A medical kit is a doctrine wearing a nylon pouch. The contents follow from the doctrine, not the other way around. The standard prepper kit list — "buy these 20 items, you're set" — fails because it skips the doctrine and goes straight to the shopping list. This brief works the other direction: the CoTCCC MARCH framework drives the kit, the kit drives the training, and the training drives the outcome. By the end, the operator has a build pattern that scales from a pocket carry to a vehicle kit to a household to a mass-casualty event, and every item earns its space.
This is Field Brief 05 from MED-TAC's Prepper & Survival Med series. It builds on the antibiotic doctrine in Field Brief 01 and the medicine cabinet rebuild in Field Brief 04 by moving the conversation from drugs to equipment — what's in the bag, why, and what kills the patient if it isn't.
Section 01The Equipment Problem — Why 20-Item Lists Fail
Walk into any survival forum and you'll find the same kit list copy-pasted across a hundred posts: tourniquet, pressure dressing, gauze, scissors, gloves, tape, Israeli bandage, chest seal, Sharpie, mylar blanket, NPA, lube, decompression needle, splint, cravats, Quikclot, betadine, antiseptic wipes, eyewash, burn gel. The list is half-right. It's also operationally useless without three things that lists never include: the framework that organizes the kit, the doctrine that explains when to reach for which item, and the training that turns the bag into a saved life.
The failure mode is not in the items. Tourniquets are real. Hemostatic gauze is real. Chest seals are real. The failure mode is treating the list as the deliverable. A household with a $400 kit and zero training is worse off than a household with a $80 kit and a written algorithm — because the $400 kit creates the illusion of readiness while the $80 kit and the algorithm produces correct decisions under stress.
The other failure mode is buying down the price. The standard prepper-marketplace equivalent of "fish antibiotics" is the unbranded $25 IFAK from a generic seller — a nylon pouch with a non-CoTCCC tourniquet, generic gauze sold as "hemostatic," a chest seal of uncertain provenance, and a printed card listing items with no doctrine attached. The cheap kit isn't cheap because of efficient sourcing. It's cheap because the components don't meet the standards the legitimate components do. We'll get to the specific failure modes in Section 09.
The right starting point is the framework that organizes everything else: MARCH.
Section 02The MARCH Framework — Doctrine Behind the Kit
MARCH is the CoTCCC-recommended trauma assessment and intervention algorithm — adopted by the U.S. military across all services, exported into civilian tactical medicine, and validated through twenty-plus years of combat trauma data. It works because it sequences interventions in the order that matches the rate at which patients die.
- M — Massive hemorrhage. Uncontrolled extremity and junctional bleeding kills patients in minutes. It is the single largest cause of preventable battlefield death and a leading cause of preventable civilian trauma death. It comes first because nothing else matters if the patient exsanguinates.
- A — Airway. A patient with a patent airway has minutes. A patient without one has seconds. After hemorrhage is controlled, airway is the next time-critical step.
- R — Respirations. Tension pneumothorax, open chest wounds, and respiratory failure are the next-tier killers. The interventions are time-sensitive but downstream of hemorrhage and airway.
- C — Circulation. Volume status, IV/IO access, perfusion assessment. Once the patient has stopped bleeding, can breathe, and has an airway, circulation management keeps them alive long enough to reach definitive care.
- H — Hypothermia (and Head injury). Trauma patients lose heat fast, and hypothermia drives the trauma triad of death (hypothermia, acidosis, coagulopathy). Heat preservation is not optional; it is part of resuscitation. The H also captures head-injury management — neuroprotective measures, airway control, position.
Every piece of equipment in a proper kit maps to a letter. If an item doesn't have a MARCH assignment, it doesn't earn cabinet space. That single discipline strips the kit down to what matters and reveals the gaps in the standard prepper list.
The doctrine matters operationally for a second reason: under stress, the operator does not have time to invent a sequence. MARCH is the sequence. It is taught the same way, practiced the same way, and applied the same way across military, EMS, and civilian tactical-medicine programs. When the patient is bleeding out, MARCH is the script. The kit makes the script executable.
