TEVET® · THERMALLY ENHANCED VAPOR EXTRACTION TECHNOLOGY

On-site thermal treatment for drill cuttings & contaminated soil

TEVET® volatilizes petroleum hydrocarbons out of OBM/SBM drill cuttings and contaminated soils on-site — no fixed facility, low capital entry, and for synthetic-based mud, fluid recovered intact for reuse.

1,000 tons
Treated per batch, per cycle
4,000 tons
Max material in active treatment (4 cells)
50,000+
Tonnes treated cumulatively
2016
Taiwan EPA approval obtained
Seven topics, one platform

Explore TEVET®

Click any topic below to view it in full.

01

The Challenge

What TEVET® solves — the contamination problem operators face.

Every OBM/SBM Well Leaves Contamination Behind

5–15%+
Hydrocarbon content by weight in untreated OBM/SBM drill cuttings

Every well drilled with oil-based mud (OBM) or synthetic-based mud (SBM) produces large volumes of drill cuttings coated in drilling fluid — cuttings arrive at surface heavily contaminated with hydrocarbon, sometimes above 15% by weight. Regulations require these cuttings to be treated to acceptable hydrocarbon levels before disposal.

Beyond drill cuttings, decades of oilfield operations, fuel spills, and industrial activity have also left hydrocarbon-contaminated soils across oilfields, military bases, and aviation facilities — the same treatment challenge, in a different setting. TEVET® treats both by exactly the same thermal desorption process: the matrix is the same, sand, clay, and rock coated with hydrocarbons.

02

The Platform

An integrated engineering platform: eight coordinated systems, not one piece of equipment.

An Integrated Engineering Platform, Not a Piece of Equipment

TEVET® is a platform, not a pile, a trailer, or a burner. It integrates thermal energy generation, process air management, engineered treatment reactor construction, vapor collection, vapor treatment, monitoring & control, and analytical verification into one coordinated treatment platform.

TEVET Platform Diagram

Thermal Energy

Diesel, propane, or LPG-fired burner and heat exchanger deliver controlled process heat.

Process Air

Blower and air control manage engineered airflow through the reactor.

Treatment Reactor

Engineered soil lifts, distribution piping, and liner form the treatment pile.

Vapor Collection

Extraction piping draws contaminant vapors from the treatment reactor.

Fluid Recovery

Laden air leaving the treatment pile is cooled through a recovery heat exchanger, then passed through a condenser to recover petroleum fluids.

Vapor Treatment

Knock-out box, condensate filter separator, and carbon units condition and treat vapor.

Monitoring & Control

Continuous temperature and process monitoring support stable operation.

Analytical Verification

Sampling and independent laboratory analysis confirm treatment objectives are met.

Performance results from the interaction of eight engineering systems — not reliance on a single equipment item.

03

The Technology & How It Works

The build/treat/destroy-or-recover process, and what happens inside the treatment cell.

THE TECHNOLOGY — One process, every matrix

TEVET® is Hilltop's proprietary thermal treatment platform for petroleum hydrocarbon and chlorinated-solvent contaminated solid matrices. Precisely controlled heated air volatilizes hydrocarbons out of the solid matrix — no special permanent facility required.

01 Build Step
01

Build

Contaminated drill cuttings or soil are placed in a treatment cell over an impermeable liner — no special permanent facility required. Injection and vapor-recovery piping is installed through the pile.

02 Treat Step
02

Treat

Heated air is passed through the material at controlled temperature and airflow. The heat volatilizes petroleum hydrocarbons bound in the solid matrix.

03 Destroy or Recover Step
03

Destroy or Recover

Vapors are collected and thermally destroyed in a high-temperature combustion unit — or, where conditions allow, condensed and the fluid recovered for reuse.

On-Site & Mobile No Fixed Facility Required Modular Deployment Same Process: Soil or Cuttings

HOW IT WORKS — Inside the treatment cell

Heated air enters the pile through the injection manifold at a temperature independently controlled for the material being treated; hydrocarbon vapor drawn out through the extraction manifold passes through the knock-out box, heat exchanger, and condensate filter separator before being destroyed in the burner unit at ~1,000°C — a distinct, hotter zone from the pile itself — or polished through carbon units.

