IP Library Granted Patent US 9,518,922
Granted Patent B2
US 9,518,922 · App. 14/235,846 · Granted Dec 13, 2016

Arrangement for in situ measurement of at least the oxygen content within a solids heap

Inventor: Lars Bondzio (Groβ-Umstadt, DE)
Assignee: Endress+Hauser Conducta GmbH+Co. KG
G01N21/643G01N27/26G01N33/0075
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Quick Facts
Patent No.
US 9,518,922
App. No.
14/235,846
Granted
Dec 13, 2016
Kind
B2
Abstract

An arrangement for in situ measurement of at least one oxygen partial pressure within a solids heap, including: at least one measuring transducer arranged within the solids heap for locally registering oxygen partial pressure, wherein each measuring transducer is embodied to output a measurement signal representing oxygen partial pressure to a superordinated unit, which is arranged outside the solids heap and is embodied to receive and to process the measurement signals of each measuring transducer.

Claims (25)

1. An arrangement for in situ measurement of at least one oxygen partial pressure within a solids heap, comprising:

a superordinated unit; and

at least two measuring transducers arranged within the solids heap for locally registering an oxygen partial pressure, wherein:

each measuring transducer is embodied to output a measurement signal representing an oxygen partial pressure to said superordinated unit, which is arranged outside the solids heap and is embodied to receive and to process the measurement signals of each measuring transducer;

the at least two measuring transducers are arranged within the solids heap at measuring locations remote from one another, separated both vertically and horizontally; and

said at least two measuring transducers comprise optical oxygen sensors structured to operate by fluorescence quenching to register the oxygen partial pressure.

2. The arrangement as claimed in claim 1 , wherein:

said at least two measuring transducers are arranged, at least partially, each within a protective tube, which extends from a site on a surface of the solids heap down to the measuring location, at which said measuring transducer is arranged.

3. The arrangement as claimed in claim 1 , wherein:

each of said at least two measuring transducers include a temperature sensor structured to, register a local temperature; and

said measuring transducers are embodied to output, besides the measurement signal representing oxygen partial pressure, a temperature measurement signal representing the temperature registered by the temperature sensors.

4. The arrangement as claimed in claim 1 , wherein:

said superordinated unit includes a data processing system connected with the at least two measuring transducers, arranged outside the solids heap and embodied to receive and to process the measurement signals of said at least two measuring transducers.

5. The arrangement as claimed in claim 4 , wherein:

said data processing system is configured to operate on the measurement signals to generate commands for controlling ventilation of the solids heap, and/or the data processing system is in wireless or wired communication with a control unit configured to operate on an input from the data processing system to generate commands for controlling ventilation of the solids heap.

6. The arrangement as claimed in claim 4 , wherein:

said at least two measuring transducers, and/or the data processing system, are powered by a photovoltaic energy supply.

7. The arrangement as claimed in claim 4 , wherein:

said data processing system is arranged in a housing sealed relative to an environment and connected with a solar module secured on an outer wall of the housing; and

the housing includes an energy supply unit therein, which stores and/or provides to the data processing system electrical energy generated by the solar module.

8. The arrangement as claimed in claim 4 , wherein:

each measuring transducer of the arrangement and the data processing system are operable by means of a photovoltaic energy supply.

9. The arrangement as claimed in claim 1 , wherein said superordinated unit includes a data processing system connected with the at least two measuring transducers, arranged outside the solids heap, and embodied to receive and to process the measurement signals of said at least two measuring transducers, and wherein said data processing system is embodied to operate on the measurement signals to control a microbial leaching process performed in the ore heap.

10. The arrangement as claimed in claim 1 , wherein said superordinated unit includes a data processing system connected with the at least two measuring transducers, arranged outside the solids heap, and embodied to receive and to process the measurement signals of said at least two measuring transducers, and the superordinated unit is connected for wireless or wired communication with a control unit controlling a micribial leaching process performed in the ore heap.

11. The arrangement as claimed in claim 1 , wherein the solids heap is an ore heap.

Assignments (2)
CHANGE OF NAME Recorded Nov 8, 2016
From: ENDRESS + HAUSER CONDUCTA GESELLSCHAFT FÜR MESS- UND REGELTECHNIK MBH + CO. KG
To: ENDRESS+HAUSER CONDUCTA GMBH+CO. KG
Reel/Frame 040576/0137 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 29, 2014
From: BONDZIO, LARS
To: ENDRESS + HAUSER CONDUCTA GESELLSCHAFT FÜR MESS- UND REGELTECHNIK MBH + CO. KG
Reel/Frame 032076/0266 →
Continuity (1)
Related Publication 20140190826A1 · Jul 10, 2014