технічний інститут» НАН України
Вопросы атомной науки и техники
Теория и техника ускорения частиц
Design of the small-sized nanosecond pulse-periodic electron accelerator
Проект малогабаритного наносекундного электронного ускорителя частотно-периодического режима действия
Проект малогабаритного наносекундного електронного прискорювача частотно-перiодичного режиму дiї
Article
published earlier
spellingShingle Design of the small-sized nanosecond pulse-periodic electron accelerator
Yuferov, V.B.
Buravilov, I.V.
Zhivankov, K.I.
Pakhomov, A.Y.
Nikulshina, V.V.
Теория и техника ускорения частиц
title Design of the small-sized nanosecond pulse-periodic electron accelerator
title_alt Проект малогабаритного наносекундного электронного ускорителя частотно-периодического режима действия
Проект малогабаритного наносекундного електронного прискорювача частотно-перiодичного режиму дiї
title_full Design of the small-sized nanosecond pulse-periodic electron accelerator
title_fullStr Design of the small-sized nanosecond pulse-periodic electron accelerator
title_full_unstemmed Design of the small-sized nanosecond pulse-periodic electron accelerator
title_short Design of the small-sized nanosecond pulse-periodic electron accelerator
title_sort design of the small-sized nanosecond pulse-periodic electron accelerator
topic Теория и техника ускорения частиц
topic_facet Теория и техника ускорения частиц
url https://nasplib.isofts.kiev.ua/handle/123456789/80501
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