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Title:
A MEASUREMENT MECHANISM
Document Type and Number:
WIPO Patent Application WO/2020/139273
Kind Code:
A1
Abstract:
The present invention relates to a measurement mechanism (1) which comprises a body (2); a vacuum chamber (3) which is located on the body (2) and in which a measurement process is performed; a first sample (4) and a second sample (5) between which a heat transfer occurs, which are placed in the vacuum chamber (3) and contact each other; a piston (6) which provides the first sample (4) and the second sample (5) to continuously contact each other; a measurement unit (7) which contacts the first sample (4) and the second sample (5); and a cooler (8) located below the first sample (4) and the second sample (5).

Inventors:
AKIN DEGER (TR)
KUMLUTAS DILEK (TR)
KULAK FURKAN (TR)
Application Number:
PCT/TR2019/051139
Publication Date:
July 02, 2020
Filing Date:
December 20, 2019
Export Citation:
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Assignee:
TUSAS TURK HAVACILIK VE UZAY SANAYII ANONIM SIRKETI (TR)
DOKUZ EYLUL UNIV REKTORLUGU (TR)
International Classes:
G01N25/20
Foreign References:
CN107782762A2018-03-09
CN207764148U2018-08-24
US6487866B12002-12-03
CN102645449A2012-08-22
Other References:
WARZOHA RONALD J ET AL., REVIEW OF SCIENTIFIC INSTRUMENTS, vol. 88, 19 September 2017 (2017-09-19), pages 1 - 9
KOICHI NISHINO ET AL., EXPERIMENTAL THERMAL AND FLUID SCIENCE, vol. 10, 1 February 1995 (1995-02-01), pages 258 - 271
Attorney, Agent or Firm:
CAYLI, Hulya (TR)
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Claims:
CLAIMS

1. A measurement mechanism (1 ) comprising a body (2); a vacuum chamber (3) which is located on the body (2) and in which a measurement process is performed; a first sample (4) and a second sample (5) between which a heat transfer occurs, which are placed in the vacuum chamber (3) and contact each other; a piston (6) which provides the first sample (4) and the second sample (5) to continuously contact each other; a heater (14) located above the first sample; a measurement unit (7) which contacts the first sample (4) and the second sample (5); and a cooler (8) located below the first sample (4) and the second sample (5), characterized by a piston (6) which provides transmitting the pressure directly to the first sample (4) and the second sample (5) due to a connection element (10) that comprises thereon a plurality of air ducts (9).

2. A measurement mechanism (1 ) according to Claim 1 , characterized by a connection element (10) which has a conical form.

3. A measurement mechanism (1 ) according to Claim 1 or Claim 2, characterized by a central circle (1 1 ) through which the piston (6) passes, a circumscribing circle (12) which encircles the central circle (1 1 ), and a connection element (10) comprising air ducts which are located between the central circle (1 1 ) and the circumscribing circle (12).

4. A measurement mechanism (1 ) according to any of the above claims, characterized by a connection element (10) comprising support walls which are located between the air ducts.

5. A measurement mechanism (1 ) according to Claim 4, characterized by support walls comprising a slope from the central circle (1 1 ) towards the circumscribing circle (12).

6. A measurement mechanism (1 ) according to any of the Claims 3 to 5, characterized by a plurality of connection points (13) which are located on the circumscribing circle (12) and provide fixing the connection element (10) onto the vacuum chamber (3).

7. A measurement mechanism (1 ) according to any of the above claims, characterized by a connection element (10) which is made of a stainless steel material.

8. A measurement mechanism (1 ) according to any of the above claims, characterized by a barometer (15) which is located on the piston (6) and provides measuring a pressure applied by the piston (6).

Description:
A MEASUREMENT MECHANISM

The present invention relates to a measurement mechanism which provides measuring thermal contact resistance.

Especially in space and air vehicles, honeycomb sandwich panels having carbon fibre- reinforced plate surfaces are commonly used. While various equipment and components provided in space vehicles may be fixed directly to such panels, the fixing process is performed by means of supports. Equipment, components and/or supports which are fixed to these panels may be made of metallic materials. For that reason, precise determination of thermal contact resistance, which is generated as a result of fixing the equipment, components and/or supports to the panels, is a significant factor for thermal control design of the space vehicle. While measuring the thermal contact resistance, it is provided that at least two samples contact each other. A heat transfer occurs between two samples. Meanwhile, the thermal contact resistance is measured by performing a measurement. Said test is executed in an environment without air interaction. A pressure allows two samples to be in a continuous contact with each other. The continuous pressure is provided by means of a high power piston. However, air flow occurring around the piston during its movement weakens power of the piston.

Chinese patent application no. CN102645449 covered by the known art discloses a test mechanism in which the power transmission is provided by means of a screw.

An object of the present invention is to achieve a measurement mechanism which provides increase in movement efficiency.

The measurement mechanism aimed to achieve the object of the present invention and disclosed in the claims comprises a body, and a vacuum chamber which is located on the body. The vacuum chamber comprises therein a first sample and a second sample between which a heat transfer occurs; a piston which exerts a continuous pushing force in order for the first sample and the second sample to contact each other; a measurement unit which is located between the first sample and the second sample and provides measuring the heat transfer between the first sample and the second sample; and a cooler which is located below the first sample and the second sample.

In the measurement mechanism, which is the subject matter of the present invention, the piston is fixed on the vacuum chamber by means of a connection element. A plurality of air ducts is located on the connection element. Thanks to the air ducts, pressure of the piston is directly transmitted onto the first sample and the second sample.