Section 03M — Massive Hemorrhage Control
This is where the kit earns its place or it doesn't. The first sixty seconds after major hemorrhage are everything. The equipment is small, specific, and irreplaceable.
Tourniquets — extremity arterial hemorrhage
Mechanism: Mechanical occlusion of arterial flow by circumferential compression at a pressure exceeding systolic arterial pressure. Properly applied, an effective tourniquet stops arterial flow distal to the application point within seconds. The two physiologic constraints are placement (high and tight on the proximal third of the limb, never across a joint) and pressure (sufficient to occlude the artery, confirmed by absence of distal pulse).
CoTCCC-recommended devices: The Combat Application Tourniquet (CAT) Generation 7 is the most widely deployed CoTCCC-recommended windlass tourniquet across U.S. military and civilian programs. The Special Operations Forces Tactical Tourniquet — Wide (SOFTT-W) and the Tactical Mechanical Tourniquet (TMT) are other CoTCCC-recommended options. The recommendation distinction matters: only devices on the CoTCCC list have undergone the standardized testing the recommendation requires. Generic "tactical tourniquets" sold on consumer marketplaces have not.
Placement doctrine: High and tight on the proximal third of the limb. Never across a joint — not at the elbow, not at the knee, not at the wrist, not at the ankle. A tourniquet across a joint cannot achieve circumferential arterial occlusion because the joint structure prevents uniform compression. Distal tourniquets fail mechanically. The operator places the tourniquet as proximally as possible on the affected limb, regardless of where the wound is.
Time documentation: Write the application time on the windlass strap or directly on the patient. Total tourniquet time guides the receiving facility's reperfusion management. Modern doctrine accepts tourniquet times of up to 2 hours with minimal long-term sequelae and up to 6 hours with manageable but increasing risk. The "tourniquet means amputation" doctrine of mid-20th-century surgery is obsolete.
Number to stock: Two per kit minimum. The patient may need a second tourniquet on the same limb if the first does not fully control bleeding, or on a second limb. Single-tourniquet kits are not adequately provisioned.
Hemostatic gauze — wound packing for compressible hemorrhage
Mechanism: Gauze impregnated with a hemostatic agent that accelerates clot formation when packed into a bleeding wound. Two CoTCCC-recommended chemistry families dominate: kaolin-impregnated agents activate the intrinsic coagulation cascade (factor XII) on contact with blood, and chitosan-based agents form a viscous mucoadhesive plug independent of the coagulation cascade — which means chitosan still works in patients on anticoagulants or with coagulopathy.
Application doctrine: The gauze is packed directly into the wound, applied with firm pressure to the source of bleeding, and held for at least three minutes (kaolin) or three to five minutes (chitosan), then overwrapped with a pressure dressing. The phrase that matters operationally is "pack to the bleed, not the cavity" — gauze must reach the bleeding vessel for the agent to work.
Use case: Compressible wounds where a tourniquet cannot be applied — junctional zones (groin, axilla, neck), torso wounds, deep extremity wounds proximal to a tourniquet, complex wounds with multiple bleeding points.
Pressure dressings and Israeli-style bandages
Mechanism: A dressing with an integrated pressure bar and self-adhering wrap, designed to apply circumferential pressure over a wound. The pressure bar concentrates force at the wound site; the elastic wrap maintains that force while immobilizing the dressing. Pressure dressings work for bleeding that doesn't require tourniquet-level intervention and as the overwrap on hemostatic-packed wounds.
Number to stock: At least two per kit. One for the primary wound, one as overwrap for hemostatic gauze, plus reserve.
Junctional tourniquets — advanced indication
Brief: Junctional hemorrhage — at the groin, axilla, or other limb-trunk junctions where a standard limb tourniquet cannot be placed — is a leading cause of preventable death. Dedicated junctional tourniquet devices apply direct compression to the femoral or axillary artery at the body-limb junction. These are bulkier, more expensive, and require specific training. They earn space in vehicle kits and team kits, less so in pocket carry.
