USE OF A GAS DEVICE AND METHOD FOR MEASURING DICYAN IN THE PRESENCE OF HYDROGEN CYAN

AT1901920TUndetermined Publication Date: 2026-04-15DRAGER SAFETY AG & CO KAAA
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Patent Information

Application Number
AT2021730146T
Authority / Receiving Office
AT · AT
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-05
Filing Date
2021-05-27
Publication Date
2026-04-15
Estimated Expiration
2041-05-27

AI Technical Summary

Technical Problem

Existing gas detection methods for cyanogen, such as semiconductor sensors and mass spectrometers, are not sensitive or stable enough to reliably detect cyanogen concentrations exceeding the workplace limit of 5 ppm in the presence of hydrogen cyanide, making them unsuitable for safe fumigation practices.

Method used

A gas measuring device comprising a measurement chamber, a heating element for thermal splitting of cyanogen into detectable fission products, and an electrochemical sensor to accurately determine cyanogen concentrations, with optional filtering to minimize hydrogen cyanide interference, allowing for reliable detection of concentrations as low as 1 ppm.

Benefits of technology

The device enables reliable and sensitive detection of cyanogen concentrations, ensuring compliance with workplace safety limits by accurately distinguishing cyanogen from hydrogen cyanide, even at low concentrations, using a combination of thermal splitting and electrochemical sensing.

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Abstract

The invention relates to a gas measuring device (100) for measuring cyanogen in the presence of hydrogen cyanide. The gas measuring device (100) comprises a measurement chamber (101), a heating element (103, 203) and an electrochemical sensor (105, 200), wherein the measurement chamber (101) is designed to accommodate a sample, the heating element (103) is designed to thermally cleave cyanogen contained in the sample into cleavage products, and the sensor (105, 200) is designed to detect the cyanogen cleavage products obtained by the thermal cleavage. The present invention also relates to a method for measuring cyanogen in the presence of hydrogen cyanide.
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Description

[0001] DESCRIPTION

[0002] Gas measuring device and method for measuring dicyan in the presence of hydrogen cyanide

[0003] The present invention relates to a gas measuring device and a method for measuring dicyan in the presence of hydrogen cyanide. State of the art

[0004] Fumigation, or disinfection by fumigation, is a common method in agriculture for killing germs and bacteria on products that are later used and sold in the food industry.

[0005] In the past, fumigation was frequently performed with methyl bromide. Due to its strong carcinogenic effects, the use of methyl bromide for fumigation is already prohibited in some countries. Dicyan has proven to be an effective alternative.

[0006] Since dicyan is frequently found alongside hydrogen cyanide (HCN) during fumigation, there is a need to measure dicyan in the presence of hydrogen cyanide. Semiconductor sensors are typically used to measure dicyan; however, these exhibit limited sensitivity and stability and are therefore unsuitable, or only conditionally suitable, for detecting exceedances of the 5 ppm occupational exposure limit. Dicyan can also be measured using a mass spectrometer. However, since mass spectrometers are cumbersome and complex to use, they are also unsuitable, or only conditionally suitable, for detecting exceedances of the 5 ppm occupational exposure limit.

[0007] JP 2008076235 A describes a method for measuring dicyan in which hydrogen sulfides are vaporized from a sample in order to finally measure the sample using a hydrogen cyanide gas sensor.

[0008] REVELATION OF THE INVENTION

[0009] Based on the prior art described above, the invention was based on the objective of providing a means of measuring dicyan that does not have these disadvantages, at least in part.

[0010] It is therefore an object of the present invention to provide a means for reliably and easily detecting an exceedance of a permissible workplace limit value for dicyan.

[0011] The foregoing problem is solved by the subject matter of the respective independent claims. Further features and details of the invention will become apparent from the dependent claims, the description, and the drawings. Features and details described in connection with the gas measuring device naturally also apply in connection with the method according to the invention, and vice versa, so that the disclosure of the individual aspects of the invention always makes, or can make, reciprocal references.

[0012] In accordance with a first aspect of solving the problem, a gas measuring device for measuring dicyan in the presence of hydrogen cyanide is presented. The gas measuring device comprises a measuring chamber, a heating element, and an electrochemical sensor. The measuring chamber is configured to hold a sample. The heating element is configured to thermally decompose the dicyan contained in the sample into its fission products. The sensor is configured to detect the fission products of dicyan obtained by thermal decomposition. The gas measuring device according to the invention is configured to reliably and selectively determine the concentration of dicyan in a sample, even in the presence of hydrogen cyanide, with high sensitivity, in particular a sensitivity that allows dicyan to be reliably detected from a concentration of 1 ppm.

[0013] To measure the concentration of dicyan in a sample, the presented gas measuring device includes an electrochemical main sensor, which is used in combination with a heating element, such as a heating wire or a heating plate.

