Gas Chromatography Systems Maxum GmbH

Germany

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2024 October 1
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2020 2
Before 2020 14
IPC Class
G01N 30/02 - Column chromatography 9
G01N 30/66 - Thermal conductivity detectors 6
G01N 30/86 - Signal analysis 4
G01N 25/18 - Investigating or analysing materials by the use of thermal means by investigating thermal conductivity 3
G01N 30/62 - Detectors specially adapted therefor 3
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Registered / In Force 17

1.

Gas Analyzer with Improved Architecture for Operation in Potentially Hazardous Environments

      
Application Number 18695448
Status Pending
Filing Date 2022-08-31
First Publication Date 2024-10-03
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor
  • Schmidt, Glen Eugene
  • Neuhauser, Thomas

Abstract

A gas analyzer includes a self-contained pressure module that at least partly encloses a tube for a gas, wherein a pressure module is equipped with a sensor and a valve, the sensor and the valve are operable through a master control circuit that is accommodated in a self-contained control enclosure outside of the pressure module, separate from the valve and the sensor.

IPC Classes  ?

  • G01N 30/32 - Control of physical parameters of the fluid carrier of pressure or speed
  • G01N 30/02 - Column chromatography
  • G01N 30/86 - Signal analysis

2.

Fluid pressure control apparatus

      
Application Number 17207211
Grant Number 11835973
Status In Force
Filing Date 2021-03-19
First Publication Date 2021-09-23
Grant Date 2023-12-05
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor Strauch, Piotr

Abstract

A fluid pressure control apparatus includes a proportional solenoid valve having a solenoid portion and a valve portion operatively connected between a fluid inlet port and a fluid outlet port fluidly coupled to a pressure sensor. An electronic controller receives a first signal from the pressure sensor, receives a second signal corresponding to a pressure set point, and outputs a control signal to the solenoid valve. A flameproof/explosion proof or pressurized/purged enclosure houses the electronic controller and the solenoid portion of the solenoid valve, and a manifold block mounted to the enclosure covers and closes an opening of the enclosure. The manifold block includes internal passageways connecting the valve portion of the solenoid valve between the fluid inlet port and the fluid outlet port. The pressure sensor is arranged outside the enclosure, with the first signal from the pressure sensor being conducted into the enclosure via a fluid-tight electrical feedthrough.

IPC Classes  ?

  • G05D 16/20 - Control of fluid pressure characterised by the use of electric means
  • F16K 27/12 - Covers for housings
  • G01L 19/00 - Details of, or accessories for, apparatus for measuring steady or quasi-steady pressure of a fluent medium insofar as such details or accessories are not special to particular types of pressure gauges

3.

Fluid analyzer

      
Application Number 16585025
Grant Number 11378555
Status In Force
Filing Date 2019-09-27
First Publication Date 2020-04-02
Grant Date 2022-07-05
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor Schmidt, Glen Eugene

Abstract

A fluid analyzer having an electrical heater includes an intrinsic safety barrier that provides voltage and current from a power source to an electrical load and includes a voltage limiter and an infallible current limiting resistor for limiting the voltage and current provided to respective intrinsically safe levels, where the voltage limiter is arranged in a flameproof/explosion proof or pressurized/purged enclosure, and the current limiting resistor, e.g., an electrical heater, is connected via a connecting line to the voltage limiter and arranged outside the flameproof/explosion proof or pressurized/purged enclosure in an enclosure configured to provide protection against contact and ingress without being flameproof/explosion proof or pressurized/purged.

IPC Classes  ?

  • G01N 30/30 - Control of physical parameters of the fluid carrier of temperature
  • G01N 30/86 - Signal analysis
  • H01C 3/00 - Non-adjustable metal resistors made of wire or ribbon, e.g. coiled, woven, or formed as grids
  • G01N 30/02 - Column chromatography

4.

