ANALYSIS DEVICE FOR GASES IN A COMPRESSED-GAS TANK

20230077827 · 2023-03-16

Assignee

Inventors

Cpc classification

International classification

Abstract

The present invention relates to an analysis apparatus for compressed gases in a compressed-gas tank, such as a breathing-air cylinder or the like, for determining gas components, in particular CO, CO.sub.2, O.sub.2, VOC, SO.sub.2, NO, NO.sub.2, helium and moisture, having a removal device which can be connected to the compressed-gas tank, characterised in that the removal device comprises a connection element which is under the pressure of the compressed gas to be analysed in the compressed-gas tank and can be coupled to a gas treatment device having a gas measuring and evaluating device for determining the desired gas components, the connection element is also pressurised when not connected to the compressed-gas tank, preferably by means of a shut-off valve, and the gas treatment device and the gas measuring and evaluating device are further also configured to monitor and analyse the compressed gases dispensed by a compressor to fill a compressed-gas tank.

Claims

1. Analysis apparatus for compressed gases in a compressed-gas tank, such as a breathing-air cylinder or the like, for determining gas components, in particular CO, CO.sub.2, O.sub.2, VOC, SO.sub.2, NO, NO.sub.2, helium and moisture, having a removal device (7) which can be connected to the compressed-gas tank (8), characterised in that the removal device (7) comprises a connection element (9) which is under the pressure of the compressed gas to be analysed in the compressed-gas tank (8) and can be coupled to a gas treatment device (2) having a gas measuring and evaluating device (21) for determining the desired gas components, the connection element (9) is also pressurised when not connected to the compressed-gas tank (8), preferably by means of a shut-off valve (12), and the gas treatment device (2) and the gas measuring and evaluating device (21) are further also configured to monitor and analyse the compressed gases dispensed by a compressor (20) to fill a compressed-gas tank.

2. Analysis apparatus according to claim 1, characterised in that the connection element (9) comprises a desiccant (drying capsule) (13), if possible in the atmospheric region, for pre-drying the components exposed to the atmosphere during standstill.

3. Analysis apparatus according to claim 1, characterised in that the connection element (9) and all regions which come into contact with the compressed gas have moisture-repellent properties.

4. Analysis apparatus according to claim 1, characterised in that the connection element (9) is designed in the form of a connection hose.

5. Analysis apparatus according to claim 4, characterised in that the connection hose has a PTFE or FEP core to repel moisture.

6. Analysis apparatus according to claim 1, characterised in that a moisture sensor (4) of the gas treatment device (2) also records the gas analysis of the compressed gas in the compressed-gas tank (8).

7. Analysis apparatus according to claim 1, characterised in that the compressed-gas tank (8) comprises an RFID chip (22) identifying the serial number, which RFID chip can be read by means of a reader (23) on the removal device (7) and transmitted to a cloud storage device (24).

8. Analysis apparatus according to claim 7, characterised in that the gas measuring and evaluating device (21) of the gas treatment device (2) transmits signals relating to the gas components to the cloud storage device (24) by means of remote transmission.

9. Analysis apparatus according to claim 1, characterised in that a nozzle (17) is connected upstream of the desiccant (drying capsule) (13), which nozzle prevents rapid entry of ambient moisture into the measuring region.

10. Analysis apparatus according to claim 1, characterised in that the desiccant (drying capsule) (13) is arranged so that it can be removed by means of a locking screw (15) in order to replace the saturated drying agent.

11. Analysis apparatus according to claim 1, characterised in that a first (6) and a second (11) controllable valve are provided for connection to the compressor (20) and the compressed-gas tank (8), wherein at least one of the controllable valves (6, 11) is preferably formed by a solenoid valve.

12. Analysis apparatus according to claim 11, characterised in that a pressure reducer (3, 10) is connected upstream of each of the two controllable valves (6, 11).

13. Analysis apparatus according to claim 11, characterised in that it further comprises control logic which is configured to ensure that only one of the controllable valves (6, 11) can be open at all times.

14. Compressor, comprising an analysis apparatus according to claim 1, as a permanently installed component, wherein the analysis apparatus is preferably configured and integrated in the compressor in such a way that, during operation thereof, it carries out constant monitoring of the discharged compressed gases.

15. Method for operating an analysis apparatus according to claim 1, wherein in a first operating mode of the analysis apparatus the gas measuring and evaluating device (21) monitors and analyses the compressed gases dispensed by a compressor (20) for filling a compressed-gas tank, while in a second operating mode of the analysis apparatus the gas measuring and evaluating device (21) monitors and analyses compressed gases dispensed by the compressed-gas tank (8).

16. Method according to claim 15, characterised in that switching between the first operating mode and the second operating mode takes place by manual switching and/or at least one of the following events is triggered during the switching: the compressor (20) is switched off or prevented from starting via an alarm contact; a rinsing valve is opened so that the compressed gas provided by the compressor (20) escapes and is not filled into the compressed-gas tank (8); the current operating mode is signalled so that no unintentional operation of the compressor (20) is possible.