Inside the Treatment Cell Diagram

Core system components

  • Impermeable liner & treatment cell
  • Air distribution piping (injection manifold)
  • Vapor recovery piping (extraction manifold)
  • Ingress & egress air blowers (~3,000 CFM)
  • Heat exchanger & condensate system
  • Burn chamber — diesel, propane, or LPG-fired
  • Catalytic reactor bank
  • Mobile power & control skid
~1,000°C
Burn chamber — where extracted vapors are thermally destroyed. A separate, hotter zone from the pile itself.
<200–250°C
Heated air injected into the pile itself — independently controlled, and for SBM kept below the fluid's degradation threshold. OBM piles can run hotter.
90% / 10%
Air recirculated for energy efficiency / catalytic-polished before atmospheric discharge
04

Field-Proven

Watch the full deployment video and see the process built, sealed, and operated on-site.

Built, Sealed, and Operated in the Field

05

Economics

Why fluid recovery matters — the OBM vs. SBM cost case.

Why Fluid Recovery Matters

Oil-Based Mud (OBM)

Petroleum-based oil as the continuous fluid phase. TEVET® recovers the base oil from OBM cuttings — commercial value that can be reused in the drilling fluid system, reducing fluid purchase costs.

Synthetic-Based Mud (SBM)

An engineered synthetic fluid used in technically demanding wells — deep, deviated, HPHT — where it can be a significant share of total drilling-fluid cost. Conventional high-heat systems destroy it above ~200–250°C. TEVET®'s precise temperature control stays below that threshold, recovering SBM fluid intact.

TEVET® recovers SBM fluid intact — a cost-reduction argument independent of environmental compliance.
06

Competitive Position

TEVET® vs. conventional direct and indirect thermal desorption.

TEVET® vs. Conventional Thermal Desorption

CRITERION DIRECT TD INDIRECT TD TEVET®
Capital cost Multi-million $, fixed infrastructure Multi-million $, fixed infrastructure Low — modular, no fixed facility at startup
Deployment model Fixed facility only Fixed facility only Mobile field-deployable or centralized
Mechanical complexity High — rotating drum, frequent maintenance High — screw/paddle conveyors, similar wear Minimal — no moving parts in material contact
Operator requirements Continuous — constant intervention Continuous — similar monitoring Periodic — scheduled checks only
SBM fluid recovery Not possible — heat destroys fluid Possible, but complex Precise control — fluid recovered intact
Treated output Clean solids; hydrocarbons destroyed Clean solids; hydrocarbons may be recovered Clean solids + oil/fluid recovered
07

Track Record

Verified performance data and our Treat Until Clean guarantee.

Proven, Verified, Guaranteed

97.1%
DRO reduction — Hassi Messaoud OBM cuttings (6.7%→0.19%)
98.2%
DRO reduction — Berkine Basin OBM cuttings (9.3%→0.17%)
2016
Taiwan EPA approval obtained
50,000+
Tonnes treated cumulatively across deployments

Independent bench-scale studies conducted by Dane M. Tanner Consulting using EPA SW-846 Method 8015M; both results well below the 1.0% remediation goal.

Verified Site Data

Independent laboratory-confirmed results from TEVET® treatment at three U.S. sites, each brought from heavily elevated volatile organic compound and chlorinated solvent concentrations down to regulatory cleanup standards.

Pennsylvania
Revere Chemical Superfund Site
Cleanup criteria: VOCs < 170 ppb, Chlorinated Solvents < 10 ppb
Volatile Beginning Ending
VOCs > 10,000 ppm < 170 ppb
Chlorinated Solvents > 500 ppm < 10 ppb
Rhode Island
Remediation Site
Cleanup criteria: TCE – 100 ppb & PCE – 100 ppb
Volatile Beginning Ending
1,1,1 Trichloroethane 4,160 ppm N/D – 100 ppb
Trichloroethylene 1,310 ppm N/D – 100 ppb
Tetrachloroethene 550 ppm N/D – 100 ppb
New Jersey
Upland Superfund Site
Cleanup criteria: Chlorinated Solvents < 100 ppb
Volatile Beginning Ending
VOCs > 10,000 ppm < 100 ppb
Chlorinated Solvents 3,000 ppm < 100 ppb

ppm = parts per million • ppb = parts per billion • N/D = not detected

Our Treat Until Clean Guarantee

We keep treating the pile until required levels are met, or there's no charge for that pile.

Ready to see TEVET® on your site?