Fluid pressure control apparatus and system

      
Application Number 16579315
Grant Number 11215588
Status In Force
Filing Date 2019-09-23
First Publication Date 2020-03-26
Grant Date 2022-01-04
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor
  • Schmidt, Glen Eugene
  • Bottorff, Kurt

Abstract

A fluid pressure control apparatus includes a proportional solenoid valve operatively connected between a fluid inlet and a fluid outlet and a pressure sensor fluidically coupled to the fluid outlet, wherein an electronic controller generates and outputs a control signal to the solenoid valve in dependence on a first signal from the pressure sensor and a second signal corresponding to a pressure set point, where the solenoid valve has a rest position between opened and closed, and the electronic controller is further adapted to generate the control signal with either of opposite polarities to move the valve in either of opposite directions from its rest position in order to reduce power consumption and heat generation, in particular for use in gas analysis equipment located in hazardous areas.

IPC Classes  ?

  • G01N 30/32 - Control of physical parameters of the fluid carrier of pressure or speed
  • G05D 16/20 - Control of fluid pressure characterised by the use of electric means
  • G01N 30/02 - Column chromatography

5.

Gas Chromatograph (GC) detector to provide GC measurement in digital form

      
Application Number 16343832
Grant Number 11327057
Status In Force
Filing Date 2016-10-28
First Publication Date 2019-08-08
Grant Date 2022-05-10
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor Schmidt, Glen Eugene

Abstract

A Gas Chromatograph (GC) detector comprises a first circuit, a second circuit, a digital subtractor and a digital logic shared between one to many detector channels to provide a GC measurement in a digital form. The first circuit includes a first counter circuitry to provide a first counter output. The second circuit includes a second counter circuitry to provide a second counter output. The GC detector includes a digital subtractor to subtract the first counter output from the second counter output and provide a digital subtractor output. The GC detector further includes a digital logic shared between one to many detector channels to implement at least a portion of the first counter circuitry and the second counter circuitry. The digital logic to receive the digital subtractor output and provides the GC measurement in the digital form. The GC detector may be based on a Thermal Conductivity Detector (TCD) in which an integrator of a Sigma-Delta (Σ-Δ) A/D converter is eliminated and the Σ factor of the Sigma-Delta (Σ-Δ) A/D converter is accomplished in a digital form.

IPC Classes  ?

  • G01N 30/66 - Thermal conductivity detectors
  • G01N 30/62 - Detectors specially adapted therefor
  • H03M 3/00 - Conversion of analogue values to or from differential modulation
  • G01R 17/10 - AC or DC measuring bridges
  • G01N 30/02 - Column chromatography

6.

Multi-way valve

      
Application Number 15515103
Grant Number 10215738
Status In Force
Filing Date 2015-09-23
First Publication Date 2018-08-16
Grant Date 2019-02-26
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor Gellert, Udo

Abstract

A multi-way valve has an upper part, a lower part and a central part connected to the upper part via an interposing first membrane and the lower part via an interposing second membrane, wherein the upper and lower parts contain recesses on the upper and lower part faces facing the membranes, where a control fluid is introducible into the recesses, the central part contains a pair of openings in regions opposite the recesses on the central part faces lying adjacent to the membranes, where while introducing the control fluid into a recess, the membrane closes respective opposite openings in the central part, and where the membrane otherwise recedes into the recess, thereby releasing the opposite openings, where valve connections are mounted on the upper or lower part such that the central part can have a very thin design while preventing dead regions in the channel systems.

IPC Classes  ?

  • F16K 7/00 - Diaphragm cut-off apparatus, e.g. with a member deformed, but not moved bodily, to close the passage
  • G01N 30/20 - Injection using a sampling valve
  • F16K 11/02 - Multiple-way valves, e.g. mixing valvesPipe fittings incorporating such valvesArrangement of valves and flow lines specially adapted for mixing fluid with all movable sealing faces moving as one unit
  • G01N 30/02 - Column chromatography

7.

