Packaged engine working machine
09644853 ยท 2017-05-09
Assignee
Inventors
Cpc classification
F01P1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F7/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B63/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24F7/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F7/007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01P1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
There is provided a packaged engine working machine including, in a lower space of a package an electrical component storage box adapted to be impervious to heat from the engine and intrusion of dust or the like. In a packaged engine working machine in which an engine and a working machine driven by the engine are disposed in a lower space of a package, a storage box for storing a non-heat-generating electrical component included in electrical components for the engine and working machine, and a ventilation duct having a ventilation fan for sucking outside air into the lower space are each disposed in the lower space, and the packaged engine working machine includes an introduction path through which the ventilation duct and the storage box are communicated with each other, and the outside air sucked by the ventilation fan is partially guided into the storage box.
Claims
1. A packaged engine working machine in which an engine and a working machine driven by the engine are disposed in a lower space of a package, wherein a storage box for storing a non-heat-generating electrical component included in electrical components for the engine and working machine, and a ventilation duct comprising a ventilation fan for sucking outside air into the lower space are each disposed in the lower space, and wherein an inner space of the storage box is hermetically sealed by interposing a sealing member for gaps of a plurality of internal wiring holes, a plurality of external wiring holes and various screw attachment holes provided in wall surfaces constituting the storage box, and the storage box and the ventilation duct are connected to each other by interposing a hermetical seal between the storage box and a communication pipe which connects the storage box with the ventilation duct, thus allowing the lower space and the inner space of the storage box to have equal positive pressure.
2. The packaged engine working machine according to claim 1, wherein an underfloor space provided below the lower space comprises: an upper floor plate provided with a plurality of vent holes; and a lower floor plate disposed in parallel with the upper floor plate at a distance therefrom.
3. The packaged engine working machine according to claim 1, wherein the non-heat-generating electrical component is at least one of a terminal block, a relay, a fuse and a breaker.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
DESCRIPTION OF EMBODIMENTS
(12) Hereinafter, a cogeneration apparatus 1 serving as a packaged engine working machine according to one embodiment of the present invention will be described in detail with reference to
(13) As illustrated in
(14) As illustrated in
(15) As illustrated in
(16) The above-mentioned water-water heat exchanger 21 and exhaust gas heat exchanger 22 serve to produce warm water by utilizing heat generated from the engine 5. As illustrated in
(17) The storage box 50 illustrated in
(18) As illustrated in
(19) Next, referring to
(20) As illustrated in
(21) As illustrated in
(22) As illustrated in
(23) As illustrated in
(24) The communication pipe 48 extending vertically is provided between the storage box 50 and the double floor structure 40 so as to be located on a front side of a left end of the lower space 4. An upper end portion of the communication pipe 48 is connected to the ventilation connection end 57 of the storage box 50 in a hermetic state, and a lower end portion of the communication pipe 48 is connected to the ventilation connection end 43 of the upper floor plate 41a in a hermetic state. Accordingly, an intra-pipe path P2 leading to the storage box 50 from the lower end portion of the communication pipe 48 is also kept in a hermetic state. As a result, inner spaces of both of the storage box 50 and the communication pipe 48 can be kept in a hermetic state.
(25) Next, how outside air A taken in from the ventilation intake port 39a by the ventilation fan 7 flows through the lower space 4 and the upper space 3 of the package 2 will be described.
(26) Specifically, the outside air A taken in from the ventilation intake port 39a flows through the ventilation duct 60, i.e., through the intake opening 61, the ventilation fan 7 and the discharge opening 62 of the ventilation duct 60 in this order, and then reaches the underfloor space 41. The outside air A is introduced into the underfloor space 41 from the vent opening 42, and most of the outside air A is diverted as a cooling diverted flow B for cooling the engine 5 and the generator 6, etc. Then, the cooling diverted flow B having a positive pressure flows out from the plurality of vent holes 46 while being dispersed. The cooling diverted flow B, which has flowed out from the plurality of vent holes 46, cools the engine 5 and the generator 6, etc., while flowing upward, and is collected into the air vent 37. The cooling diverted flow B flows into the device storage chamber 38 of the upper space 3 from the air vent 37, and is discharged to the outside space from the ventilation exhaust port 39b.
