GB1600983A - Power transmission - Google Patents

Power transmission Download PDF

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Publication number
GB1600983A
GB1600983A GB24683/77A GB2468377A GB1600983A GB 1600983 A GB1600983 A GB 1600983A GB 24683/77 A GB24683/77 A GB 24683/77A GB 2468377 A GB2468377 A GB 2468377A GB 1600983 A GB1600983 A GB 1600983A
Authority
GB
United Kingdom
Prior art keywords
transmission
fluid coupling
liquid
framework
tube
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.)
Expired
Application number
GB24683/77A
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.)
Dowty Meco Ltd
Original Assignee
Dowty Meco Ltd
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 Dowty Meco Ltd filed Critical Dowty Meco Ltd
Priority to GB24683/77A priority Critical patent/GB1600983A/en
Priority to ZA00783390A priority patent/ZA783390B/en
Priority to DE19782825813 priority patent/DE2825813A1/en
Priority to AU37060/78A priority patent/AU3706078A/en
Priority to US05/915,294 priority patent/US4198819A/en
Publication of GB1600983A publication Critical patent/GB1600983A/en
Expired legal-status Critical Current

Links

Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21FSAFETY DEVICES, TRANSPORT, FILLING-UP, RESCUE, VENTILATION, OR DRAINING IN OR OF MINES OR TUNNELS
    • E21F13/00Transport specially adapted to underground conditions
    • E21F13/06Transport of mined material at or adjacent to the working face
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K5/00Casings; Enclosures; Supports
    • H02K5/04Casings or enclosures characterised by the shape, form or construction thereof
    • H02K5/20Casings or enclosures characterised by the shape, form or construction thereof with channels or ducts for flow of cooling medium
    • H02K5/203Casings or enclosures characterised by the shape, form or construction thereof with channels or ducts for flow of cooling medium specially adapted for liquids, e.g. cooling jackets
    • EFIXED CONSTRUCTIONS
    • E21EARTH DRILLING; MINING
    • E21FSAFETY DEVICES, TRANSPORT, FILLING-UP, RESCUE, VENTILATION, OR DRAINING IN OR OF MINES OR TUNNELS
    • E21F17/00Methods or devices for use in mines or tunnels, not covered elsewhere
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16HGEARING
    • F16H57/00General details of gearing
    • F16H57/04Features relating to lubrication or cooling or heating