Method and chromatograph to acquire and display real-time chromatogram using time-stamped messages

      
Application Number 15580555
Grant Number 10890567
Status In Force
Filing Date 2016-06-07
First Publication Date 2018-08-09
Grant Date 2021-01-12
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor
  • Baillargeon, Michel J. Adrien
  • Wang, Aosheng

Abstract

A chromatograph and a method of acquiring and displaying a real-time chromatogram using time-stamped asynchronous messaging are provided. The method includes generating a chromatogram of a sample, acquiring segments of data points of the chromatogram in real-time, annotating in real-time the segments of data points of the chromatogram with timing stamps of cycle events of an analysis cycle using time-stamped event messages, receiving the time-stamped event messages asynchronously and displaying each cycle event of the cycle events of the analysis cycle and each segment of the segments of data points of the chromatogram in a display module as being received.

IPC Classes  ?

8.

Gas chromatograph and multiport valve unit for a gas chromatograph

      
Application Number 15537144
Grant Number 10401330
Status In Force
Filing Date 2015-12-02
First Publication Date 2018-01-04
Grant Date 2019-09-03
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor
  • Richter, Josef
  • Strauch, Piotr

Abstract

A gas chromatograph that includes a metering chamber, two separating devices and a multiport valve unit having switching functions for metering, straight separation, cutting and backflush, where the multiport valve unit is formed as a multiport diaphragm valve.

IPC Classes  ?

  • G01N 30/20 - Injection using a sampling valve
  • F16K 11/02 - Multiple-way valves, e.g. mixing valvesPipe fittings incorporating such valvesArrangement of valves and flow lines specially adapted for mixing fluid with all movable sealing faces moving as one unit
  • G01N 30/40 - Flow patterns using back flushing
  • G01N 30/46 - Flow patterns using more than one column
  • G01N 30/02 - Column chromatography

9.

Detector arrangement

      
Application Number 15172713
Grant Number 10024830
Status In Force
Filing Date 2016-06-03
First Publication Date 2016-12-15
Grant Date 2018-07-17
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor Neuhauser, Thomas

Abstract

A detector arrangement to be scaled or adapted in a simple manner depending on the application includes n·m (n≥2, m≥2) thermal conductivity detectors that are each arranged in a mounting on a detector block having a high thermal conductivity, wherein each case m detector block is secured radially symmetrically and spaced apart from one another on a carrier having a central opening, forming a detector module, and n detector modules are located on a common axis by the central openings of the carriers.

IPC Classes  ?

  • G01N 30/66 - Thermal conductivity detectors
  • G01N 30/02 - Column chromatography
  • G01N 30/78 - Detectors specially adapted therefor using more than one detector

10.

Thermal conductivity detector and detector module

      
Application Number 15157710
Grant Number 10060866
Status In Force
Filing Date 2016-05-18
First Publication Date 2016-11-24
Grant Date 2018-08-28
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor
  • Gellert, Udo
  • Schmidt, Glen Eugene

Abstract

A thermal conductivity detector for a gas chromatograph includes a heatable resistive detector element configured to be physically arranged in a flow of analytes eluting from a chromatography column and electrically arranged together with resistors in separate arms of a measuring bridge, wherein to provide a new configuration of the thermal conductivity detector to allow high detector sensitivity and to meet intrinsic safety requirements, the detector element includes at least two equal detector sub-elements that are configured to be physically arranged in series in the flow of analytes and electrically arranged in parallel with each other, where the detector element in one arm and a reference resistor in the other arm of the same half of the measuring bridge are configured such that the total resistance of the parallel detector sub-elements at operating temperature is at least approximately equal to the resistance of the reference resistor.

IPC Classes  ?

  • G01N 30/30 - Control of physical parameters of the fluid carrier of temperature
  • G01N 30/66 - Thermal conductivity detectors
  • G01N 25/18 - Investigating or analysing materials by the use of thermal means by investigating thermal conductivity
  • G01N 30/60 - Construction of the column
  • G01N 30/02 - Column chromatography

11.