(27) The remainder of the outside air A which has gone past the downstream vent holes 46 is diverted as a positive pressure diverted flow C flowing into the storage box 50. The positive pressure diverted flow C flows through a downstream region of the underfloor space 41 to reach the ventilation connection end 43. The positive pressure diverted flow C is introduced into the communication pipe 48 from the vent opening 49, and flows upward through the communication pipe 48 to reach the ventilation connection end 57; then, the positive pressure diverted flow C is introduced into the storage box 50, thus allowing the inside of the storage box 50 to have a positive pressure. Specifically, the positive pressure diverted flow C is introduced into the storage box 50 along an introduction path P including an underfloor path P1 extending from the most upstream vent hole 46 to the ventilation connection end 43 inside the underfloor space 41 and the intra-pipe path P2 inside the most downstream communication pipe 48, thus allowing the inside of the storage box 50 to have a positive pressure.
(28) In view of pressure loss or the like in various regions, opening sizes of the vent holes 46, the number thereof, and an inner diameter of the communication pipe 48, etc., are appropriately decided so that the cooling diverted flow B and the positive pressure diverted flow C have equal positive pressures. In the description concerning the positive pressure diverted flow C, the expression the positive pressure diverted flow C flows is used for the sake of clarity, but in reality, virtually no airflow occurs inside the storage box 50, etc., so that a positive pressure is merely propagated.
(29) In the above-described embodiment, the cooling diverted flow B which has been diverted from the outside air A to cool the engine 5, etc., and has been increased in temperature tries to flow into the storage box 50 through gaps thereof, but the positive pressure diverted flow C having a positive pressure equal to that of the cooling diverted flow B is introduced into the storage box 50 to allow the inside of the storage box 50 to have a positive pressure, thus making it possible to prevent the cooling diverted flow B from flowing into the storage box 50. Therefore, it is possible to prevent waste heat of the engine 5, etc., from being transmitted to the inside of the storage box 50 via the cooling diverted flow B. Furthermore, virtually no airflow occurs between the inside and outside of the storage box 50, thus making it possible to prevent dust or the like contained in the cooling diverted flow B and the positive pressure diverted flow C from getting into the storage box 50.
(30) Next, a cogeneration apparatus 1 according to a variation of the present invention will be described with reference to
(31) In the above-described embodiment, the outside air A flows into the underfloor space 41, and is then diverted as the cooling diverted flow B and the positive pressure diverted flow C along the way. However, in the variation, outside air A1 is diverted as a cooling diverted flow B1 and a positive pressure diverted flow C1 while flowing out from a ventilation duct 60.
(32)
(33) How the outside air A1 taken in from the ventilation intake port 39a by the ventilation fan 7 flows through the lower space 4 and upper space 3 of the package 2 in the cogeneration apparatus 1 illustrated in
(34) The outside air A1 taken in from the ventilation intake port 39a flows through the ventilation duct 60, i.e., through the intake opening 61 and the ventilation fan 7 of the ventilation duct 60 in this order; then, at a region downstream of the ventilation fan 7 inside the ventilation duct 60, the outside air A1 is diverted as the cooling diverted flow B1 flowing to the discharge opening 63 and the positive pressure diverted flow C1 flowing to the discharge opening 62.
(35) Most of the outside air A1 flows out from the discharge opening 63 as the cooling diverted flow B1 for cooling the engine 5 and the generator 6, etc. The cooling diverted flow B1 having a positive pressure cools the engine 5 and the generator 6, etc., while blowing against lower portions thereof and flowing upward. The cooling diverted flow B1 which has cooled the engine 5 and the generator 6, etc., and increased in temperature flows into a device storage chamber 38 of the upper space 3 from an air vent 37, and is then discharged to an outside space from a ventilation exhaust port 39b.