In an embodiment of the invention, the connection element has a conical form. Thus, mounting the connection element onto the vacuum chamber is facilitated.

In an embodiment of the invention, the connection element comprises a central circle and a circumscribing circle having a diameter larger than that of the central circle. The air ducts are located between the central circle and the circumscribing circle. The piston moves inside the central circle.

In an embodiment of the invention, the connection element comprises a plurality of support walls which are located between the air ducts. Thanks to the support walls, it is provided that endurance of the connection element is increased.

In an embodiment of the invention, the connection element has support walls that comprise slope. Therefore, production of the connection element is facilitated and aerodynamic structure thereof is improved. The pressure is directly transmitted between the first sample and the second sample without hitting the support walls. Therefore, efficiency is increased.

In an embodiment of the invention, the connection element comprises connection elements which are located on the circumscribing circle. While the connection elements are detachable, a method such as welding, etc. may also be implemented. Location of the connection elements provides the piston to move in a horizontal axis without tottering.

In an embodiment of the invention, the connection element is made of a stainless steel material. Therefore, endurance is increased. With the present invention, there is achieved a connection element through which the piston passes such that force of the piston can be transmitted onto the first sample and the second sample without decreasing.

The measurement mechanism aimed to achieve the object of the present invention is illustrated in the attached figures, in which:

Figure 1 is a perspective view of a measurement mechanism.

Figure 2 is a perspective view of a connection element.

Figure 3 is a frontal view of the piston.

All the parts illustrated in figures are individually assigned a reference numeral and the corresponding terms of these numbers are listed below.

1 - Measurement mechanism

2- Body

3- Vacuum chamber

4- First sample

5- Second sample

6- Piston

7- Measurement unit

8- Cooler

9- Air duct

10- Connection element

1 1 - Central circle

12- Circumscribing circle

13- Connection point

14- Heater

15- Barometer

The measurement mechanism (1 ) comprises a body (2); a vacuum chamber (3) which is located on the body (2) and in which a measurement process is performed; a first sample (4) and a second sample (5) between which a heat transfer occurs, which are placed in the vacuum chamber (3) and contact each other; a piston (6) which provides the first sample (4) and the second sample (5) to continuously contact each other; a heater (14) located above the first sample; a measurement unit (7) which contacts the first sample (4) and the second sample (5); and a cooler (8) located below the first sample (4) and the second sample (5). Thanks to the piston (6), the first sample (4) and the second sample (5) continuously contact each other. Therefore, it is provided that the measurement unit (7) is able to measure thermal contact resistances of the first sample (4) and the second sample (5). By performing the measurement process in the vacuum chamber (3), external environment factors do not affect the measurement results. Thus, more accurate measurement results are provided.

The measurement mechanism (1 ), which is the subject matter of the present invention, comprises a piston (6) which provides transmitting the pressure directly onto the first sample (4) and the second sample (5) due to a connection element (10) that comprises thereon a plurality of air ducts (9). Thanks to the connection element (10), the piston (6) is centred on the vacuum chamber (3) and provides power transmission. Due to the air ducts, force of the piston (6) proceeds through the connection element (10) without decreasing.

In an embodiment of the invention, the measurement mechanism (1 ) comprises a connection element (10) which has a conical form. Thus, aerodynamics of the piston (6) is provided. Material to be used is reduced, thereby providing ease-of-production.

In an embodiment of the invention, the measurement mechanism (1 ) comprises a central circle (1 1 ) through which the piston (6) passes, a circumscribing circle (12) which encircles the central circle (1 1 ), and a connection element (10) comprising air ducts which are located between the central circle (1 1 ) and the circumscribing circle (12). The air ducts are located between the central circle (1 1 ) and the circumscribing circle (12). The central circle (1 1 ) and the circumscribing circle (12) provide increasing the endurance of the connection element (10).

In an embodiment of the invention, the measurement mechanism (1 ) comprises a connection element (10) comprising support walls which are located between the air ducts. Thanks to the support walls, it is provided that endurance of the connection element (10) is increased. The connection element (10) makes high piston (6) powers balanced, thereby providing the piston (6) to be centred.

In an embodiment of the invention, the measurement mechanism (1 ) comprises support walls comprising a slope from the central circle (1 1 ) towards the circumscribing circle (12). Due to the fact that the support walls comprise slope, pressure transmitted by the piston (6) through the connection element (10) proceeds by sliding along the support walls. Therefore, movement of the piston (6) is facilitated.

In an embodiment of the invention, the measurement mechanism (1 ) comprises a plurality of connection points (13) which are located on the circumscribing circle (12) and provide fixing the connection element (10) onto the vacuum chamber (3). The connection element (10) is fixed onto the vacuum chamber (3) by means of the connection points. The connection points may be removable or irremovable connections.

In an embodiment of the invention, the measurement mechanism (1 ) comprises a connection element (10) which is made of a stainless steel material. Thus, mechanical strength of the connection element (10) is increased. An increase in the quality perception of the user is provided.

In an embodiment of the invention, the measurement mechanism (1 ) comprises a barometer (15) which is located on the piston (6) and provides measuring a pressure applied by the piston (6). Therefore, the pressure applied by the piston (6) onto the samples is able to be measured, and a more accurate measurement result is obtained.

With the present invention, there is achieved a measurement mechanism (1 ) having a connection element (10) which provides centring the piston (6) by balancing the power transmitted onto the vacuum chamber (3). Therefore, it is provided that the power transmitted by the piston (6) is transmitted directly onto the samples. The efficiency is increased.