Section 04A — Airway
An unconscious patient with an intact airway has minutes. An unconscious patient whose airway is occluded by the tongue or by secretions has seconds. Airway management at the operator level is about positioning, mechanical adjuncts, and suction — not endotracheal intubation, which is a clinical-team skill outside the scope of pocket and household kits.
Nasopharyngeal airway (NPA)
Mechanism: A soft flexible tube inserted through the nostril and advanced posteriorly until the tip rests in the hypopharynx behind the tongue. Bypasses the tongue, the primary cause of upper-airway obstruction in unconscious patients. Tolerance: Better tolerated than oropharyngeal airways in patients with an intact gag reflex; can be used in conscious or semi-conscious patients with relatively low risk of vomiting and aspiration. Sizing: Length approximately from the tip of the nose to the angle of the jaw; diameter approximately the diameter of the patient's smallest finger (typically 26F to 32F in adult men, smaller for women and children). Critical contraindication: Suspected basilar skull fracture (raccoon eyes, Battle sign, CSF rhinorrhea or otorrhea) — the NPA can intrude through a basilar fracture into the cranium.
Oropharyngeal airway (OPA)
Mechanism: A rigid curved device placed in the mouth that holds the tongue forward and maintains a patent oropharyngeal airway. Contraindication: Intact gag reflex — placement triggers vomiting and risks aspiration. OPAs are for deeply unconscious patients only. Sizing: Length from the corner of the mouth to the angle of the jaw.
Suction
Use case: Vomit, secretions, blood in the airway. A manual suction device (V-Vac or similar mechanical bulb-suction) earns vehicle-kit space. Pocket and household kits often skip this; battery-powered portable suction is heavier and more expensive but more effective. Operational note: Suction is consumable. Kits relying on a single suction device for prolonged management run out fast; if extended care is anticipated, plan accordingly.
Positioning and basic technique
Most airway saves at the operator level come from positioning, not equipment. Head-tilt-chin-lift (or jaw-thrust in suspected cervical injury) opens the airway in the majority of unresponsive patients. Recovery position protects the airway in the conscious-but-impaired patient. The equipment supports the technique; the technique is the deliverable. Mechanical adjuncts (NPA, OPA) buy the operator time to manage other problems.
Section 05R — Respirations
Chest trauma kills through three primary mechanisms relevant to operator-level intervention: open chest wound (sucking chest wound) producing air entry into the pleural space; tension pneumothorax with progressive intrathoracic pressure compromising cardiac output; and respiratory failure from any cause. The R-phase interventions address the first two; the third requires assisted ventilation that exceeds operator scope.
Vented chest seals — penetrating chest wounds
Mechanism: An adhesive occlusive dressing applied over a chest wound to seal air entry. The seal must adhere to wet, often bloody skin and remain in place under field conditions. Vented vs non-vented: A vented chest seal has one or more one-way valves that allow air to escape from the pleural space while preventing air entry. This reduces the risk of converting an open pneumothorax into a tension pneumothorax. CoTCCC guidelines recommend vented chest seals for penetrating chest trauma. Application: Wipe the surrounding skin dry to the extent possible, apply the seal with firm pressure to ensure adhesion. Number to stock: Two per kit — chest wounds are often paired (entry and exit), and a failed first seal needs immediate replacement.
Needle decompression — tension pneumothorax
Mechanism: A large-bore needle inserted through the chest wall into the pleural space to release trapped air under tension. The classic landmark is the second intercostal space at the midclavicular line; updated CoTCCC guidance also accepts the fourth or fifth intercostal space at the anterior axillary line, which has more favorable chest-wall thickness in larger patients. Equipment: 14-gauge, 3.25-inch (8 cm) angiocatheter. The catheter length matters — shorter needles (the typical 14-gauge IV catheter is 1.25") do not reliably reach the pleural space through the chest wall of average adult male soldiers, with failure rates documented at 30 percent or higher.
Operator-level caveat: Needle decompression is a clinical-level intervention with risk of cardiac and great-vessel injury if landmarked incorrectly. It earns space in tactical-medical-operator kits and EMS kits; it does not belong in a household pocket kit unless the operator has formal training and clinical context for use.