Method and thermal conductivity detector

      
Application Number 15151069
Grant Number 10126277
Status In Force
Filing Date 2016-05-10
First Publication Date 2016-11-17
Grant Date 2018-11-13
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor
  • Gellert, Udo
  • Schmidt, Glen Eugene

Abstract

A thermal conductivity detector includes a heatable resistive detector configured to be physically arranged in an analytes flow eluting from a chromatography column and electrically arranged with resistors in separate arms of a measuring bridge, an amplifier which detects differential voltage between two opposite nodes of the bridge and applies an output voltage to other opposite nodes of the measuring bridge to maintain the detector at a constant operating temperature, and an additional resistor with a controllable switch in parallel connected in series with the detector or resistor arranged in one arm of the bridge, where the switch is periodically turned on and off at a predetermined duty cycle and/or controlled by information on characteristic times-of-arrival of analytes at the detector to compensate for operating temperature uncertainties due to manufacturing variations of the resistors and/or to allow for processing small and large peaks of a chromatogram with highest available resolution.

IPC Classes  ?

  • G01N 30/00 - Investigating or analysing materials by separation into components using adsorption, absorption or similar phenomena or using ion-exchange, e.g. chromatography
  • G01N 30/62 - Detectors specially adapted therefor
  • G01N 30/66 - Thermal conductivity detectors
  • G01N 25/18 - Investigating or analysing materials by the use of thermal means by investigating thermal conductivity
  • G01N 27/18 - Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating impedance by investigating resistance of an electrically-heated body in dependence upon change of temperature caused by changes in the thermal conductivity of a surrounding material to be tested
  • G01N 30/02 - Column chromatography

12.

Thermal conductivity detector circuit and method for operating the same

      
Application Number 14669981
Grant Number 09903770
Status In Force
Filing Date 2015-03-26
First Publication Date 2015-10-15
Grant Date 2018-02-27
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor
  • Schmidt, Glen Eugene
  • Gellert, Udo
  • Wang, Aosheng

Abstract

A thermal conductivity detector includes a switch controllable to short-circuit the input of an amplifier to improve the thermal conductivity detector for use in gas chromatography without the need of an additional reference cell, wherein a digital signal processor calculates a transfer function of an analog signal processor from a digitized difference signal received in response to short-circuiting the input of the amplifier at a given time when solely a reference carrier fluid passes through a measuring cell, and the digital signal processor recovers a detector signal by deconvoluting the digitized difference signal with a transfer function.

IPC Classes  ?

  • G01K 17/00 - Measuring quantity of heat
  • G01N 25/18 - Investigating or analysing materials by the use of thermal means by investigating thermal conductivity
  • G01N 30/66 - Thermal conductivity detectors
  • G01N 30/86 - Signal analysis

13.

Thermal conductivity detector

      
Application Number 14604954
Grant Number 09546972
Status In Force
Filing Date 2015-01-26
First Publication Date 2015-08-06
Grant Date 2017-01-17
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor Gellert, Udo

Abstract

A thermal conductivity detector includes at least four detector components that are arranged in receptacles of a thermal conduction block in a circle around a center axis of the thermal conduction block. The thermal conduction block comprises a central portion along the axis, the cross-axial dimensions of the central portion being less than the diameter of the circle. There are at least four equal peripheral portions that are connected solely to the central portion and are separated from each other, each of the peripheral portions carrying one of the detector components.

IPC Classes  ?

  • G01N 27/18 - Investigating or analysing materials by the use of electric, electrochemical, or magnetic means by investigating impedance by investigating resistance of an electrically-heated body in dependence upon change of temperature caused by changes in the thermal conductivity of a surrounding material to be tested
  • G01N 30/66 - Thermal conductivity detectors

14.

