DETECTOR PLATE FOR RADIATION ANALYSIS AND METHOD FOR PRODUCING SAME
20170011896 · 2017-01-12
Inventors
Cpc classification
International classification
Abstract
A detector plate includes a carrier plate, especially an injection-molded carrier plate, having a plurality of detector elements for detecting ionizing radiation. The detector elements function according to the principle of a Geiger-Mller counter. To simplify the production process and to save cost, the anode and/or the cathode should be in the form of a metallization on the carrier plate of the detector plate, the metallization(s) not being present in a single plane only. This configuration offers multiple options for designing the interior used as ionization chamber and for arranging the electrodes in this space. The options for contact with additional printed circuit boards also turn out to be highly advantageous. This further has an advantageous effect on the production process and on the qualities of the radiation measurement devices using detector plates of this kind.
Claims
1. A detector plate consisting of an injection-molded carrier plate with a plurality of detector elements for detection of ionizing radiation, the detector elements being adapted for generating, with indirect or direct ionization by the ionizing radiation in an inner cavity of the respective detector element, an electrical ionization current between an anode and a cathode of the respective detector element, wherein the anode and/or the cathode is formed as an electro-conductive application not lying in a single plane on the injection-molded carrier plate.
2. The detector plate according to claim 1, whereby the carrier plate is an injection-molded plate.
3. The detector plate according to claim 1, whereby the carrier plate is a non-cutting produced and/or molded carrier plate.
4. The detector plate according to claim 1, whereby the inner cavity is formed at least partly by a deepening or a depression in the carrier plate.
5. The detector plate according to claim 4, whereby the depression of the respective detector element has an opening or two openings with one through-contact each through the carrier plate.
6. The detector plate according to claim 1, wherein the electro-conductive application is a metalization, a carbonization, or a conductive ink.
7. The detector plate according to claim 1, wherein the anode and the cathode are at least partly bordering to the inner cavity.
8. The detector plate according to claim 1, wherein the inner cavity is partly bordering to a flat protective element, and the flat protective element partly or completely forms the anode or the cathode.
9. The detector plate according to claim 1, wherein the anode and/or the cathode is/are arched, or at least has/have two surfaces with differently oriented surface normals.
10. The detector plate according claim 1, wherein detector elements are electrically connected with analysis circuits, wherein the analysis circuits are arranged, either partially or entirely, in a beam path relevant for the measurement and are shielded by means of shielding metalizations.
11. The detector plate according to claim 1, wherein detector elements are electrically connected with analysis circuits, wherein the analysis circuits are arranged, either partially or entirely outside the beam path relevant for the measurement.
12. The detector plate according to claim 1, wherein the detector elements have a space saving or surface efficient form.
13. The detector plate according to claim 1, wherein the anode and/or cathode is connected conductively with a contact area or has a contact area, wherein the contact area is arranged outside of the inner area.
14. The detector plate according to claim 10, whereby the contact area spreads over a peg, and the peg is adapted to produce a conductive plug connection.
15. The detector plate according to claim 5, wherein the carrier plate forms a counter arrangement to a ball grate contact by the through-contacts.
16. A radiation analysis device with a detector plate according to claim 1.
17. A process geared to produce a detector plate consisting of a carrier plate with a number of detector elements for detecting ionizing radiation with the following steps: producing the carrier plate by an injection molding process, non-cutting production and/or recasting, Applying the electro-conductive applications used in the detector elements as anode and/or cathode, wherein at least one of the electro-conductive applications is not localized in a single plane.
18. The process according to claim 17, wherein the anode and/or the cathode is formed from at least two electro-conductive applications.
19. The process according to claim 18, wherein the at least two electro-conductive applications form a through-contact on the carrier plate.
Description
SHORT DESCRIPTION OF THE FIGURES
[0021] Shown are:
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF THE FIGURES
[0032]
[0033] It is of advantage if common conductor plates 47 can be connected with the detector element 50 by means of the described method, whereby any switching circuits on the paths of the ball grate contact can be used with a number of detector elements 50 or different detector elements. Only through the similar arrangement of all contact areas 46 and all balls used 45, is it possible to have simultaneous multiple contacts in one work step.
