EP0806000A1 - Temperature sensing device - Google Patents

Temperature sensing device

Info

Publication number
EP0806000A1
EP0806000A1 EP95940498A EP95940498A EP0806000A1 EP 0806000 A1 EP0806000 A1 EP 0806000A1 EP 95940498 A EP95940498 A EP 95940498A EP 95940498 A EP95940498 A EP 95940498A EP 0806000 A1 EP0806000 A1 EP 0806000A1
Authority
EP
European Patent Office
Prior art keywords
piston
diaphragm
sensing device
temperature sensing
casing
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
EP95940498A
Other languages
German (de)
English (en)
French (fr)
Inventor
Carl-Eric Berg
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Arcu Formplast AB
Original Assignee
Arcu Formplast AB
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Arcu Formplast AB filed Critical Arcu Formplast AB
Publication of EP0806000A1 publication Critical patent/EP0806000A1/en
Ceased legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D23/00Control of temperature
    • G05D23/01Control of temperature without auxiliary power
    • G05D23/12Control of temperature without auxiliary power with sensing element responsive to pressure or volume changes in a confined fluid
    • G05D23/121Control of temperature without auxiliary power with sensing element responsive to pressure or volume changes in a confined fluid characterised by the sensing element

Definitions

  • the invention concerns a temperature sensing device adapted to bring about an actuating movement of a control valve for a heating medium, comprising a housing with a closed fluid chamber, which is filled with a fluid having a high coefficient of volume expansion and which is enclosed externally by a heat conducting casing and internally by an elastically stretchable diaphragm abutting an axially movable actuating means in order to bring about said actuating movement during temperature variations in the ambient region of said casing.
  • thermostats i.a. at heating elements, in particular at water based heat radiators for controlled room heating.
  • the known devices are fairly complicated and expensive to manufacture.
  • the external, heat conducting casing is made of metal as are most of the internal components in the device.
  • the diaphragm can be formed as a bellows to enable a sufficient axial stroke and, furthermore, complicated safety devices are normally required to prevent the diaphragm from bursting at elevated temperatures. See e.g. US-A-4 508 262 (Danfoss AS) relating to a temperature sensing device with a rotatable casing permitting the setting of a desired tempera- ture reference value.
  • the main object of the present invention is to accomplish a substantially simpler temperature sensing device having only a few components, which are inexpensive to manufacture and assemble and which provides a high temperature sensitivity in spite of its simple structure and has a relatively large stroke of the actuating means without risking that the diaphragm bursts while being stretched.
  • the sensing device should not be influenced very much by the heat transfer from the heating medium. Rather it should operate substantially in response to the temperature of the ambient region of the casing.
  • secondary objects are to enable an inherent safety function at elevated temperatures and to enable a choice of materials being advantageous from an environmental point of view.
  • the device With the structure stated in claim 1, it is possible to bring about an effective and quick transfer of heat to the whole volume of the fluid in spite of relatively small dimensions of the device as a whole, and to achieve a relatively long axial movement of the actuating means, in the form of a piston, while making use of the elastic stretchability of the diaphragm material in a positive way.
  • the operational region of the piston is located adjacent to an end surface of a surrounding sleeve body, and the diaphragm is preferably stretched in opposite directions in the respective end positions.
  • the device has a great temperature sensitivity and, moreover, the heat insulating housing provides a good shielding against heat radiation and heat conduction from the heating medium being present nearby.
  • the structure according to claim 2 with internal flanges, ridges or grooves at the inside of the casing, provides an especially good heat transfer and temperature sensitivity.
  • Figure 1 is a central longitudinal section through a first embodiment of the temperature sensing device according to the invention.
  • Figures 2a, 2b and 2c are central longitudinal sections through a second embodiment of the temperature sensing device according to the invention, the device being illustrated in three different positions corresponding to three different tempera ⁇ tures.
  • the temperature sensing device shown in figure 1 is intended to be mounted on a control valve (not shown) for a heating medium, e.g. water in a heat radiator for control room heating. It is understood that the control valve of the heating element is adjustable to a desired reference value and is actuated by an actuating rod 1 projecting axially from the temperature sensing device, the non-illustrated control valve being adapted to act on the actuating rod 1 with a biassing force, which tends to displace the actuating rod 1 into the temperature sensing device.
  • a control valve for a heating medium
  • e.g. water in a heat radiator for control room heating e.g. water in a heat radiator for control room heating.
  • the control valve of the heating element is adjustable to a desired reference value and is actuated by an actuating rod 1 projecting axially from the temperature sensing device, the non-illustrated control valve being adapted to act on the actuating rod 1 with a biassing force, which tends to displace
  • the tempera ⁇ ture sensing device comprises a massive, cylindrical housing 2 of a polymer material, the actuating rod 1 projecting axially from one end of the housing in a central, cylindrical cavity 3, and the other end of the housing adjoining a cup-shaped casing 4 of a heat conducting polymer material, e.g. a polyolefine, wherein a closed chamber 5 is formed between the inside of the casing 4 and the massive, heat insulating housing 2.
  • the housing 2 has a sleeve portion 6 projecting axially towards the casing 4 and being enclosed by the diaphragm 7 of an elastically stretchable material, in particular a ther o- elastomer.
  • the diaphragm 7 has a radially projecting flange 7a which is sealingly fitted between a shoulder 4a and a ring member 8, which encloses the sleeve portion 6 and is likewise made of a polymer material.
  • the diaphragm 7 extends radially inwardly while engaging with the ring 8 and merges, via a rounded portion, with an axially extending portion 7c, which engages with the outside of the sleeve portion 6 of the housing 2.
  • the sleeve portion 6 has a rounded edge portion 6a, and the diaphragm follows this edge portion with a rounded portion 7d, which merges with a planar portion 7e into a central portion 7f, which is kept in engagement with the end surface 9a of a piston 9 being slidable in the cylindrical cavity 3.
  • the inner end la of the actuating rod 1 is fitted into a central recess 9b in the opposite end of the piston 9.
  • the closed chamber 5 consists of an annular portion 5a located radially outwardly of the sleeve portion 6 and the portion 7c of the diaphragm, and a central portion 5b between the planar portion 7e, 7f of the diaphragm and the end portion 4b of the casing 4.
  • the closed chamber 5 is prefilled with a wax-like material or a fluid, e.g. an organic ester having a high coefficient of volume expansion, so that when the temperature in the ambient air outside the casing 4 increases, heat will be transferred through the heat conducting material of the casing 4 into the fluid, whereupon the. fluid will expand and exert an increasing pressure on the diaphragm 7.
  • a wax-like material or a fluid e.g. an organic ester having a high coefficient of volume expansion
  • the central portion 7f of the diaphragm When the piston 9 is displaced to the left, the central portion 7f of the diaphragm will reach the plane defined by the planar portion 7e of the diaphragm and thereafter be stretched inwardly into the cavity 3 while continuously engaging with the end surface 9a of the piston 9. Since the central portion 7f of the diaphragm 7, in the illustrated embodiment, will be stretched in opposite directions in the initial stage, at a low temperature, and in the final stage, at higher temperatures, respectively, the stretchability of the diaphragm material will be used in the best possible way for achieving as large a stroke as possible for the piston 9 when the latter is being displaced within its operational region.
  • the heat transfer from the outside of the casing 4 to the wax or the fluid in the chamber 5 will be particularly good in case the casing 4 is provided at the inside thereof with circum- ferentially distributed, axially extending grooves 10, which significantly enlarges the effective area of the boundary surface between the casing material and the wax or the fluid.
  • the grooves 10 may alternatively be formed as inwardly projecting ridges or flanges. The essential point is that the inside of the casing has a large effective area. On the drawings only one groove 10 is shown. In practice, a plurality of such grooves are distributed circumferentially.
  • the various parts are injection moulded from a polymer material, the diaphragm 7 and the ring 8 possibly being produced by double moulding.
  • the ring 8 and the diaphragm 7 are joined together after the injection moulding, e.g. by ultrasonic welding.
  • the unit consisting of the diaphragm 7 and the ring 8 is thereafter joined to the casing 4 in a suitable manner, e.g. by welding or gluing.
  • the chamber 5 is filled with wax or fluid by inserting two fine needles through a plug 7g projecting axially through the ring 8. The fluid is fed through one of the needles, whereas air is evacuated through the other one.
  • the second embodiment of the temperature sensing device according to the invention differs from the one described above in that the sleeve portion 6 of the housing 2 is replaced by a separate sleeve 6' , which is axially displaceable in a widened, central cavity 3 ' and which guides the piston 9 and the actuating rod 1 in a corresponding manner as in figure 1.
  • the sleeve 6' is biassed towards the position shown in figure 2a by means of a strong pressure spring 11, one end of which abuts the end wall of the housing 2 and the other end of which is inserted into an annular recess 12 in the sleeve 6 ' and abuts the bottom of the recess 12 adjacent to the end of the sleeve 6' engaging with the diaphragm.
  • a radially projection flange 6 'a engages with a stop shoulder 8a on the ring 8 and holds the sleeve 6 ' in a well-defined position as shown in figure 2a.
  • the second embodiment according to figures 2a, 2b and 2c has an inherent safety function which ensures that the diaphragm 7 is kept intact even at very high temperatures.
  • the unit formed by the ring 8, the diaphragm 7 and the casing 4 is exactly alike in the two shown embodiments according to figure 1 and figures 2a-2c, respectively.