Bag-valve mask and pocket masks
Assisted ventilation belongs in vehicle kits and team kits; pocket kits typically skip it. A pocket CPR mask with one-way valve is a high-yield, low-bulk item for breathing rescue in CPR scenarios. BVM (bag-valve-mask) ventilation is a skill, not an item — it requires training to deliver effective tidal volume without barotrauma.
Section 06C — Circulation and Casualty Movement
Once hemorrhage is controlled, the airway is patent, and respiration is managed, circulation management aims to maintain perfusion and prepare the patient for transport. At the operator level, this is volume status assessment, IV/IO access if trained, fracture stabilization, and getting the patient to definitive care without making the injury worse.
IV and IO access — clinical-team level
IV access is a clinical skill with a learning curve. The kit components (catheters, tubing, fluid bags, securement) earn space in EMS-grade and clinical kits. Intraosseous (IO) access — a needle driven into the marrow space of a bone (most commonly proximal tibia or proximal humerus) for emergency fluid and drug administration — is gaining adoption in tactical-medical-operator scope because it is faster and more reliable than IV in shock. EZ-IO devices and similar kits are part of advanced tactical-medical-operator carry, not pocket kits.
Fluid resuscitation in austere care
The doctrinal pendulum on fluid resuscitation has swung over the last decade. JTS Prolonged Casualty Care guidelines now favor permissive hypotension (lower target blood pressure with controlled fluid administration) over the aggressive crystalloid resuscitation of the 1990s for non-traumatic-brain-injury patients with hemorrhagic shock. Stocking liters of normal saline in a household kit is not the answer; understanding when and how much to administer is.
Splints and fracture management
SAM splint: A flexible aluminum-and-foam universal splint that conforms to any limb and any joint angle. Light, durable, reusable, the right answer for nearly all field splinting. Traction splint: A specialized device for mid-shaft femur fractures to reduce pain, blood loss, and neurovascular compromise. Earns space in vehicle and team kits where pelvic and femoral injuries are realistic risks. Cervical collar: Doctrinal use is narrower than older protocols suggested. Selective spinal immobilization based on clinical criteria (Canadian C-spine rules, NEXUS criteria) is the modern standard; reflexive collaring of every trauma patient is not.
Pelvic binders
A pelvic binder applied at the level of the greater trochanters reduces pelvic volume in unstable pelvic fractures, tamponading retroperitoneal bleeding that can otherwise produce rapid exsanguination. Commercial binders (SAM Pelvic Sling and similar) work; properly applied bedsheets work in extremis. Pelvic binders earn space in vehicle and team kits, less so in pocket carry.
Section 07H — Hypothermia and Head Injury
Trauma patients cool. They cool faster than uninjured patients of the same exposure, and the consequences cascade: hypothermia impairs platelet function and coagulation enzyme activity, producing the trauma triad of death (hypothermia, acidosis, coagulopathy). Below 35°C core temperature, the patient's own clotting system actively works against survival. Hypothermia management is not an afterthought — it is part of resuscitation.
Hypothermia prevention kits
The dedicated hypothermia prevention kit (HPMK or equivalent) consists of a reflective-shell outer layer with a chemical heat-generating inner blanket. Activation produces a sustained heat source over multiple hours. Less elaborate alternatives — mylar emergency blankets paired with insulating layers, sleeping bags, body-to-body warming — work, with less convenience and shorter duration. The doctrine that matters: Heat preservation begins on first contact with the patient, before all other downstream interventions complete. The bleeding patient lying on cold ground in cold weather is hypothermic in minutes regardless of clothing.
Head injury management
At the operator level, head injury management is positional and airway-driven: head-of-bed elevation to ~30 degrees in patients with suspected elevated intracranial pressure (when injuries and airway permit), maintenance of airway and oxygenation, prevention of secondary insults (hypotension, hypoxia, hyperthermia). The kit components are not unique to head injury — they are the airway, oxygen, and hypothermia-prevention items already discussed. The doctrine is that head-injured patients are uniquely vulnerable to secondary deterioration from problems that wouldn't kill a healthier patient.