[0014] Since an electrochemical sensor cannot directly detect or measure dicyan, the invention provides that the respective dicyan molecules present in a sample are thermally split by means of the heating element. In particular, the heating element carries out a pyrolysis of the dicyan molecules. The thermal splitting produces decomposition products, such as nitrogen oxides or hydrogen cyanide, which can be detected by the main electrochemical sensor provided according to the invention.

[0015] It can be provided that the temperature set by the heating element for the thermal splitting of the respective dicyano molecules is selected depending on the reaction conditions present in the chamber of the gas measuring device. In particular, the temperature can be set depending on the catalysts present in the chamber. Alternatively or additionally, it is conceivable that the temperature is set depending on other reaction conditions, such as the relative humidity present in the chamber.

[0016] The heating element provided according to the invention can be freely arranged in the chamber of the presented gas measuring device. This means that the heating element and the sensor can be arranged separately from each other. Alternatively, a combined or integrated arrangement of the heating element and sensor in a single or combined component is also possible. Furthermore, the heating element can be configured to at least partially decompose dicyanin contained in the sample into nitrogen oxides, and the sensor can be configured to detect nitrogen oxides.

[0017] Since nitrogen oxides, such as nitric oxide or nitrogen dioxide, can be detected easily and accurately using an electrochemical sensor, setting the heating element to a temperature range for splitting dicyan into nitrogen oxides, i.e., nitric oxide and / or nitrogen dioxide, is particularly advantageous for operating the presented gas measuring device.

[0018] The gas detector may also include a processing unit configured to calculate the concentration of hydrogen cyanide in the sample based on sensor readings. Alternatively, the gas detector may include a processing unit and the sensor configured to detect hydrogen cyanide. The processing unit may be configured to calculate the concentration of hydrogen cyanide in the sample based on sensor readings taken during a first time interval before thermal decomposition by the heating element, and the concentration of dicyanide in the sample based on sensor readings taken during a second time interval after thermal decomposition by the heating element.

[0019] Using a processing unit, such as a computer or any other type of programmable circuit, the concentration of dicyan in a given sample can be determined from measured values ​​obtained by the sensor of the presented gas measuring device, using, for example, a predetermined coefficient. To determine or update the coefficient, the sensor can be calibrated, for example, using a calibration sample. The sensor according to the invention can be sensitive to hydrogen cyanide. In this case, to avoid an interaction between hydrogen cyanide already present in a given sample and hydrogen cyanide generated by a thermal cracking process, the concentration of hydrogen cyanide already present in the sample is determined before the thermal cracking process.Accordingly, a difference between measured values ​​obtained before and after the thermal cracking process can be used to determine the concentration of dicyan that was cracked into hydrogen cyanide and to infer the concentration of hydrogen cyanide originally present in the sample.

[0020] It may also be provided that the gas measuring device has a surface that acts as a catalyst in the thermal decomposition of dicyan.

[0021] By means of a catalyst or a catalytic surface, the temperature that the heating element provided according to the invention must supply for a thermal cracking process of dicyan molecules can be reduced. Furthermore, by a suitable selection of a material and a corresponding surface, in combination with a suitable selection of the temperature set by the heating element, the respective cracking products generated by the cracking process can be influenced, so that, for example, nitrogen oxides or hydrogen cyanides are formed by the cracking process.

[0022] It may also be provided that the surface includes at least one material from the following list of materials: platinum, palladium, ruthenium, rhodium, iridium, osmium.

[0023] Depending on the choice of material(s) for the surface provided according to the invention, more or less thermal energy is required for thermal cracking. Accordingly, depending on the choice of material or material combination, a suitably appropriate heating element can be selected, preferably one with minimal energy consumption.

[0024] The material or material combination of the surface provided according to the invention can be provided directly or supported on aluminum oxide, zirconium oxide, silicon oxide, cerium oxide or ceramic.

[0025] It may also be provided that the sensor and the heating element are combined into an integrated component and that the heating element is configured to heat a surface of the component.

[0026] A compact and energy-efficient measuring unit can be provided by means of an integrated component, which could be, for example, a pellistor with a pellistor bead. The outer surface of the pellistor bead can consist of a catalytic material that reduces the amount of energy required for a thermal cracking process.

[0027] It may also be provided that the heating element or a combination of heating element and surface is configured to split dicyan contained in the sample into nitrogen oxide or hydrogen cyanide.

[0028] Through the combined action of a heating element and a catalytic surface, the fission product generated during a thermal cracking process can be precisely controlled. In particular, the catalytic surface area, or the energy input provided by the heating element, can be dimensioned such that nitrogen oxides or hydrogen cyanides are produced.

