CHARGE AIR COOLER
20220026158 · 2022-01-27
Assignee
Inventors
- Dawid Szostek (Skawina, PL)
- Grzegorz Romanski (Kraków, PL)
- Dariusz Burek (Skawina, PL)
- Lukasz Kania (Skawina, PL)
Cpc classification
F28D2021/0082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0062
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0093
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D9/0056
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A charge air cooler comprising: a first heat exchange section comprising a first inlet manifold and a first outlet manifold connected fluidically by a plurality of stacked first coolant conduits; a second heat exchange section comprising a second inlet manifold and a second outlet manifold connected fluidically by a plurality of stacked second coolant conduits; a coolant inlet connected fluidically with the first inlet manifold and the second inlet manifold; a coolant outlet connected fluidically with the first outlet manifold and the second outlet manifold; wherein the first coolant conduits and the second coolant conduits are distanced within their stacks so that heat exchange between the coolant and the air is enabled, and are both situated between the manifolds of the first heat exchange section and the manifolds of the second heat exchange section.
Claims
1. A charge air cooler comprising: a first heat exchange section comprising a first inlet manifold and a first outlet manifold connected fluidically by a plurality of stacked first coolant conduits; a second heat exchange section comprising a second inlet manifold and a second outlet manifold connected fluidically by a plurality of stacked second coolant conduits; a coolant inlet connected fluidically with the first inlet manifold and the second inlet manifold; and a coolant outlet 32 connected fluidically with the first outlet manifold and the second outlet manifold, wherein the first coolant conduits and the second coolant conduits are distanced within their stacks so that heat exchange between the coolant and the air is enabled, and are both situated between the manifolds of the first heat exchange section and the manifolds of the second heat exchange section.
2. The charge air cooler according to claim 1, wherein the first coolant conduits and the second coolant conduits are carried out in form of plate assemblies.
3. The charge air cooler according to claim 2, wherein the plate assembly comprises two plates with shaped channels, wherein the plates face each other back sides so that their shaped channels form together the first coolant conduits and the second coolant conduits, the first and second coolant conduits being separated from each other.
4. The charge air cooler according to claim 3, wherein the first and second coolant conduits are fluidically connected by an exchange channel, paved along the first and second coolant conduits.
5. The charge air cooler according to claim 1, wherein the manifolds are formed by connecting protrusions protruding from the plates.
6. The charge air cooler according to claim 1, further comprising a distribution assembly configured to fluidically connect the coolant inlet and the coolant outlet with respective inlet manifolds and outlet manifolds.
7. The charge air cooler according to claim 6, wherein the distribution assembly is stacked onto a flat plate.
8. The charge air cooler according to claim 6, wherein the distribution assembly is stacked onto a terminal plate assembly.
9. The charge air cooler according to claim 7, wherein the distribution assembly comprises a shaped plate with shaped channels for guiding the coolant.
10. The charge air cooler according to claim 6, wherein the distribution assembly comprises guiding channels connecting fluidically the inlet with the inlet manifolds, and the outlet manifolds with the outlet, through cavities made on the flat plate and overlaying the respective manifolds.
11. The charge air cooler according to claim 1, further comprising a first distribution assembly configured to fluidically connect the coolant inlet with respective inlet manifolds and a second distribution assembly configured to fluidically connect the coolant outlet with respective outlet manifolds, wherein the first distribution assembly 40 is arranged on the first side of the coolant conduit stacks, and the second distribution assembly is arranged on the second side of the coolant conduit stacks, opposite the first side.
12. The charge air cooler according to claim 1, wherein at least one of the inlet and the outlet is situated between the inlet and outlet manifolds.
13. The charge air cooler according to claim 1, wherein both the inlet and the outlet are situated between the inlet and outlet manifolds.
14. The charge air cooler according to claim 1, wherein at least the inlet or the outlet is situated in the middle between the inlet and outlet manifolds.
15. The charge air cooler according to claim 1, wherein both the inlet and the outlet are situated in the middle between the inlet and outlet manifolds.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0025] Examples of the invention will be apparent from and described in detail with reference to the accompanying drawings, in which:
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF EMBODIMENTS
[0032] Embodiments of the invention comprise a water charge air cooler 1 with two separate coolant circulation paths further called sections. Providing more than one path of circulation for the coolant increases efficiency of water charge air cooler, as the heat exchange is facilitated. Moreover, distribution of fluid (coolant) presented in embodiments significantly decreases pressure loses (referred to as the “pressure drop”) measured on the outlet of the charge air cooler.
[0033]
[0034] The inlet manifolds 11 and 21 are configured to supply coolant to the first conduits 13 and second conduits 23, whereas the outlet manifolds 12, 22 are configured to collect coolant from first conduits 13 and second conduits 23. The advantage of this solution is a possibility of maintaining water charge air cooler 1 operation even if one of the cooling path gets blocked or clogged up. It reduces a possibility of engine malfunction or overly reduced performance, due to hot air entering the air intake manifold.
[0035]
[0036]
[0037] The first coolant conduits 13 and the second coolant conduits 23 are connected both mechanically and fluidically with the distribution assembly 40, enabling circulation of the coolant throughout the full volume of the charge air cooler 1.
[0038]
[0039]
[0040]
[0041] Preferable positioning of coolant inlet 31 and coolant outlet 32 is between manifolds, for example in the middle of plate assemblies 50. Other positions can also be selected, depending on demanded coolant inlet 31 and coolant outlet 32 configuration and position of charge air cooler 1 in the engine bay. What follows from both examples is a flexibility in terms of placement of coolant inlet and outlet. One should take into consideration a fact that presented structure of water charge air cooler 1 allows proper functionality and heat exchange regardless of coolant circulation direction.
[0042] Possible embodiments of water charge air cooler with specific distribution assembly 40 gives a lot of flexibility with respect to production process. Further, manifolds are located at the sides of the charge air cooler 1 core, thereby allowing the air flow substantially through the whole volume of charge air cooler 1.
[0043] It is also envisaged that the charge air cooler comprises a second distribution assembly 40 instead of the closing plate 57. In such example, the first distribution assembly 40 comprises the inlet for the coolant, and the second distribution assembly 40 comprises the outlet for the coolant, with guiding channels for the coolant in the distribution removed for the missing components. Consequently, the air flow is enabled between the distribution assemblies and between the manifolds at the same time. Such design would increase flexibility in terms of inlet/outlet placement.
[0044] Other variations to the disclosed embodiments can be understood and effected by those skilled in the art in practicing the claimed invention, from a study of drawings, the disclosure, and the appended claims. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measures cannot be used to the advantage.