Section 08Kit Tiering — Pocket, IFAK, Vehicle, MCI
One kit does not fit all contexts. The operator-grade build pattern is tiered: each tier handles its likely scenario and chains to the next tier as the situation expands. The MARCH letters dictate what's in each tier; the tier dictates the depth of capability.
Tier 1 — Pocket / Belt / Daily Carry
Scenario: One operator, immediate self-aid or buddy-aid, within minutes of injury, single patient.
Contents: One CoTCCC-recommended tourniquet, one packet of hemostatic gauze, one pressure dressing, one pair of nitrile gloves, one chest seal (pair), one Sharpie. Total volume comparable to a wallet plus a paperback. Failure mode: The pocket kit cannot manage prolonged care, multiple patients, or multi-system trauma. It is a bridge to the next tier.
Tier 2 — IFAK (Individual First Aid Kit)
Scenario: One operator, single patient, sustained care for up to 60 minutes until EMS arrival or transport to a vehicle kit.
Contents: Two tourniquets, two hemostatic gauze packets, two pressure dressings, NPA with lubricant, OPA set, two vented chest seals, nitrile gloves, trauma shears, emergency blanket, Sharpie, casualty card, basic wound-care set. Carry: Belt-mounted pouch, ankle rig, or backpack-mounted module. The IFAK is the standard single-operator kit for tactical medics, law enforcement, and trained civilians.
Tier 3 — Vehicle Kit / Household Kit
Scenario: Multiple potential patients, sustained care for 1–6 hours, single household or vehicle.
Contents: Multiple IFAKs (one per likely occupant), junctional tourniquet, pelvic binder, SAM splint set, manual suction, hypothermia prevention kit, BVM, expanded wound-care supplies, OTC drug cabinet (per Field Brief 04), prescription antibiotics (per Field Brief 01), patient documentation set. Form factor: Trauma bag, vehicle crate, or wall-mounted cabinet.
Tier 4 — MCI Kit (Mass Casualty Incident)
Scenario: Multiple simultaneous patients, sustained care, scaled response.
Contents: Multiple sets of MARCH-organized supplies, triage tags, hard-shell or rolling case, high-volume wound care, fluid and IV supplies, advanced airway tools, training-team equipment. Audience: Schools, places of worship, workplaces, large events, large households. Discussed in detail in upcoming MED-TAC programming on the school, classroom, and bus kit lines.
Section 09The Amazon Kit Problem — Common Failure Modes
The consumer-marketplace IFAK is a recurring failure pattern. The pouch is real, the labeling is professional, and the price is attractive. The components don't survive contact with the requirements. The recurring failure modes:
Counterfeit or non-CoTCCC tourniquets
Counterfeit tourniquets bearing CAT-style branding have been a documented problem in consumer marketplaces for years. The failure mode is mechanical: the windlass strap shears under tension, the buckle releases, or the strap stretches sufficiently that arterial occlusion is never achieved. Real-world testing has shown failure rates above 50 percent in some counterfeit batches. The distinguishing feature is that the operator finds out at the moment of use. Source CoTCCC-recommended tourniquets from authorized distributors only.
"Hemostatic gauze" without the hemostatic agent
Generic "hemostatic gauze" sold on consumer marketplaces is often plain gauze with no chemical impregnation. The label says hemostatic; the chemistry says otherwise. The operator wraps a wound expecting accelerated clotting and gets none. CoTCCC-recommended hemostatic agents (kaolin or chitosan impregnation, in defined manufacturer products) are traceable, manufacturer-verified, and lot-controlled.
Non-vented chest seals labeled as vented
Adhesion failure is the typical complaint, but vent failure — a "vented" seal whose vents don't actually function — has also been documented. The tension pneumothorax risk from a non-functional vent on a high-flow chest wound is the failure mode.
