Simultaneous optimization of fuel energy, site OPEX, waste heat recovery and dirty water treatment
Embodiments of the present disclosure relate generally to a system for simultaneous optimization of fuel energy, site Opex costs, waste heat recovery and the coincidental cleaning and treatment of dirty water. The system can include a waste heat source that generates waste heat. The system can include a hydrocyclone coupled with the waste heat source, wherein the waste heat is injected into the hydrocyclone.
1. A system comprising:
a waste heat source that generates waste heat; and
a hydrocyclone coupled with the waste heat source, wherein the waste heat is injected into the hydrocyclone, followed by a cyclonic separator and wherein the hydrocyclone is cylindrical having a circular cross-section over a length, the length being from an injection point of the waste heat source to an exit point of the hydrocyclone at an entry point of the cyclonic separator, and a diameter of the hydrocyclone circular cross-section increases over a length of the hydrocyclone.
2. The system of claim 1 , wherein the waste heat source is at least one of a turbine, internal combustion engine, consistent heat source, and a manufacturing plant.
3. The system of claim 1 , wherein an exhaust blower is disposed downstream of the hydrocyclone and is used to reduce a pressure in the hydrocyclone.
4. The system of claim 1 , wherein the waste heat is distributed through a manifold and two or more ducting systems.
5. The system of claim 1 , wherein the dirty water is processed into at least one of a concentrated brine or further processed into a Zero Liquid Discharge and particle separation system.
6. The system of claim 1 , wherein a hydrocyclone flow of the hydrocyclone is concurrent or counterflow to a stream of the waste heat.
7. A system comprising:
a waste heat source that generates waste heat;
a dirty water injection system made up of one or more orifices, wherein the dirty water injection system injects the dirty water into the waste heat; and
a hydrocyclone coupled with the waste heat source, wherein the waste heat is injected into the hydrocyclone, followed by a cyclonic separator and wherein the hydrocyclone is cylindrical having a circular cross-section over a length, the length being from an injection point of the waste heat to an exit point of the hydrocyclone at an entry point of the cyclonic separator, and a diameter of the hydrocyclone circular cross-section increases over a length of the hydrocyclone.
8. A system comprising:
a waste heat source that generates waste heat;
a dirty water injection system that includes one or more orifices; and
a hydrocyclone coupled with the waste heat source, wherein the waste heat is injected into the hydrocyclone, followed by a cyclonic separator and the dirty water injection system is configured to inject the dirty water into the hydrocyclone, and wherein the hydrocyclone is cylindrical having a circular cross-section over a length, the length being from an injection point of the waste heat to an exit point of the hydrocyclone at an entry point of the cyclonic separator, and a diameter of the hydrocyclone circular cross-section increases over a length of the hydrocyclone.