Liquid Piston Gas Compressor for Ultra-High Pressure Efficiency

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Solution Overview

Problem

Conventional reciprocating positive-displacement compressors become less efficient at high pressures due to clearance volume, leading to lost pressure energy and inefficiencies in ultra-high pressure gas compression.

Innovation Solution

The development of liquid piston gas compression systems that utilize a liquid piston to compress gas directly, with integrated features like pressure intensifiers, eductors, and cooling mechanisms to manage pressure and heat transfer, allowing for efficient compression up to 100,000 psig.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Productivity

If conventional reciprocating positive-displacement compressors are used, then gas compression is achieved, but efficiency decreases at ultra-high pressures due to clearance volume losses

Engineering Contradiction:
Improvecompression efficiencyVSAvoidpressure energy loss
Core Design Contradiction:
ProductivityVSLoss of energy

Solution Approach 1:

The patent applies hydraulic principles by using a liquid piston instead of a gas piston to compress the gas directly. The liquid piston is incompressible, eliminating clearance volume losses and achieving zero-clearance compression. This hydraulic approach allows the liquid to transmit pressure uniformly and maintain contact with the gas throughout the compression stroke, resolving the efficiency degradation issue at ultra-high pressures.

Inventive Principle:
Principle #29Pneumatics and hydraulics

Solution Approach 2:

The liquid piston serves as an intermediary between the mechanical drive system and the gas being compressed. It transfers mechanical energy to the gas through direct contact while maintaining a seal without clearance gaps. This intermediary liquid medium eliminates the clearance volume problem that plagues conventional gas-piston compressors, enabling efficient ultra-high pressure compression.

Inventive Principle:
Principle #24Intermediary (Mediator)

2Productivity

If multiple stages of compression are used to achieve ultra-high pressures, then compression efficiency is maintained through interstage cooling, but device complexity increases

Engineering Contradiction:
Improvecompression efficiencyVSAvoidnumber of compression stages
Core Design Contradiction:
ProductivityVSDevice complexity

Solution Approach 1:

The liquid piston compressor uses the incompressible nature of liquid to achieve continuous contact with the gas throughout the compression stroke, eliminating clearance losses without requiring multiple stages. The liquid can be directly pumped to ultra-high pressures and transferred to the compression chamber, enabling single-stage or reduced multi-stage compression compared to conventional systems.

Inventive Principle:
Principle #29Pneumatics and hydraulics

Solution Approach 2:

The invention changes the physical state parameter of the piston from gas to liquid, fundamentally altering the compression mechanism. This parameter change allows the piston to maintain constant volume during compression, eliminating the need for complex multi-stage systems with interstage cooling and gas ballast management.

Inventive Principle:
Principle #35Parameter changes

3Reliability

If solid pistons with lubrication are used, then sealing is achieved, but lubricant entrainment in compressed gas requires additional removal equipment

Engineering Contradiction:
Improveseal reliabilityVSAvoidoil removal means
Core Design Contradiction:
ReliabilityVSDevice complexity

Solution Approach 1:

The system uses a liquid piston that is immiscible with the gas being compressed, eliminating the need for lubrication between piston and cylinder walls. The liquid piston itself provides the sealing function without requiring additional lubricants, thereby preventing lubricant entrainment in the compressed gas and eliminating the need for oil removal equipment.

Inventive Principle:
Principle #29Pneumatics and hydraulics

Solution Approach 2:

The invention extracts the lubrication function from the sealing mechanism by using the liquid piston itself as both the sealing medium and the compression medium. This separation eliminates the harmful side effect of lubricant contamination while maintaining reliable sealing through the liquid-gas interface.

Inventive Principle:
Principle #2Taking out (Extraction)

Applied Scientific Principles

This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.

Function Achieved in This Case

This approach minimizes clearance volume issues, maintains efficiency at high pressures, and effectively compresses gases to ultra-high pressures with improved energy utilization and reduced gas loss, enhancing the performance of gas compression systems.

Implementation Method 1

a liquid is pumped into a cylinder to compress gas therein by direct contact between the moving liquid and the gas being compressed

Methodology Applied
Scientific EffectDirect contact compression:

Implementation Method 2

Gas compression requires cooling to remove heat of compression, which may be achieved by interstage cooling between multiple stages of compression

Methodology Applied
Scientific EffectHeat transfer: Heat Exchanger

Data Source

PatentUS7488159B2Zero-clearance ultra-high-pressure gas compressor
Publication Date: 2009.02.10 AIR PROD & CHEM INC
  • US7488159B2 patent drawing
  • US7488159B2 patent drawing
  • US7488159B2 patent drawing

AI summary

Gas compression system comprising a compression cylinder having a gas inlet, a compressed gas outlet, and one or more liquid transfer ports; a pump having a suction and a discharge; and a compressor liquid. The system also includes any of the following: a pressure intensifier having an inlet in flow communication with the pump and an outlet in flow communication with the compression cylinder; a feed eductor in flow communication with the discharge of the pump, with a reservoir containing a portion of the compressor liquid, and with the compression cylinder; a drain eductor in flow communication with the discharge of the pump, with the compression cylinder, and with a reservoir containing a portion of the compressor liquid; and a variable-volume compressor liquid accumulator in flow communication with the discharge of the pump.