Gas Detector with an Ionizing Device
20220136997 ยท 2022-05-05
Inventors
Cpc classification
H03F2203/45528
ELECTRICITY
G01N27/62
PHYSICS
H03F2200/261
ELECTRICITY
G01R19/0061
PHYSICS
International classification
G01N27/62
PHYSICS
G01N33/00
PHYSICS
Abstract
The disclosure provides a gas detector with an ionizing device for producing ions depending on a gas to be detected. The gas detector includes a catcher for receiving the electrical current produced by the ions, and a measuring device with an electrical measuring resistor. The electrical measuring resistor produces an electrical measuring potential from the current and is surrounded, at least in part, by an electrical shield resistor, denoted by R.sub.T. The same potentials, up to a deviation of at most 25%, are applied in the longitudinal direction of the electrical measuring resistor to mutually opposed regions of the electrical measuring resistor and the electrical shield resistor.
Claims
1. A gas detector comprising an ionizing device for producing a plurality of ions depending on a gas to be detected, with a catcher for receiving an electrical current produced by the plurality of ions, and a measuring device with an electrical measuring resistor which produces an electrical measuring potential from a current, wherein, the electrical measuring resistor is surrounded at least in part by an electrical shield resistor, denoted by R.sub.T, and a same potential is applied to mutually opposed regions of the electrical measuring resistor and the electrical shield resistor, denoted by R.sub.T, up to a deviation of 25%.
2. The gas detector according to claim 1, wherein one of two ends of the electrical measuring resistor is electrically connected to one of two ends of the electrical shield resistor, denoted by R.sub.T, so that said ends have the same potential.
3. The gas detector according to claim 2, wherein the respective other ends of the electrical measuring resistor and the electrical shield resistor, denoted by R.sub.T, are at ground potential up to a deviation of 25%.
4. The gas detector according to claim 1, wherein the electrical shield resistor, denoted by R.sub.T, has a lower resistance value than the electrical measuring resistor.
5. The gas detector according to claim 1, wherein the resistance value of the electrical shield resistor, denoted by R.sub.T, is a maximum of one megohm and the resistance value of the electrical measuring resistor is greater than 1 gigaohm.
6. The gas detector, according to claim 1, wherein the electrical measuring resistor is elongated with a length which is greater than a height and a width thereof, wherein the electrical shield resistor, denoted by R.sub.T, extends over at least a predominant part of the length of the electrical measuring resistor.
7. The gas detector, according to claim 6, a length of the electrical shield resistor, denoted by R.sub.T, is greater than the length of the electrical measuring resistor, wherein a part of the electrical shield resistor, denoted by R.sub.T, which has different potentials in each case is as long as an active region of the electrical measuring resistor.
8. The gas detector according to claim 3, wherein the electrical shield resistor, denoted by R.sub.T, is formed as a chain of a plurality of electrical conductors, each of which surround at least in part the electrical measuring resistor, wherein a plurality of individual resistors, denoted by R.sub.T1 . . . R.sub.TN are arranged between a plurality of adjacent electrical conductors, wherein one end of the chain has the same potential as the one end of the electrical measuring resistor and another end of the chain has the same potential as the other end of the electrical measuring resistor.
9. The gas detector according to claim 8, wherein, in each case, two of the plurality of electrical conductors are arranged in pairs on mutually opposing sides of the electrical measuring resistor on an electrically conductive partial surface on the surface below the electrical measuring resistor and are electrically connected thereto.
10. The gas detector according to claim 8, wherein the plurality of electrical conductors are each designed as pin posts.
11. The gas detector according to claim 8, wherein the plurality of electrical conductors protrude on mutually opposed sides of the electrical measuring resistor.
12. The gas detector according to claim 8, wherein each of the plurality of electrical conductors have a section which is curved or angled around the electrical measuring resistor.
13. The gas detector according to claim 8, wherein two adjacent electrical conductors of the plurality of electrical conductors are each electrically connected together to form a double pair.
14. The gas detector according to claim 8, wherein the electrical shield resistor, denoted by R.sub.T, is designed as a cylinder surrounding the electrical measuring resistor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In the following, embodiments of the disclosure are explained in more detail with reference to the figures. Shown are:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE INVENTION
[0025] In
[0026] The measuring device 14 has an operational amplifier, not shown in
[0027] Adjacent to the measuring resistor 16, an electrical shield resistor R.sub.T is formed from a plurality of electrical conductors 22a to 22f and 24, low-ohm individual resistors R.sub.T1, R.sub.T2, R.sub.T3, R.sub.T4 and R.sub.T5 being arranged between adjacent conductors 24 and electrically connected to the conductors 24. The electrical conductors 24 are each designed as vertically protruding pin posts and are arranged in two rows 26, 28 on mutually opposed sides of the measuring resistor 16. The two rows 26, 28 are arranged straight, parallel to one another and parallel to the measuring resistor 16 at equal distances from the measuring resistor 16. Opposite conductors 24 are electrically connected to one another and thus form a chain of a plurality of electrical conductor pairs with conductors 24. The one end 30 of the chain has the same electrical potential as the one end 18 of the measuring resistor 16. Since the measuring resistor has to receive the measuring current at the end 18, said measuring resistor is not electrically connected to the partial area 22a. The other, opposite end 32 of the chain has the same potential as the other end 20 of the measuring resistor 16.
[0028] The electrical conductor pairs with the conductors 24 are arranged as a double pair, the conductor pairs from the conductors 24 each being connected in the longitudinal direction of the measuring resistor 16 to form a double pair. Adjacent partial areas 22a, 22b, 22c, 22d, 22e and 22f are connected to one another by means of one of the individual resistors R.sub.T1-R.sub.T5. Due to the resulting voltage drop across the respective individual resistor, the adjacent partial areas and the associated electrical conductors 24 of adjacent double pairs are at different electrical potentials.
[0029] The electrical conductors 24 shield the measuring resistor 16 on laterally opposite sides. The measuring resistor 16 is shielded below by the electrically conductive partial areas 22a-22f. In the first embodiment, the upper side of the measuring resistor 16 opposite the surface 22 is not shielded, as can be seen in
[0030] In order to also shield the upper side of the measuring resistor 16, the electrical conductors 24 of the second embodiment shown in
[0031] In
[0032] The conductors from rows 26 and 28 can thereby each consist of a contiguous curved conductor. Furthermore, from the two rows of pin posts, two pin posts can be respectively connected to one another in the longitudinal direction. Half of the R.sub.T resistors are thereby required.
[0033] In the embodiment in
[0034]
[0035] A shield resistor R.sub.T formed from five individual resistors is shown in the embodiments. This number of individual resistors is only an example. Individual resistors are preferably arranged between each adjacent electrical partial area. It is conceivable that, as in
[0036] The embodiment in
[0037] In addition, electrical shielding (not shown in the figures) of each frontal end 18, 20 of the measuring resistor 16 is conceivable, for example, in the form of an electrically conductive, vertically protruding wall in the region of each frontal end 18, 20. Each of said protruding walls should then be connected to an associated electrical partial area or be at the same potential as said partial area.