Claims
- 1. A method of thermally protecting an amperometric electroanalytical cell of the type comprising an electrolyte within an electrolyte space in contact with at least two electrodes and enclosed by a membrane that is substantially impermeable to said electrolyte but is permeable to an electroactive species, said membrane defining a sensor face for exposure to an ambient medium containing said electroactive species, said cell having an operative temperature range and being exposed temporarily to temperatures outside of said operative temperature range, said method comprising the steps of:
- effecting a heat exchange within said cell for controlled heat compensation of said electrolyte when at least said sensor face of said cell is exposed to said temperatures outside of said operative temperature range;
- said heat exchange step including passing a stream of heat transfer fluid through said cell;
- said heat transfer fluid being passed through said cell to contact at least one heat conductive member therein that is in contact with said electrolyte space;
- said heat conductive member being an electrode;
- said electrode being the outermost electrode of a substantially coaxial electrode arrangement comprising a central electrode and at least one peripheral electrode around said central electrode;
- said heat transfer fluid being passed through a substantially annular confined channel sealed from said electrolyte space but maintained in heat exchange contact therewith by said peripheral electrode; and
- a conduit means being provided within said cell for passing said heat transfer fluid for an external source through said confined channel.
- 2. The method method of claim 1, wherein a well portion in contact with said peripheral electrode is provided in said electrolyte space and wherein said confined channel is maintained in said heat exchange contact with said well portion.
- 3. A method of thermally protecting an amperometric electroanalytical cell of the type comprising an electrolyte within an electrolyte space in contact with at least two electrodes and enclosed by a membrane that is substantially impermeable to said electrolyte but is permeable to an electroactive species, said membrane defining a sensor face for exposure to an ambient medium containing said electroactive species, said cell having an operative temperature range and being exposed temporarily to temperatures outside of said operative temperature range, said method comprising the steps of:
- effecting a heat exchange within said cell for controlled heat compensation of said electrolyte when at least said sensor face of said cell is exposed to said temperatures outside of said operative temperature range;
- said heat exchange step including passing a stream of a heat transfer fluid through said cell; and
- said heat transfer fluid being passed through said cell by a conduit means formed at the interface of a pair of coaxial tubular cell members extending over a major portion of said cell between a first cell region near said sensor face and a second cell region distanced from said sensor face.
- 4. The method of claim 10, wherein one of said coaxial tubular cell members of said pair is made of a heat conductive material and wherein said heat transfer fluid is passed through said conduit means which provides a thermal shield around the cell portion within said pair.
- 5. The method of claim 4, wherein said cell comprises an outer jacket portion encompassing said thermal shield.
- 6. The method of claim 5, wherein a thermally insulating layer is provided between said outer jacket portion and said shield.
- 7. A method of thermally protecting an amperometric electroanalytical cell of the type comprising an electrolyte within an electrolyte space in contact with at least two electrodes and enclosed by a membrane that is substantially impermeable to said electrolyte but is permeable to an electroactive species, said membrane defining a sensor face for exposure to an ambient medium containing said electroactive species, said cell having an operative temperature range and being exposed temporarily to temperatures outside of said operative temperature range, said method comprising the steps of:
- effecting a heat exchange within said cell for controlled heat compensation of said electrolyte when at least said sensor face of said cell is exposed to said temperatures outside of said operative temperature range; and
- said heat exchange step including passing a stream of a heat transfer fluid through said cell; and
- said heat exchange step further including passing the stream of the heat transfer fluid through said cell in heat conducting communication but not in fluid communication with said electrolyte space and the electrolyte contained therein.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a divisional application of our commonly assigned, copending U.S. patent application Ser. No. 06/691,519, filed Jan. 14, 1985, now U.S. Pat. No. 4,585,542, granted Apr. 29, 1986 which, in turn, is a continuation application of our commonly assigned U.S. application Ser. No. 06/345,536, filed Feb. 3, 1982, now U.S. Pat. No. 4,518,477, granted May 21, 1985.
This application generally relates to subject matter disclosed in our commonly assigned U.S. application Ser. No. 773,163 filed Mar. 1, 1977, issued as U.S. Pat. No. 4,096,047 on June 20, 1978, as well as to subject matter disclosed in our commonly assigned U.S. application Ser. No. 164,291, filed June 30, 1980, now U.S. Pat. No. 4,325,797, granted Apr. 20, 1982, and the copending divisional application Ser. No. 06/319,708, filed Nov. 9, 1981, now U.S. Pat. No. 4,372,021, granted Feb. 8, 1983.
US Referenced Citations (8)
Foreign Referenced Citations (1)
| Number |
Date |
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| 2040727 |
Jan 1971 |
FRX |
Divisions (1)
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Number |
Date |
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| Parent |
691519 |
Jan 1985 |
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Continuations (1)
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345536 |
Feb 1982 |
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