Description

[0023] Further details, features and advantages of the invention result from the following description of preferred embodiments with reference to the attached drawings in which:

[0024] FIG. 1 is a schematic view of a preferred embodiment according to the invention, on the one hand having a compressed-gas tank connection element and on the other hand in the basic state and uncoupled from the compressed gas tank;

[0025] FIG. 2 is a side view and sectional view of the connection element to be coupled to the compressed-gas tank;

[0026] FIG. 3 is a schematic overall view of a compressor system having a measuring device and an evaluating device which is also used in the invention for analysing and determining the components of the compressed gas in the compressed-gas tank;

[0027] The left-hand part of FIG. 1 shows an analysis apparatus, denoted as a whole by 1. This analysis apparatus 1 comprises a gas treatment device which is denoted as a whole by 2. As indicated by HD-IN and HD-OUT, this is the input of the high-pressure gas supplied by the compressor, for example, which exits via HD-OUT after passing through the gas treatment device 2. A pressure reducer for the compressed gases coming from the high-pressure compressor is denoted by 3. Furthermore, the gas treatment device 2 comprises a dew point sensor 4, a moisture measuring unit 5 which contains a desiccant (not shown in detail) and a flow sensor. A solenoid valve 6 is connected downstream of the pressure reducer 3.

[0028] Also shown in this drawing is a removal device 7 which can be connected to a compressed-gas tank 8 in the form of a breathing-air cylinder, for example via a connection element 9. The left-hand part of FIG. 1 shows the removal device 7 having the connection element 9 in the form of a connection hose uncoupled from the compressed-gas tank 8. The connection element 9 establishes a coupling connection to the gas treatment device 2, and a communicating line connection to the dew point sensor 4 of the moisture measuring unit 5 is established via a pressure reducer and a solenoid valve 6.

[0029] In the solution according to the invention, the gas treatment device is used in the analysis apparatus 1, which gas treatment device is provided for the compressor (not shown in detail here).

[0030] The removal device is explained in more detail below with reference to the drawings in FIG. 2.

[0031] It is important that the connection element 9 is also pressurised when not connected to the compressed-gas tank, preferably by means of a shut-off valve.

[0032] From the two views of FIG. 2, it can be seen that the removal device 7 has a desiccant (drying capsule) 13, a non-return valve 14, a locking screw 15, a metal seal 16, a nozzle 17 and an elastomer seal. The shut-off valve 12 is also shown here as a double-sided shut-off valve. A manometer 19 is also assigned to the removal device 7. The removal device 7 is designed according to the sectional view in FIG. 2 in such a way that the connection element 9 is moisture-repellent with regard to the inner passage, so that the gas treatment device 2 (FIG. 2) can be used to record timely and reliable measurement results which are largely free of influences from atmospheric moisture.

[0033] FIG. 3 is a schematic overall view of the concept according to the invention. A gas treatment device 2 is connected to a compressor 20, which gas treatment device is shown in FIG. 1, for example, with regard to its more detailed structure. This gas treatment device 2 is connected to a gas measuring and evaluating device 21 which evaluates the measured data recorded with the aid of the gas measurement sensor system in more detail.

[0034] As can be seen from the schematic representation of FIG. 3, the compressed-gas tank 8 in the form of a breathing-air cylinder has an RFID chip which includes, for example, the unique serial number of the compressed-gas tank 8. The information on the RFID chip 22 is read out with the aid of a reader 23 and, as indicated schematically by X, is transmitted to a cloud storage device 24 via remote transmission. Alternatively, another readable code, CQR, barcode or the like, which clearly identifies the compressed-gas tank 8, could be selected. The gas measuring and evaluating device 21 also transmits the evaluated data to the cloud storage device 24 by remote transmission which is indicated schematically by Y. Alternatively, the data can also be transferred to another external storage medium.

[0035] Thus, in the cloud storage device 24, for example, the corresponding results of the gas measuring and evaluating device 21 are clearly assigned to the compressed-gas tank 8, namely via the RFID chip, so that the recorded data are brought together in the cloud storage device 24 or another external storage medium.

[0036] Of course, the invention is not limited to the details shown and explained above, but numerous alterations and modifications are possible, which a person skilled in the art will make, if necessary, without departing from the concept of the invention.

LIST OF REFERENCE SIGNS

[0037] 1 Analysis apparatus as a whole [0038] 2 Gas treatment device [0039] 3 Pressure reducer [0040] 4 Moisture sensor, for example dew point sensor [0041] 5 Moisture measuring unit [0042] 6 Solenoid valve [0043] 7 Removal device [0044] 8 Compressed-gas tank in the form of a breathing-air cylinder [0045] 9 Connection element, preferably in the form of a connection hose [0046] 10 Pressure reducer [0047] 11 Solenoid valve [0048] 12 Shut-off valve [0049] 13 Desiccant [0050] 14 Non-return valve [0051] 15 Locking screw [0052] 16 Metallic seal [0053] 17 Nozzle [0054] 18 Elastomer seal [0055] 19 Manometer [0056] 20 Compressor [0057] 21 Gas measuring and evaluating device [0058] 22 RFID chip [0059] 23 Reader [0060] 24 Cloud storage device