Description

(54) POWER TRANSMISSION (71) We, DOWTY MECO LIMITED, a British Company, of Meco Works, Worcester, do hereby declare the invention for which we pray that a patent may be granted to us, and the method by which it is to be performed, to be particularly described in and by the following statement: This invention relates to a power transmission.
According to the invention, a power transmission includes a motor, a "fixed-fill" fluid coupling (as hereinafter defined), and a gear box, at least the "fixed-fill" fluid coupling of which is liquid cooled, tubing being provided which is formed as a framework and which is so associated with the fluid coupling that cooling liquid caused to pass through the interior of the tubing is brought into heat-exchange relation with respect to said fluid coupling.
Preferably, all three of the components of the transmission are liquid cooled. It may be arranged for the liquid used for cooling said three components to flow thereto in a desired sequence: for example, the liquid may first flow to, and cool, the motor, it may then flow from the motor to, and cool, the fluid coupling and it may then flow from the fluid coupling to, and cool, the gear box.
Having so flowed to the three components, the liquid may then be passed through a heat-exchange device, which cools the liquid, and then be recirculated to the first of the components to be cooled in the sequence. Alternatively, the liquid, having flowed to said three components one after the other in the sequence, may then be used for another purpose, or, where the liquid supply is plentiful, be allowed to run to waste.
The motor may be an electric motor.
The power transmission may be one which is intended for driving the chain or chains of an armoured face conveyor in a coal mine.
It may be arranged for the cooling liquid to flow through a jacket associated with the motor.
The framework of tubing may comprise a single tube which is so shaped as to form at least two axially-spaced-apart portions which are substantially of ring-shape. In this case one end portion of said tube may form a liquid inlet and the other end portion of the tube may form a liquid outlet, the tube being so shaped at a suitable portion or portions thereof as at least to assist in affording the axial spacing of said substantially ring-shaped portions.
The external surface of the single tube may carry cooling fins. These fins may be spirally wound, or, alternatively may be of parallel, radial, form.
Instead of comprising a single tube, said framework may include at least two ring members, formed of tubing, whose centres lie on the longitudinal axis of the fluid coupling, or substantially so.
The ring members may be axially spaced apart and connected together by a plurality of joining tubes. The joining tubes may be closely-spaced circumferentially of the ring members, and their interiors open into the interiors of the ring members.
The joining tubes may be so shaped and so joined to said ring members that each joining tube projects inwardly from one of said ring members towards said fluid coupling for part of its length and for the remainder of its length is directed away from said coupling to join with the adjacent ring member.
Preferably said joining tubes are curved in shape and are substantially radiallydisposed with respect to said longitudinal axis. Alternate joining tubes may project further towards said fluid coupling than the other joining tubes.
A guard member may be provided around the fluid coupling and spaced therefrom, said framework then being disposed in the space formed between the guard member and the fluid coupling.
The jacket associated with the fluid coupling may be comprised by the outer surface of a housing within which the fluid coupling is contained, a flange at each end of the housing, fins which radiate outwardly of said outer surface and extend between the two flanges, and a cover plate or cover plates associated with the flanges and fins.
Thus, a plurality of spaces will be provided about the fluid coupling through which the cooling liquid can be passed.
It may be arranged for said cooling liquid to flow through a finned tube or tubes associated with the gear box.
The term " "fixed-fill" fluid coupling" used throughout this specification and claims is intended to mean a fluid coupling which contains a predetermined quantity of liquid and which has no means whereby further liquid can be supplied to the coupling while it is running.
Two embodiments of the invention will now be described by way of example with reference to the accompanying drawings, of which Figure lisa partly cut-away elevation of a power transmission in accordance with the first embodiment, Figure 2 is a scrap view taken in the direction of the arrow II on Figure 1, Figure 3 is an enlarged view, taken in the direction of the arrow III on Figure 1, of the framework of tubing shown in association with the fluid coupling in that figure.
Figure 4 is a view taken in the direction of the arrow IV on Figure 3.
Figure 5 is a part-sectional elevation of a framework of tubing, forming an alternative to that of Figures 3 and 4, in accordance with the second embodiment, and, Figure 6 is a view taken in the direction of the arrow VI on Figure 5.
Referring to Figures 1 to 4 of the drawings, a power transmission 10, suitable for driving the chain or chains (not shown) of an armoured face conveyor in a coal mine, includes an electric motor 11, a "fixed-fill" fluid coupling 12 (as hereinbefore defined), and a gear box 13 having an output shaft 14.
In operation the electric motor drives the gear box, and thus the chain or chains of the conveyor, by way of the fluid coupling.
The power transmission includes a motor flange 15 upon which the motor 11 is fitted and a gear box flange 16 upon which the gear box is fitted. The fluid coupling 12 is positioned between these two flanges and a two-part coupling guard member 17 of cylindrical shape is secured between the two flanges in a manner such that it surrounds and is spaced from the fluid coupling.
A framework 18 of tubing is provided in the annular space 19 formed between the motor flange 15, the member 17 and the right-hand end portion of the fluid coupling 12. This framework comprises a single tube 20 which is so shaped as to form two axially-spaced apart portions 21 and 22 which are substantially of ring-shape with their centres lying on the longitudinal axis 23 of the fluid coupling. The end portions of the single tube comprise short pieces, 24 and 25, of steel tube which are brazed to the main portion of the tube which is of copper.
