Flow switch assembly featuring two-part base assembly with non-metallic upper part and metallic lower part
09714717 ยท 2017-07-25
Assignee
Inventors
- Nimesh Pratapbhai Karia (Des Plaines, IL, US)
- Girish Subhash Mukkawar (Lowell, MA, US)
- Navalkishor Birdhilal Agrawal (Vadodara, IN)
- Brijeshkumar Kantilal Meghpara (Cedarburg, WI, US)
Cpc classification
G01F23/56
PHYSICS
F16K25/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01H35/40
ELECTRICITY
International classification
H01H3/16
ELECTRICITY
H01H3/18
ELECTRICITY
H01H35/40
ELECTRICITY
F16K25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01F23/56
PHYSICS
H01H15/14
ELECTRICITY
H01H21/28
ELECTRICITY
H01H19/18
ELECTRICITY
H01H17/12
ELECTRICITY
Abstract
A flow switch assembly features a two-part base assembly having lower and upper base parts. The lower base part is made from a metallic material, adapted on piping having a fluid flow, and configured with a central orifice to receive a paddle arm that pivots on an axis and responds to fluid flow in the piping. The upper base part is made from a non-metallic material, configured with a corresponding central orifice to receive the paddle arm, and configured with a channel to receive a pivot arm to mount and allow the paddle arm to pivot on the axis to actuate an ON/OFF switch in response to fluid flow. The non-metallic material has a lower coefficient of heat transfer than the metallic material to reduce condensation build-up in the flow switch assembly when the flow switch assembly is used in cold applications and exposed to temperatures below freezing.
Claims
1. A flow switch assembly used in applications exposed to temperatures below freezing, for mounting onto piping having liquid flowing therein, and having a low cut off switch assembly configured to provide signaling in response to the liquid flowing in the piping, comprising: a two-part base assembly having a lower base part being configured to be adapted on the piping having the liquid flowing therein, immersed within the piping and subjected to conditions caused by the liquid flowing in the piping, and also configured with a central orifice to receive a paddle arm that pivots on an axis in response to the liquid flowing in the piping, the lower base part being made from a metallic material for responding to the conditions caused by the liquid flowing in the piping, including caustic chemicals flowing in the piping; and an upper base part being configured with a corresponding central orifice to receive the paddle arm, and configured with a channel to receive a pivot arm to mount and couple to the paddle arm with a pivot pin to pivot on the axis in order to actuate the low liquid cutoff switch assembly in response to the liquid flowing in the piping, the upper base part being made from a non-metallic material having a corresponding coefficient of heat transfer that is substantially lower than the coefficient of heat transfer of the metallic material of the lower base part that does not allow, or substantially reduces, transfer of cold temperature and negative heat so as to substantially reduce condensation build-up in the low liquid cutoff switch assembly.
2. A flow switch assembly according to claim 1, wherein the lower base part is made from brass.
3. A flow assembly according to claim 1, wherein the upper base part is made from Polyoxymethylene (POM).
4. A flow assembly according to claim 1, wherein the two-part base assembly is configured in some combination that includes the lower base part being made from brass or stainless steel and the upper base part being made from Polyoxymethylene (POM) or Nylon.
5. A flow switch assembly according to claim 1, wherein the upper base part is coupled to the lower base part using bolts, screws or mechanical fasteners.
6. A flow switch assembly according to claim 1, wherein the upper base part and the lower base part are coupled together with an O-ring in between to prevent leakage.
7. A flow switch assembly according to claim 1, wherein the upper base part is injection molded onto the lower base part and coupled together so as to form one base piece.
8. A flow assembly according to claim 7, wherein the lower base part is configured with a coupling rim and the upper base part is configured with a coupling channel to receive the coupling rim when the upper base part is injection molded onto the lower base part.