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Automation & Control Theory (AREA)
  • Temperature-Responsive Valves (AREA)
EP95940498A 1994-12-02 1995-11-30 Temperature sensing device Ceased EP0806000A1 (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
SE9404199A SE502895C2 (sv) 1994-12-02 1994-12-02 Temperaturavkänningsanordning
SE9404199 1994-12-02
PCT/SE1995/001443 WO1996017281A1 (en) 1994-12-02 1995-11-30 Temperature sensing device

Publications (1)

Publication Number Publication Date
EP0806000A1 true EP0806000A1 (en) 1997-11-12

Family

ID=20396210

Family Applications (1)

Application Number Title Priority Date Filing Date
EP95940498A Ceased EP0806000A1 (en) 1994-12-02 1995-11-30 Temperature sensing device

Country Status (5)

Country Link
EP (1) EP0806000A1 (sv)
FI (1) FI971917A (sv)
NO (1) NO972146D0 (sv)
SE (1) SE502895C2 (sv)
WO (1) WO1996017281A1 (sv)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN108258365B (zh) * 2018-02-12 2023-06-02 浙江大学 随环境温度自动调节换热高度的动力电池包及温控方法

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3236372A1 (de) * 1982-10-01 1984-04-05 Danfoss A/S, 6430 Nordborg Thermostataufsatz fuer ein ventil

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO9617281A1 *

Also Published As

Publication number Publication date
FI971917A0 (sv) 1997-05-05
SE9404199D0 (sv) 1994-12-02
NO972146L (no) 1997-05-09
WO1996017281A1 (en) 1996-06-06
NO972146D0 (no) 1997-05-09
SE9404199L (sv) 1996-02-12
SE502895C2 (sv) 1996-02-12
FI971917A (sv) 1997-05-05

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