(36) Meanwhile, the remainder of the outside air A1 which has gone past the discharge opening 63 is diverted as the positive pressure diverted flow C1 that will flow into a storage box 50, and reaches the discharge opening 62 while flowing further downstream inside the ventilation duct 60. The positive pressure diverted flow C1 is introduced into the underfloor space 41 from the vent opening 42, and flows through the underfloor space 41 in its longitudinal direction (i.e., from the right to the left in
(37) The positive pressure diverted flow C1 is introduced into a communication pipe 48 from a vent opening 49, and flows upward through the communication pipe 48 to reach a ventilation connection end 57; then, the positive pressure diverted flow C1 is introduced into the storage box 50, thus allowing the inside of the storage box 50 to have a positive pressure. Specifically, the positive pressure diverted flow C1 is introduced into the storage box 50 along an introduction path P including a duct path P5 extending from the discharge opening 63 to the discharge opening 62 inside the ventilation duct 60, an underfloor path P6 extending from the vent opening 42 to the ventilation connection end 43 inside the underfloor space 41, and an intra-pipe path P7 inside the communication pipe 48, thus allowing the inside of the storage box 50 to have a positive pressure. In view of pressure loss or the like in various regions, opening areas of the discharge opening 63 and the vent opening 42 and an inner diameter of the communication pipe 48, etc., are appropriately decided so that the cooling diverted flow B1 and the positive pressure diverted flow C1 have equal positive pressures.
(38) Also in the description concerning the positive pressure diverted flow C1, the expression the positive pressure diverted flow C1 flows is used for the sake of clarity, but in reality, virtually no airflow occurs inside the storage box 50, etc., so that a positive pressure is merely propagated.
(39) Also in the variation, the cooling diverted flow B1 which has been diverted from the outside air A1 to cool the engine 5, etc., and increased in temperature tries to flow into the storage box 50 through gaps thereof, but the positive pressure diverted flow C1 having a positive pressure equal to that of the cooling diverted flow B1 is introduced into the storage box 50 to allow the inside of the storage box 50 to have a positive pressure, thus making it possible to prevent the cooling diverted flow B1 from flowing into the storage box 50. Therefore, it is possible to prevent waste heat of the engine 5, etc., from being transmitted to the inside of the storage box 50 via the cooling diverted flow B. Furthermore, virtually no airflow occurs between the inside and outside of the storage box 50, thus making it possible to prevent dust or the like contained in the cooling diverted flow B1 and the positive pressure diverted flow C1 from getting into the storage box 50.
(40) In the above-described embodiment and variation, outside air sucked by the ventilation fan 7 is passed through the underfloor space 41 provided below the lower space 4 and is introduced into the storage box 50. Alternatively, a communication member (not illustrated) through which the ventilation duct 60 and the storage box 50 are communicated to each other may be disposed in the lower space 4, so that outside air is passed through the communication member and introduced into the storage box 50.
(41) The foregoing embodiment has been described on the assumption that the generator 6 is used as a working machine of the packaged engine working machine 1; however, when the packaged engine working machine 1 serves as an engine heat pump, a compressor is installed instead of the generator 6. Alternatively, both of the generator 6 and compressor may be installed as working machines of the packaged engine working machine 1.
DESCRIPTION OF THE REFERENCE CHARACTERS
(42) 1 cogeneration apparatus (packaged engine working machine) 2 package (housing) 3 upper space 4 lower space 5 engine 6 generator (working machine) 7 ventilation fan 39a ventilation intake port 40 double floor structure 41 underfloor space 48 communication pipe 46 vent hole 50 storage box 53 terminal block (non-heat-generating electrical component) 60 ventilation duct A outside air B cooling diverted flow C positive pressure diverted flow P introduction path