The end portion 24 forms a water inlet for the framework 18 and the end portion 25 forms a water outlet therefor, both portions being associated with apertures in the guard member 17 through which said end portions are connected to pipes later described.
The single tube 20 is so curved through 180 degrees at a suitable portion, as at 26 in Figures 3 and 4, around the circumference of the framework as to assist in affording the axial spacing of the portions 21 and 22.
Two attachment members, 27 and 28, for securing the framework 18 in position, are brazed to the tube 20. One of these members, 27, serves also to assist in affording the axial spacing of the portions 21 and 22. The second member 28 is brazed to the portion of the tube curved through 180 degrees at 26.
The external surfaces of the portions 21 and 22 are provided as shown with spirallywound fins 30, also of copper and brazed thereto.
The casing of the electric motor 11 is provided with a cylindrical water jacket 31 having a water inlet 32 an a water outlet 33.
The gear box is provided with a number of interconnected finned cooling tubes 34, 35, 36 and 37 disposed in the manner shown in Figure 1. These tubes have a common water inlet 38 and a common water outlet 39.
In this embodiment the desired sequence of water-cooling of the three components of the power transmission is :- (i) the electric motor 11, (ii) the fluid coupling 12, and, (iii) the gear box 13. The inlet for the cooling circuit is shown at 40 in Figures 1 and 2, and a pressure reducing valve 41 is disposed adjacent the inlet as shown. A pipe 42 is taken from the inlet and reducing valve to a pressure relief valve 43. A further pipe 44 is taken from the relief valve to the inlet 32 of the jacket 31 of the electric motor. A pipe 45 is taken from the outlet 33 of this jacket to the inlet 24 of the framework 18, and a pipe 46 is taken from the outlet 25 of the framework to the inlet 38 of the finned tubes associated with the gear box. The outlet 39 is connected by a pipe 47 to a heat-exchange device 48.
During operation of the power transmission water derived from a reservoir (not shown) and supplied under pressure by a pump (also not shown) to the inlet 40 passes through the valve 41, the pipe 42, the valve 43 and the pipe 44 to the inlet 32. After passing through the jacket 31 and affording cooling of the electric motor 11, the water passes through the outlet 33 and the pipe 45 to the inlet 24 of the framework 18 associated with the coupling 12. Some of the heat generated in the operation of the coupling passes by radiation to the fins 30 of the tube 20 and thus to the tube itself, being then conducted by the tube into the water flowing therethrough. This water is discharged to the exterior of the transmission through the outlet 25 and then passes through the pipe 46 to the common inlet 38 of the finned tubes 34 to 37.
After passing through the finned tubes, and thereby affording cooling of the gear box, the water is discharged through the outlet 39 and pipe 47 to the heat-exchange device 48 where it is cooled before passing to the reservoir for recirculation to the inlet 40 of the cooling circuit.
With reference now to Figures 5 and 6, instead of forming the framework associated with the fluid coupling 12 as a single tube, a framework 50 of copper tubing is provided which includes two ring members 51 and This framework is adapted to be disposed in the annular space 19 of Figure 1, the centres of the members 51 and 52 lying on the longitudinal axis of the fluid coupling.
The members 51 and 52 are axially spaced apart, and respectively have a water inlet 53 and a water outlet 54. A water inlet pipe 55 connects to the inlet 53 and a water output pipe 56 connects to the outlet 54, both pipes extending through suitable apertures in the guard member to the exterior thereof for connection, respectively, to the pipes 45 and 46 of Figure 1.
The members 51 and 52 are connected together by a plurality of joining tubes 57, 58 which are brazed to them, these tubes being closely-spaced circumferentially of the ring members and their interiors opening into the interiors of the ring members. The joining tubes are of U-shape and so joined to the ring members that each projects radially-inwardly from one of the ring members for part of its length towards the fluid coupling and for the remainder of its length is directed away from the coupling to join with the other ring member. Alternate joining tubes 57 project further towards the fluid coupling than the other joining tubes 58.
Suitable attachment plates 59, 60 are provided for securing the framework 50 in position around the fluid coupling.
During operation of the power transmission, and with water passing through the cooling circuit, some of the heat generated in the fluid coupling passes by radiation to the copper tubing of the framewok 50 and this heat is conducted by the tubing into the water flowing therethrough, being discharged to the exterior of the transmission in the water passing through the outlet 54 and pipe 56.
By so arranging for the alternate joining tubes 57 to project further towards the fluid coupling than the other joining tubes 58, that is, the joining tubes curving inwardly alternately to a greater and a lesser extent, the better is the interception by the joining tubes of the heated air in the annular space in which the framework is mounted.
In each of the above-described embodiments the framework of tubing provides an efficient means for dissipating some of the heat generated during operation of the fluid coupling and is intended to ensure that the coupling operating temperature is maintained below a predetermined value.
Instead of providing a framework of tubing in association with the fluid coupling, a jacket through which water may be caused to flow may be provided. The jacket may be comprised by the outer surface of a housing within which the fluid coupling is contained, a flange at each end of the housing, fins which radiates outwardly of the outer surface and extend between the two flanges, and a cover plate or cover plates associated with the flanges and fins. Thus, a plurality of spaces will be provided about the fluid coupling through which cooling water can be passed.