Wrong-length decompression needles
Standard 14-gauge IV catheters (1.25") are sold in some kits as "decompression needles." They are not long enough to reliably reach the pleural space through average chest wall thickness. The CoTCCC-recommended length is 3.25 inches (8 cm). Shorter needles fail mechanically, and the operator finds out in the moment.
Expired or short-dated components
Hemostatic agents and adhesive products have real shelf lives. Kits sold from clearance or grey-market sources sometimes ship with near-expiry product. Rotation and inventory matter; "buy and forget" kits with no maintenance plan deteriorate quietly.
The training gap
The most common failure isn't a component — it's the absence of training. Kits without trained operators are storage. The component cost of a real IFAK is dwarfed by the training cost over a competent operator's career, and that is the correct ratio. Stop the Bleed courses, Tactical Combat Casualty Care for civilians (TCCC-AC), Stop the Bleed instructor courses, and MED-TAC's Tactical Medical Operator Certification (TMOC) curriculum are the pathways. Training is upstream of equipment.
Section 10Operator-Grade Kit Build Doctrine
The build pattern that survives audit:
1. Source CoTCCC-recommended components from authorized distributors
The CoTCCC recommendation status is the closest thing the field has to a standardization mark. CoTCCC-recommended tourniquets, hemostatic agents, and chest seals have been through standardized testing the recommendation requires. Authorized-distributor sourcing protects against counterfeit and grey-market product. MED-TAC International, like all serious distributors, sources from manufacturer or authorized master distributor channels only.
2. Stock to two-of-each where time-critical
Two tourniquets per IFAK. Two hemostatic packets. Two chest seals. The doctrine reflects the failure mode: the first device may not fully control the bleed, the patient may have a second injury site, or the first device may fail mechanically. Single-device kits are under-provisioned for the scenarios they exist to manage.
3. Document the kit and rotate consumables
Every kit has an inventory sheet with expiration dates and a rotation calendar. Hemostatic gauze expires. Adhesive products lose adhesion. Auto-injectors lose drug efficacy. A six-monthly inventory review keeps the kit ready.
4. Train to the kit, train the kit to people
Every kit has a training plan. Every operator with kit access has hands-on time with every item under stress. Tourniquet placement on a manikin or training partner is part of the build, not separate from it. Empty practice tourniquets are cheap; the muscle memory they build is the actual deliverable.
5. Match the kit to the threat
The household kit, the vehicle kit, the school kit, and the MCI kit are different builds because the threats are different. A residential household in a low-crime suburb is unlikely to need a junctional tourniquet on every operator; a tactical team in a high-threat environment needs more redundancy. Match the build to the likely scenario, not to the scariest scenario in the catalog.
6. Plan for the second patient
Single-patient kits assume only one casualty. Real-world events frequently produce more than one. The vehicle and household tiers should be provisioned for multiple simultaneous casualties at least to the M of MARCH — two patients with major hemorrhage need two sets of tourniquet-and-gauze, not one.
7. Document allergies, medications, and special considerations
The kit includes a household medical reference: every household member's documented drug allergies, current medications, baseline conditions, blood type if known, and emergency contacts. Paper card in a sealed bag. Printed twice — one in the kit, one in the vehicle. Updated at every annual physical.
8. Mark the kit for visibility
Red cross or international medical symbol prominently visible. Inventory list externally readable. The kit that nobody finds in the moment is no kit at all. Storage location is part of the build.
Section 11Bottom Line for the Operator
Seven principles, distilled from the doctrine:
- Doctrine drives the kit, not the other way around. MARCH is the script; the kit makes the script executable. Items that don't map to a MARCH letter don't belong in the bag.
- Massive hemorrhage is the time-critical fight. Two tourniquets, two hemostatic packets, two pressure dressings. The first sixty seconds make most of the difference between survival and exsanguination.
- Placement matters as much as device. A real tourniquet placed across the elbow is a non-tourniquet. High and tight, proximal third, never across a joint. Train to the placement, not just the purchase.
- Vented chest seals, not bare occlusive dressings. The vent prevents conversion of an open pneumothorax into a tension pneumothorax. Stock two per kit.