Intrinsically safe energy limiting circuit

      
Application Number 13715108
Grant Number 08848332
Status In Force
Filing Date 2012-12-14
First Publication Date 2013-06-20
Grant Date 2014-09-30
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor Schmidt, Glen Eugene

Abstract

An intrinsically safe energy limiting circuit for connection between an upstream DC power source and a downstream electrical load powered from the upstream DC power source, wherein the circuit comprises from upstream to downstream an input to be connected to the DC power source, an electronic current limiter configured to limit a current through the circuit to a maximum value if the current reaches this value, a fuse designed to open at a current value greater than the maximum value, a DC-to-DC converter configured to convert a DC input voltage to a lower nominal DC output voltage, a zener barrier having a zener voltage higher than the DC output voltage, and an output for connection to the electrical load.

IPC Classes  ?

  • H02H 1/04 - Arrangements for preventing response to transient abnormal conditions, e.g. to lightning
  • H02H 9/00 - Emergency protective circuit arrangements for limiting excess current or voltage without disconnection
  • H02H 9/02 - Emergency protective circuit arrangements for limiting excess current or voltage without disconnection responsive to excess current

15.

Method for quantifying peaks in an analytical signal

      
Application Number 13155172
Grant Number 08606534
Status In Force
Filing Date 2011-06-07
First Publication Date 2012-06-07
Grant Date 2013-12-10
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor
  • Klawun, Christoph
  • Wang, Aosheng

Abstract

A method for quantifying peaks in an analytical signal, peaks in the analytical signal being quantified by recording successive signal values and applying a peak analysis methodology to the recorded successive signal values within an interval to obtain a set of peak quantification results. Before the same peak analysis methodology is applied to the modified signal to quantify the peaks in the signal, random noise is added to the analytical signal and/or the signal is shifted within the interval to facilitate optimization of the parameters of the peak analysis methodology and to improve the robustness of the method in runtime applications. A subsequent statistical evaluation of the peak quantification results from the multiple repeated peak analyses of the original and modified signals is used to detect an occurrence of and to reduce the chance of a possible error in the peak quantification that needs to be alarmed or addressed.

IPC Classes  ?

  • G01R 13/00 - Arrangements for displaying electric variables or waveforms
  • G06F 17/18 - Complex mathematical operations for evaluating statistical data

16.

MAXUM

      
Application Number 1107820
Status Registered
Filing Date 2012-02-08
Registration Date 2012-02-08
Owner Gas Chromatography Systems MAXUM GmbH (Germany)
NICE Classes  ? 09 - Scientific and electric apparatus and instruments

Goods & Services

Gas chromatographs.

17.

MAXUM

      
Application Number 010211571
Status Registered
Filing Date 2011-08-23
Registration Date 2012-01-25
Owner Gas Chromatography Systems MAXUM GmbH (Germany)
NICE Classes  ? 09 - Scientific and electric apparatus and instruments

Goods & Services

Gas chromatographs.

18.

Intrinsically safe galvanically isolated barrier device and method thereof

      
Application Number 11845811
Grant Number 07898786
Status In Force
Filing Date 2007-08-28
First Publication Date 2008-07-31
Grant Date 2011-03-01
Owner GAS CHROMATOGRAPHY SYSTEMS MAXUM GMBH (Germany)
Inventor Schmidt, Glen E.

Abstract

A system and method for providing an intrinsically safe (IS) galvanically isolated barrier device. An IS barrier device provides IS galvanic isolation between a non-IS system and an IS system using a two-stage approach. In the first stage, a non-galvanically isolated IS barrier limits energy of electrical transmissions received from the non-IS system to convert such electrical transmissions into IS transmissions. In the second stage, the IS transmissions are transmitted through a galvanic isolator to the IS system to galvanically isolate the IS system from the non-IS system. A digital monolithic isolator cannot be IS certified to be the single bridge between IS and non-IS systems, however, it can be used in a certifiable fashion to isolate between IS systems. When used in conjunction with a non-galvanic IS barrier that is capable meeting the IS certification as non-IS to IS barrier, a digital monolithic isolator can be used to implement the galvanic isolator such that high speed, low cost galvanic isolation is possible. Such a galvanically isolated barrier device can be used to implement an IS galvanically isolated high speed communication bus for sample system control.

IPC Classes  ?

  • H02H 1/00 - Details of emergency protective circuit arrangements