The cover plates may comprise a number (equal to the number of fins) of anglesection members and a number of plate members. The free end portion of one of the limbs of an angle-section member will be joined to the outer edge of a fin, and the free end portion of the other limb will be joined to the outer surface of the housing.
Thus, the other limb of an angle-section member forms an effective fin for the housing. The space then left between a fin and an effective fin will be closed by a plate member joined to the outer edges of a fin and an effective fin.
There may be a manifold at each end of the housing which contains the fluid coupling, which manifolds are common to all the closed spaces (for example, by holes in the flanges) and which are employed to supply cooling water to and remove cooling water from the closed spaces.
In another construction, the cooling water may be introduced into one of the closed spaces, may then flow around the outer surface of the housing by way of holes in the fins and, if any, effective fins, possibly following a tortuous path, and may be removed by way of another of the closed spaces.
Although in all the embodiments above described the cooling liquid is water, in other embodiments other cooling liquids may with advantage be used.
In yet other embodiments the liquid, having flowed as described to the three components of the power transmission in the desired sequence, may then be used for another purpose, or, where the liquid supply is plentiful, it may be allowed to run to waste. Such flow to waste may be by way of a heater.
A power transmission in accordance with the invention enables a "fixed-fill" fluid coupling to be used which is of a lower power rating, and hence of smaller size, than would be otherwise possible, and so allows a more compact power transmission to be provided.
WHAT WE CLAIM IS: 1. A power transmission including a motor, a "fixed-fill" fluid coupling (as hereinbefore defined), and a gear box, at least the "fixed-fill" fluid coupling of which is liquid cooled, tubing being provided which is formed as a framework and which is so associated with the fluid coupling that cooling liquid caused to pass through the interior of the tubing is brought into heatexchange relation with respect to said fluid coupling.
2. A transmission as claimed in Claim 1, wherein all three of the components of the transmission are liquid cooled.
3. A transmission as claimed in Claim 2, wherein it is arranged for the liquid used for cooling said three components to flow thereto in a desired sequence.
4. A transmission as claimed in Claim 3, wherein said liquid, having so flowed to said three components, is then passed through a heat-exchange device, which cools the liquid, and is then recirculated to the first of the components to be cooled in the sequence.
5. A transmission as claimed in any one of the preceding claims, wherein said motor is an electric motor.
6. A transmission as claimed in any one of the preceding claims, said transmission being one which is adapted for driving the chain or chains of an armoured face conveyor in a coal mine.
7. A transmission as claimed in any one of the preceding claims, wherein it is arranged for the cooling liquid to flow through a jacket associated with the motor.
flow through the interior of tubing formed as a framework and so associated with the fluid coupling as to be in heat-exchange relation with respect thereto.
8. A transmission as claimed in any one of the preceding claims, wherein said framework of tubing comprises a single tube which is so shaped as to form at least two axially-spaced-apart portions which are substantially of ring-shape.
9. A transmission as claimed in Claim 8, wherein one end portion of said tube forms a liquid inlet and the other end portion of the tube forms a liquid outlet, the tube being so shaped at a suitable portion or portions thereof as at least to assist in affording the axial spacing of said substantially ring-shaped portions.
10. A transmission as claimed in Claim 9, wherein the external surface of the single tube carries cooling fins.
11. A transmission as claimed in Claim 10, wherein said fins are spirally wound.
12. A transmission as claimed in any one of Claims 1 to 7, wherein said framework includes at least two ring members, formed of tubing, whose centres lie on the longitudinal axis of the fluid coupling, or substantially so.
13. A transmission as claimed in Claim 12, wherein said ring members are axially spaced apart and connected together by a plurality of joining tubes.
14. A transmission as claimed in Claim 13, wherein the joining tubes are closelyspaced circumferentially of the ring members, and their interiors open into the interiors of the ring members.
15. A transmission as claimed in either Claim 13 or Claim 14, wherein said joining tubes are so shaped and so joined to said ring members that each joining tube projects inwardly from one of said ring members towards said fluid coupling for part of its length and for the remainder of its length is directed away from said coupling to join with the adjacent ring member.
16. A transmission as claimed in any one of Claims 13 to 15, wherein said joining tubes are curved in shape and are substantially radially-disposed with respect to said longitudinal axis.
17. A transmission as claimed in Claim 16, wherein alternate joining tubes project further towards said fluid coupling than the other joining tubes.
18. A transmission as claimed in any one of the preceding claims, wherein a guard member is provided around the fluid coupling and spaced therefrom, said framework being disposed in the space formed between the guard member and the fluid coupling.
19. A transmission as claimed in any one of the preceding claims, wherein it is arranged for said cooling liquid to flow through a finned tube or tubes associated with the gear box.
20. A power transmission substantially as hereinbefore particularly described with reference to Figures 1 to 4 of the accompanying drawings.
21. A power transmission substantially as hereinbefore particularly described with
**WARNING** end of DESC field may overlap start of CLMS **.