9. A flow switch assembly according to claim 7, wherein the lower base part is machined, cast or forged when made.
Description
BRIEF DESCRIPTION OF THE DRAWING
(1) The drawing includes the following Figures, not necessarily drawn to scale:
(2)
(3)
(4)
(5)
(6) In the Figures, similar parts are labeled with similar reference numerals. Moreover, not every part is labelled with a reference numeral and lead line in every Figure, so as to reduce clutter in the drawing.
DETAILED DESCRIPTION OF THE INVENTION
FIG. 2: Low Water Cutoff Switch
(7)
(8) The two-part base assembly 102 may be configured having an upper base part 107 and a lower base part 117.
(9) The lower base part 117 may be made from a metallic material, configured to be adapted on piping (not shown) having a fluid flow, and also configured with a central orifice 117a to receive a paddle arm 108 that pivots on an axis in response to the fluid flow in the piping.
(10) The upper base 107 part may be made from a non-metallic material, configured with a corresponding central orifice 107a to receive the paddle arm 108, and configured with a channel 107b to receive a pivot or pivot arm 106 to mount and allow the paddle arm 108 to pivot on the axis in order to actuate an ON/OFF switch (e.g. the micro switch 2) in response to the fluid flow. The paddle arm 108 may be understood to be pivoting on the axis, e.g., along the longitudinal axis of the pivot 106.
(11) The non-metallic material of the upper base part 107 has a substantially lower coefficient of heat transfer (i.e., thermal conductivity) than the metallic material of the lower base part 117, so as to substantially reduce (or minimize) condensation build-up in the low water cut-off switch, e.g., especially when the low water cut-off switch is used in applications exposed to temperatures below freezing, including chiller applications.
(12) In
(13) the plastic cover 1 (see
(14) the micro switch 2 (see
(15) the switch bracket 3 (see
(16) the NPT plug 4 (see
(17) a pivot pin 105;
(18) the pivot 106;
(19) a circumferential channel 106a;
(20) the upper base part 107, e.g. made from DELRIN;
(21) the lower base part 117, e.g., made from solid brass;
(22) the paddle arm 108;
(23) a paddle 9,
(24) an actuating cam 10;
(25) an O-ring 11 (see
(26) an O-ring 111.
(27) The lower base part 117 may be made from brass, as well as other suitable metallic material either now known or later developed in the future. The upper base part 107 may be made from DELRIN, as well as other suitable non-metallic material either now known or later developed in the future. By way of example, embodiments are envisioned in which the two-part base assembly 102 may be configured in some combination that includes the lower base part 117 being made from brass or stainless steel and the upper base part 107 being made from DELRIN or Nylon.
(28) The upper base part 107 may be injection molded onto the lower base part 117 and coupled together so as to form one integrated or combined base piece.
(29) The lower base part 117 may be configured with a coupling rim 117b, and the upper base part 107 may be configured with a coupling channel 107c to receive the coupling rim 117b when the upper base part 107 is injection molded onto the lower base part 117. The lower base part 117 may be machined, cast or forged when made.
(30) The upper base part 107 may be coupled to the lower base part 117 using bolts, screws or mechanical fasteners 120 (
(31) The upper base part 107 and the lower base part 117 may be coupled together with an O-ring 122 in between to prevent leakage.
(32) In effect, when compared to the existing design in
FIG. 3: The Two Part Base Assembly 102
(33)
(34) In
(35) The brass base 7 (
(36) The bottom brass part 117 may be machined, and then upper base part may be formed from DELRIN by injecting it over and above the lower brass part 117, so that the two parts/pieces become solid and act as one integrated piece.
(37) The design of the combine brass base part/component and Delrin base part/component may be made such that they would provide a locking effect during the switch's operation under pressure.
(38) The scope of the invention is intended to include using various other combination of materials for the metal and non-metal combination, e.g., including but not limited to, at least the following:
(39) Stainless steel with DELRIN, or
(40) Stainless steel with Nylon GF, or
(41) Brass with Nylon GF, etc.
(42) Other alternate designs are also envisioned which can be made using this approach for low water cutoff application within the scope and spirit of the present invention.