[0029] It may also be provided that the measuring chamber includes a filter unit that is permeable to dicyan and impermeable to hydrogen cyanide.

[0030] To minimize the influence of hydrogen cyanide on the detection of dicyan, the presented gas detector can include a filter that prevents hydrogen cyanide from entering the chamber of the gas detector. Alternatively, the filter unit can be a membrane, such as a PTFE membrane, which is permeable to hydrogen cyanide and dicyan and which is configured to minimize the influence of flow on detection by the sensor provided according to the invention.

[0031] It may also be provided that the gas measuring device includes a pump for introducing a sample into the measuring chamber.

[0032] The presented gas measuring device can be based on the principle of diffusion as a passive gas measuring device or include a pump by means of which a sample can be actively taken from an environment and introduced into the chamber of the gas measuring device.

[0033] It may also be provided that the gas measuring device includes a secondary sensor, with the sensor configured to detect nitrogen oxides and the secondary sensor configured to detect hydrogen cyanide.

[0034] Using two sensors, namely one sensor for detecting nitrogen oxides and a secondary sensor for detecting hydrogen cyanide, the concentrations of both gases, i.e., dicyan and hydrogen cyanide, can be determined.

[0035] In a second aspect, the presented invention relates to a method for measuring dicyan in the presence of hydrogen cyanide, wherein the method comprises a provision step for providing a possible embodiment of the presented gas measuring device, a feeding step for introducing a sample into the measuring chamber of the gas measuring device, a cracking step for thermally cracking dicyan contained in the sample by means of the flexible element of the gas measuring device, and a detection step for detecting cracking products of the dicyan generated by the cracking step by means of the sensor of the gas measuring device. The presented method is particularly suitable for operating the presented gas measuring device.

[0036] The procedure may include a further detection step for hydrogen cyanide. Hydrogen cyanide detection can be used in addition to the detection of fission products to determine the concentration of hydrogen cyanide in a sample, alongside information on the concentration of dicyan. Alternatively, hydrogen cyanide detection can be performed solely to detect fission products.

[0037] It may also be provided that the detection of hydrogen cyanide using the sensor is carried out in a first detection step before the thermal splitting and in a second detection step after the thermal splitting.

[0038] PREFERRED EXAMPLES

[0039] Further measures improving the invention will become apparent from the following description of some exemplary embodiments of the invention, which are illustrated in the figures. All features and / or advantages arising from the claims, the description, or the drawings, including design details and spatial arrangements, can be essential to the invention, both individually and in various combinations. The figures schematically show:

[0040] Figure 1 shows a schematic representation of a possible embodiment of the gas measuring device according to the invention,

[0041] Figure 2 shows a schematic representation of a possible embodiment of the sensor provided according to the invention.

[0042] Figure 3 shows a schematic representation of a process according to the invention. Figure 1 shows a gas measuring device 100. The gas measuring device 100 comprises a measuring chamber 101, a heating element 103 and an electrochemical sensor 105.

[0043] To measure the concentration of dicyan in the presence of hydrogen cyanide, a sample located in the measuring chamber 101 is heated by means of the heating element 103 and, as a result, thermally decomposed. The decomposition products formed by the thermal decomposition are detected by the sensor 105. Based on the measured values ​​obtained by the sensor 105, the concentration of dicyan in the sample can be determined, for example, using an optional computing unit 107.

[0044] Alternatively, the measured values ​​obtained by sensor 105 can be used directly to display the concentration of dicyan in the sample. For this purpose, sensor 105 can be connected, for example, to an output unit 109, such as a display and / or a speaker.

[0045] It may be provided that the computing unit 107 is configured to issue a warning via the output unit 109 if a concentration of dicyan or hydrogen cyanide detected in a particular sample exceeds a predetermined threshold.

[0046] The Gas Detector 100 is a mobile or portable gas detector with a power source, so that the gas detector can be used "in the field".

[0047] To minimize the energy required for the thermal cracking of dicyanomolecules in the sample, or to control the cracking process into selected cracking products such as nitrogen oxides or hydrogen cyanide, a catalytic surface 111 can be arranged in the chamber 101, particularly on the heating element 103. Figure 2 shows a sensor 200. The sensor 200 is an integrated component comprising a measuring electrode 201, a heating element 203, and a catalytic surface 205 in the form of a pellistor bead, which surrounds the heating element 203 or is designed as an integral part of the heating element 203. Accordingly, thermal energy generated by the heating element 203 is transferred to the catalytic surface 205.

[0048] As soon as a dicyan molecule comes into contact with the catalytic surface 205, the dicyan molecule is thermally split, for example into nitrogen dioxide and carbon dioxide, due to the heat energy introduced into the catalytic surface 205 and due to the catalytic properties of the catalytic surface 205.