Claims (21)

**WARNING** start of CLMS field may overlap end of DESC **. described the cooling liquid is water, in other embodiments other cooling liquids may with advantage be used. In yet other embodiments the liquid, having flowed as described to the three components of the power transmission in the desired sequence, may then be used for another purpose, or, where the liquid supply is plentiful, it may be allowed to run to waste. Such flow to waste may be by way of a heater. A power transmission in accordance with the invention enables a "fixed-fill" fluid coupling to be used which is of a lower power rating, and hence of smaller size, than would be otherwise possible, and so allows a more compact power transmission to be provided. WHAT WE CLAIM IS:
1. A power transmission including a motor, a "fixed-fill" fluid coupling (as hereinbefore defined), and a gear box, at least the "fixed-fill" fluid coupling of which is liquid cooled, tubing being provided which is formed as a framework and which is so associated with the fluid coupling that cooling liquid caused to pass through the interior of the tubing is brought into heatexchange relation with respect to said fluid coupling.
2. A transmission as claimed in Claim 1, wherein all three of the components of the transmission are liquid cooled.
3. A transmission as claimed in Claim 2, wherein it is arranged for the liquid used for cooling said three components to flow thereto in a desired sequence.
4. A transmission as claimed in Claim 3, wherein said liquid, having so flowed to said three components, is then passed through a heat-exchange device, which cools the liquid, and is then recirculated to the first of the components to be cooled in the sequence.
5. A transmission as claimed in any one of the preceding claims, wherein said motor is an electric motor.
6. A transmission as claimed in any one of the preceding claims, said transmission being one which is adapted for driving the chain or chains of an armoured face conveyor in a coal mine.
7. A transmission as claimed in any one of the preceding claims, wherein it is arranged for the cooling liquid to flow through a jacket associated with the motor.
flow through the interior of tubing formed as a framework and so associated with the fluid coupling as to be in heat-exchange relation with respect thereto.
8. A transmission as claimed in any one of the preceding claims, wherein said framework of tubing comprises a single tube which is so shaped as to form at least two axially-spaced-apart portions which are substantially of ring-shape.
9. A transmission as claimed in Claim 8, wherein one end portion of said tube forms a liquid inlet and the other end portion of the tube forms a liquid outlet, the tube being so shaped at a suitable portion or portions thereof as at least to assist in affording the axial spacing of said substantially ring-shaped portions.
10. A transmission as claimed in Claim 9, wherein the external surface of the single tube carries cooling fins.
11. A transmission as claimed in Claim 10, wherein said fins are spirally wound.
12. A transmission as claimed in any one of Claims 1 to 7, wherein said framework includes at least two ring members, formed of tubing, whose centres lie on the longitudinal axis of the fluid coupling, or substantially so.
13. A transmission as claimed in Claim 12, wherein said ring members are axially spaced apart and connected together by a plurality of joining tubes.
14. A transmission as claimed in Claim 13, wherein the joining tubes are closelyspaced circumferentially of the ring members, and their interiors open into the interiors of the ring members.
15. A transmission as claimed in either Claim 13 or Claim 14, wherein said joining tubes are so shaped and so joined to said ring members that each joining tube projects inwardly from one of said ring members towards said fluid coupling for part of its length and for the remainder of its length is directed away from said coupling to join with the adjacent ring member.
16. A transmission as claimed in any one of Claims 13 to 15, wherein said joining tubes are curved in shape and are substantially radially-disposed with respect to said longitudinal axis.
17. A transmission as claimed in Claim 16, wherein alternate joining tubes project further towards said fluid coupling than the other joining tubes.
18. A transmission as claimed in any one of the preceding claims, wherein a guard member is provided around the fluid coupling and spaced therefrom, said framework being disposed in the space formed between the guard member and the fluid coupling.
19. A transmission as claimed in any one of the preceding claims, wherein it is arranged for said cooling liquid to flow through a finned tube or tubes associated with the gear box.
20. A power transmission substantially as hereinbefore particularly described with reference to Figures 1 to 4 of the accompanying drawings.
21. A power transmission substantially as hereinbefore particularly described with
reference to Figures 5 and 6 of the accompanying drawings.
GB24683/77A 1977-06-14 1977-06-14 Power transmission Expired GB1600983A (en)