[0034] The electronic component 49 should only be regarded as an example of the range of possible components, such as an electrometer amplifier, just like the type of electrical connection with the conductor plate 47 that is guaranteed here via contact legs 51 and solder points 52, and which can be replaced by other connections.
[0035] The ionizing radiation follows the radiation direction B through the metal plate 40 in the inner cavity 43, which, with corresponding thickness only marginally absorbs the ionizing radiation. Alternatively, a radiation direction B can be chosen that reaches through carrier plate 41, whereby only an absorption-resistant plastic hinders the ionizing radiation.
[0036]
[0037] The honeycomb of the detector elements 81 leads to an extremely effective arrangement, whereby almost the entire surface of the carrier plate of detector plate 80 can be used as an electron surface or a detector surface. In this way, only a very small part of the surface of the carrier part is left unused.
[0038] In all embodiments, carrier plate 11, 41 can be manufactured through an injection molding process, as well as through non-cutting production and/or molding. In principle, injection molding is advantageous where greater complexity is involved. However, for example, carrier plate 11 shown in
[0039] In summary, the invention concerns a detector plate consisting of a specially injection-molded carrier plate with a number of detector elements for detecting ionizing radiation. The detector elements function according to the principle of a Geiger-Mller counter, whereby the invention also suggests, in order to simplify the production process and reduce costs, that the anode and/or cathode is not formed in a metalization process lying in a single plane on the carrier plate of the detector plate. This leads to many possibilities to form the inner cavity used as ionization chamber, and to arrange the electrodes in this area. The contact possibilities with further circuit boards also prove extremely advantageous. This also has an advantageous effect on the production process and on the quality of the radiation measuring devices that use such detector plates.
DESIGNATION LIST
[0040] B Radiation direction [0041] D1 First high-voltage distance [0042] D2 Second high-voltage distance [0043] 10 Protection foil [0044] 11 Carrier plate [0045] 12 Anode [0046] 13 Cathode [0047] 14 First opening [0048] 15 Second opening [0049] 16 Inner cavity [0050] 17 Conductor plate [0051] 18 Contact movement direction [0052] 20 Detector element [0053] 21 Second conductor path [0054] 22 First conductor path [0055] 23 Ball [0056] 24 Ball [0057] 25 Contact area [0058] 26 Contact area [0059] 27 Detector plate [0060] 28 Detector plate [0061] 40 Cathode formed as metal plate [0062] 41 Carrier plate [0063] 42 Anode [0064] 43 Inner cavity [0065] 44 Opening [0066] 45 Ball [0067] 46 Contact area [0068] 47 Conductor plate [0069] 48 Conductor path [0070] 49 Electrical structural element [0071] 50 Detector element [0072] 51 Contact leg [0073] 52 Solder point [0074] 60 Electrically contacting plug connection [0075] 61 Conductor path [0076] 62 Plug opening [0077] 63 Peg [0078] 64 Cathode [0079] 65 Opening [0080] 66 Contact surface [0081] 67 Conductor plate [0082] 68 Counter-contact surface [0083] 69 Carrier plate [0084] 70 Shielding arrangement [0085] 71 Conductor plate [0086] 72 Copper shielding [0087] 73 Ball [0088] 78 Electronic structural element [0089] 80 Carrier plate [0090] 81 Detector element [0091] 82 Synthetic resin [0092] 83 Shielding [0093] 84 Metal insert [0094] 85 Opening [0095] 86 Metalization [0096] 90 Carrier plate [0097] 91 Detector element [0098] 100 Detector element [0099] 101 Anode [0100] 102 Cathode [0101] 104 Pin [0102] 105 Inner cavity [0103] 106 Contact area [0104] 107 Contact area [0105] 108 Opening [0106] 109 Opening