IP Library Granted Patent US 7,511,268
Granted Patent B2
US 7,511,268 · App. 11/340,421 · Granted Mar 31, 2009

Ion mobility spectrometer and its method of operation

Assignee: Bruker Daltonik, GmbH
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Quick Facts
Patent No.
US 7,511,268
App. No.
11/340,421
Granted
Mar 31, 2009
Kind
B2
Abstract

The invention relates to an ion mobility spectrometer in which a measuring tube, a filter and a transport device are connected to form a circulatory gas system, with a gas inlet which introduces ambient gas for analysis into the measuring tube of the ion mobility spectrometer. The invention involves connecting the measuring tube with the ambient gas by means of a dosing channel and connecting the circulatory gas system with the ambient gas by means of an outlet channel. The outlet channel joins the circulatory gas system between the high-pressure side of the transport device and the measuring tube, so that ambient gas for analysis is introduced into the measuring tube via the dosing channel while, at the same time, gas flows out of the circulatory gas system via the outlet channel without further transport devices being required.

Claims (12)

1. Ion mobility spectrometer in which a measuring tube, a filter and a transport device are connected to form a circulatory gas system, with a gas inlet which introduces ambient gas for analysis to the measuring tube of the ion mobility spectrometer, wherein the measuring tube of the ion mobility spectrometer is connected with the ambient gas via a dosing channel, the circulatory gas system is connected with the ambient gas via an outlet channel, which is integrated into the circulatory gas system between a high-pressure side of the transport device and the measuring tube, the ambient gas to be analyzed is introduced into the measuring tube via the dosing channel at specified times for specified periods, and, during said specified times for specified periods, gas flows out of the circulatory gas system via the outlet channel and wherein gas flows out of the circulatory gas system via the dosing channel for a specified time when said gas is not flowing out of the outlet channel and cleans it, and there are no transport devices in either the dosing channel nor the outlet channel.

2. Ion mobility spectrometer in which a measuring tube, a filter and a transport device are connected to form a circulatory gas system, with a gas inlet which introduces ambient gas for analysis to the measuring tube of the ion mobility spectrometer, wherein the measuring tube of the ion mobility spectrometer is connected with the ambient gas via a dosing channel, the circulatory gas system is connected with the ambient gas via an outlet channel, which is integrated into the circulatory gas system between a high-pressure side of the transport device and the measuring tube, the ambient gas to be analyzed is introduced into the measuring tube via the dosing channel at specified times for specified periods, and, during said specified times for specified periods, gas flows out of the circulatory gas system via the outlet channel, wherein the flow rate of the ambient gas introduced via the dosing channel is automatically reduced if the measuring signal of the ion mobility spectrometer exceeds specified limit values, and there are no transport devices in either the dosing channel nor the outlet channel.

3. Method according to claim 2 , wherein the ambient gas introduced via the dosing channel is continuously monitored for gaseous substances.

4. Ion mobility spectrometer in which a measuring tube, a filter and a transport device are connected to form a circulatory gas system, with a gas inlet which introduces ambient gas for analysis into the measuring tube of the ion mobility spectrometer, wherein the measuring tube of the ion mobility spectrometer is connected with the ambient gas via a dosing channel, the circulatory gas system is connected with the ambient gas via an outlet channel, which is integrated into the circulatory gas system between a high-pressure side of the transport device and the measuring tube, the circulatory gas system is connected with the ambient gas via a flushing channel, which is integrated into the circulatory gas system between the measuring tube and a low-pressure side of the transport device and which can be opened and closed, the ambient gas to be analyzed is introduced into the measuring tube via the dosing channel when the flushing channel is closed, and, while the flushing channel is closed gas flows out of the circulatory gas system via the outlet channel, the ambient gas is introduced into the circulatory gas system via the flushing channel when the flushing channel is open, and, while the flushing channel is opened gas flows out of the circulatory gas system via the dosing channel, which cleans the dosing channel in the process, and there are no transport devices in either the dosing channel or the outlet channel or in the flushing channel.

5. Ion mobility spectrometer according to claim 4 , wherein the flow rate of the ambient gas introduced via the flushing channel is half the flow rate in the circulatory gas system or less.

6. Ion mobility spectrometer according to claim 4 , wherein the ambient gas introduced via the flushing channel flows through at least one filter before entering the measuring tube.

7. Ion mobility spectrometer according to claim 4 , wherein some or all of the flow resistances in the circulatory gas system can be varied either continuously or stepwise.

8. Ion mobility spectrometer according to claim 4 , wherein some or all of the flow resistances of the channels connecting the measuring tube or the circulatory gas system with the ambient gas can be varied either continuously or stepwise.

9. Ion mobility spectrometer according to claim 8 , wherein some or all of the channels connecting the measuring tube or the circulatory gas system with the ambient gas can be opened and closed.

10. Ion mobility spectrometer according to claim 4 , wherein the flow rate of the ambient gas introduced via the dosing channel is at least twenty times smaller than the flow rate in the circulatory gas system.

11. Ion mobility spectrometer according to claim 4 , wherein the flow rate of the ambient gas introduced via the dosing channel is between 1 and 20 milliliters per minute.

12. Ion mobility spectrometer according to claim 4 , wherein the flow rate in the circulatory gas system is between 100 and 2000 milliliters per minute.

Assignments (4)
NUNC PRO TUNC ASSIGNMENT Recorded Feb 18, 2022
From: BRUKER OPTIK GMBH
To: BRUKER OPTICS GMBH & CO. KG
Reel/Frame 059049/0058 →
CORRECTIVE ASSIGNMENT TO CORRECT THE THE PATENT NUMBER 7411268 WITH PATENT NUMBER 7511268 PREVIOUSLY RECORDED AT REEL: 050308 FRAME: 0867. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Sep 11, 2019
From: BRUKER DALTONIK GMBH
To: BRUKER OPTIK GMBH
Reel/Frame 050800/0721 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2019
From: BRUKER DALTONIK GMBH
To: BRUKER OPTIK GMBH
Reel/Frame 050308/0867 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 11, 2006
From: LANDGRAF, JURGEN
To: BRUKER DALTONIK GMBH
Reel/Frame 017602/0149 →
Priority Claims (1)
DE 10 2005 004 325 · Jan 31, 2005 · national
Continuity (1)
Related Publication 20060192103A1 · Aug 31, 2006