FIG. 4 (Alternative Designs)
(43)
(44) For example,
(45) Further,
(46) Furthermore,
(47) In each option, the upper non-metallic base part 107 may be machined from bar stock or made using an injection mold process. The lower metallic base part 117 may be machined, cast or forged. The upper non-metallic base part 107 and the lower metallic base part 117 may be joined using bolts, screws, mechanical fasteners like element 120, etc., as well as the adhesive.
Heat Transfer Coefficient
(48) The heat transfer coefficient in thermodynamics and in mechanics is understood to be a proportionality coefficient between the heat flux and the thermodynamic driving force for the flow of heat (i.e., the temperature difference, T):
(49)
where q: heat flux, W/m.sup.2 i.e., thermal power per unit area, q=dQ/dA h: heat transfer coefficient, W/(m.sup.2.Math.K) T: difference in temperature between the solid surface and surrounding fluid area, K
It is used in calculating the heat transfer, typically by convection or phase transition between a fluid and a solid.
Table of Thermal Conductivity Values (k)
(50) By way of example, the table below lists thermal conductivity values (k) for a variety of materials, in units of W/m/ C.
(51) TABLE-US-00001 Material k Material k Aluminum (s) 237 Sand (s) 0.06 Brass (s) 110 Cellulose (s) 0.039 Copper (s) 398 Glass wool (s) 0.040 Gold (s) 315 Cotton wool (s) 0.029 Cast Iron (s) 55 Sheep's wool (s) 0.038 Lead (s) 35.2 Cellulose (s) 0.039 Silver (s) 427 Expanded Polystyrene (s) 0.03 Zinc (s) 113 Wood (s) 0.13 Polyethylene (HDPE) (s) 0.5 Acetone (l) 0.16 Polyvinyl chloride (PVC) (s) 0.19 Water (l) 0.58 Dense Brick (s) 1.6 Air (g) 0.024 Concrete (Low Density) (s) 0.2 Argon (g) 0.016 Concrete (High Density) (s) 1.5 Helium (g) 0.142 Ice (s) 2.18 Oxygen (g) 0.024 Porcelain (s) 1.05 Nitrogen (g) 0.024
(52) According to ASTM data, the thermal conductivity valve of DELRIN is in a range of 0.28 (DELRIN D900P) to 0.36 (DELRIN D1700P) in units of W/m/ C., and depends on the type of DELRIN used in the particular application.
The Assembly Drawings in the Provisional Application
(53) The provisional application to which this application claimed benefit contains two assembly drawings, one for an embodiment having a brass base for a round pivot, and another for an embodiment having a brass base for an A/F pivot. These two assembly drawings are incorporated into the present application by reference, for the purpose of showing specific embodiments and corresponding detailed dimensions for the aforementioned embodiments, although the scope of the invention is not intended to be limited to any particular dimension of any particular part, or any particular dimensional relationship between any partciular combination of parts. In particular, the two assembly drawings contain detailed dimensions for making the upper base part made from the non-metallic material. By way of example, the embodiment having the brass base for the round pivot has an opening with a diameter of 0.313 and an inner circumferential channel with a diameter of 0.421, while the embodiment having the brass base for the A/F pivot has a corresponding opening with a diameter of 0.251 and an inner circumferential channel with a diameter of 0.359. In the assembly drawings, see the sub-drawings labeled Detail A and Detail B. All the other dimensions for all the other parts/components in the two embodiments are the same.
The Scope of the Invention
(54) It should be understood that, unless stated otherwise herein, any of the features, characteristics, alternatives or modifications described regarding a particular embodiment herein may also be applied, used, or incorporated with any other embodiment described herein. Also, the drawings herein are not drawn to scale.
(55) Although the invention has been described and illustrated with respect to exemplary embodiments thereof, the foregoing and various other additions and omissions may be made therein and thereto without departing from the spirit and scope of the present invention.