[0049] The Sensor 200 is specifically configured for the detection of nitrogen dioxide and accordingly determines a measured value depending on the measured concentration of nitrogen dioxide. The determined measured value is proportional to the concentration of dicyan and allows an assessment of whether the dicyan concentration in an environment is above or below a predefined threshold.

[0050] Figure 3 shows a method 300. Method 300 comprises a provisioning step 301 for providing a possible embodiment of the presented gas measuring device, a feeding step 303 for feeding a sample into the measuring chamber of the gas measuring device, a cracking step for thermally cracking dicyanin contained in the sample using the heating element of the gas measuring device, and a detection step 305 for detecting cracking products of the dicyanin generated by the cracking step using the sensor of the gas measuring device. REFERENCE SYMBOL LIST Gas measuring device Measuring chamber Heating element Sensor Computing unit Output unit Catalytic surface Sensor Measuring electrode Heating element Catalytic surface Method Provisioning step Feeding step Detection step

Claims

PATENT CLAIMS 1. Gas measuring device (100) for measuring dicyan in the presence of hydrogen cyanide, the gas measuring device (100) comprising: - a measuring chamber (101), - a heating element (103, 203), - an electrochemical sensor (105, 200), wherein the measuring chamber (101) is configured to receive a sample, wherein the heating element (103) is configured to thermally cleave dicyan contained in the sample into fission products, wherein the sensor (105, 200) is configured to detect the fission products of the dicyan obtained by thermal fission, wherein the gas measuring device (100) has a surface (111, 205) that acts as a catalyst in a thermal fission of dicyan and wherein the surface (111, 205) comprises at least one material from the following list of materials: Platinum, palladium, ruthenium, rhodium, iridium, osmium.

2. Gas measuring device (100) according to claim 1, characterized in that the heating element (103, 203) is configured to measure gas contained in the sample. to split dicyan at least partially into nitrogen oxides, and that the sensor (105, 200) is configured to detect nitrogen oxides.

3. Gas measuring device (100) according to claim 1 or 2, characterized in that the gas measuring device (100) comprises a computing unit (107) configured to calculate a concentration of hydrogen cyanide contained in the sample based on measured values ​​determined by the sensor (105, 200), or The gas measuring device (100) comprises a computing unit (107) and the sensor (105, 200) is configured to detect hydrogen cyanide, wherein the computing unit (107) is configured to calculate a concentration of hydrogen cyanide contained in the sample based on measurements obtained by the sensor (105, 200) during a first time period before thermal cracking by the heating element (103203) and a concentration of dicyan contained in the sample based on measurements obtained by the sensor (105, 200) during a second time period after thermal cracking by the heating element (103, 203).

4. Gas measuring device (100) according to one of the preceding claims, characterized in that the sensor (105, 200) and the heating element (103, 203) are combined into an integrated component and the heating element (103, 203) is configured to heat a surface of the component.

5. Gas measuring device (100) according to one of the preceding claims, characterized in that the heating element (103, 203) or a combination of heating element (103, 203) and surface (111, 205) is configured to split dicyan contained in the sample to nitrogen oxide or to hydrogen cyanide.

6. Gas measuring device (100) according to one of the preceding claims, characterized in that the measuring chamber (101) comprises a filter unit permeable to dicyan and impermeable to hydrogen cyanide.

7. Gas measuring device (100) according to one of the preceding claims, characterized in that the gas measuring device (100) comprises a pump for introducing a sample into the measuring chamber (101).

8. Gas measuring device (100) according to one of the preceding claims, characterized in that the sensor (200) or the heating element (103, 203) comprises a pellistor bead.

9. Gas measuring device (100) according to one of the preceding claims, characterized in that the gas measuring device (100) comprises a secondary sensor, wherein the sensor (105, 200) is configured to detect nitrogen oxides and the secondary sensor is configured to detect hydrogen cyanide.

10. Method (300) for measuring dicyan in the presence of hydrogen cyanide, the method comprising: - Providing (301) a gas measuring device (100) according to one of claims 1 to 11 , - Feeding (303) a sample into the measuring chamber (101) of the gas measuring device (100), - thermal splitting (303) of dicyan present in the sample by means of the heating element (103, 203) of the gas measuring device (100), - Detecting (305) fission products of dicyan produced by thermal cracking using the sensor (105, 200) of the gas measuring device (100).

11. Method (300) according to claim 10, characterized in that the method (300) further comprises: - Detection of hydrogen cyanide.

12. Method (300) according to claim 11, characterized in that the detection of hydrogen cyanide by means of the sensor (105, 200) in a first detection step takes place before the thermal splitting (303) is carried out and in a second recording step is carried out temporally after the thermal splitting (303).