Priority Applications (5)

Application Number Priority Date Filing Date Title
GB24683/77A GB1600983A (en) 1977-06-14 1977-06-14 Power transmission
ZA00783390A ZA783390B (en) 1977-06-14 1978-06-13 Power transmission
DE19782825813 DE2825813A1 (en) 1977-06-14 1978-06-13 POWER SHIFT TRANSMISSION
AU37060/78A AU3706078A (en) 1977-06-14 1978-06-13 Liquid cooling of power transmission package
US05/915,294 US4198819A (en) 1977-06-14 1978-06-13 Power transmission

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
GB24683/77A GB1600983A (en) 1977-06-14 1977-06-14 Power transmission

Publications (1)

Publication Number Publication Date
GB1600983A true GB1600983A (en) 1981-10-21

Family

ID=10215639

Family Applications (1)

Application Number Title Priority Date Filing Date
GB24683/77A Expired GB1600983A (en) 1977-06-14 1977-06-14 Power transmission

Country Status (2)

Country Link
GB (1) GB1600983A (en)
ZA (1) ZA783390B (en)

Also Published As

Publication number Publication date
ZA783390B (en) 1979-07-25

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Legal Events

Date Code Title Description
PS Patent sealed [section 19, patents act 1949]
PCNP Patent ceased through non-payment of renewal fee