- Hypothermia is part of resuscitation, not an afterthought. The trauma triad of death is a real failure mode; the prevention kit is a real intervention. Heat preservation starts on first contact.
- The Amazon IFAK isn't an IFAK. CoTCCC-recommended components from authorized distributors, with traceable provenance, are the standard. Counterfeit tourniquets and uncertified hemostatic gauze find out the operator at the moment of use.
- Training is upstream of equipment. The trained operator with a basic kit outperforms the untrained operator with an elaborate kit, every time. Stop the Bleed, TCCC-AC, and TMOC are the pathways. Buy the kit and then earn the right to use it.
That's the brief.
ReferenceFrequently Asked Questions
How do I tell a real CoTCCC-recommended tourniquet from a counterfeit?
Source matters more than visual inspection. CoTCCC-recommended tourniquets purchased from the manufacturer or an authorized master distributor are real; the same item bought from a third-party marketplace seller may not be. Visual indicators of counterfeit include slightly off coloring (the gray time strap on a real Gen 7 tourniquet has a specific shade), inconsistent stitching, plastic windlass quality differences, and packaging differences. But the most reliable test is sourcing chain. If the seller cannot trace the chain back to the manufacturer or authorized master distributor, treat the item as suspect.
What's the difference between a Stop the Bleed kit, a B-CON Kit, and an IFAK?
"Stop the Bleed" is the public-education program developed after the 2012 Sandy Hook shooting; it is not a product name. A Bleeding Control Kit (B-CON Kit) is the layperson-targeted hemorrhage control kit — typically tourniquet, hemostatic gauze, pressure dressing, gloves, and Sharpie — designed for the lay rescuer who completed the Stop the Bleed course. An IFAK (Individual First Aid Kit) is broader: it adds airway adjuncts, chest seals, and additional supplies for the more capable operator. B-CON is a subset of IFAK function; both are real, both have a place. The difference is scope and training level.
Should I carry a tourniquet in my daily-carry pocket?
For trained operators in high-risk roles (law enforcement, security, tactical medics, emergency responders), yes — the operational pattern is one tourniquet on the body, one or more in the bag. For trained civilians who have completed Stop the Bleed or equivalent, carrying a tourniquet is a reasonable choice if the mounting and access pattern works for your activity profile. Untrained carry is less useful; the tourniquet only saves a life if the operator knows when and how to apply it.
Are there situations where a tourniquet is the wrong answer?
Yes. Compressible bleeding on the torso, head, and neck cannot be tourniqueted — the limb-trunk junction prevents arterial occlusion at those sites. The intervention there is direct pressure with hemostatic gauze, not a tourniquet. Bleeding from veins (versus arteries) often controls with pressure alone; tourniquets are arterial-occlusion devices and don't add benefit for venous bleeding alone. And tourniquet-distal injuries with no arterial source don't benefit from tourniquet placement. The decision tree is: arterial extremity bleed = tourniquet; junctional or torso bleed = pack and pressure; venous extremity ooze = pressure dressing.
How often should I rotate or replace kit consumables?
Six-monthly inspection is the standard. Replace anything past the manufacturer expiration date. Adhesive products (chest seals, dressing-tape combinations) should be replaced even before nominal expiry if storage conditions have been hot, humid, or in direct sunlight — adhesive degrades faster than the labeled date in those conditions. Hemostatic gauze typically maintains efficacy through nominal expiry under normal storage. Auto-injectors (epinephrine) lose drug efficacy with heat exposure; vehicle storage in hot climates is particularly hard on them.
What kit goes in the car versus the house versus on the person?
On the person: Tier 1 pocket carry — tourniquet, hemostatic packet, pressure dressing, gloves, chest seal pair, Sharpie. In the vehicle: Tier 3 build with multiple IFAKs, hypothermia kit, splinting, expanded wound care, and OTC medications. In the house: Tier 3 expanded — multiple IFAKs by likely scenario zones (kitchen for burns and lacerations, garage for trauma, bedside for sudden medical events), plus the full Field Brief 04 medicine cabinet. The principle is that the level of capability scales with the time available and the volume the kit can occupy.
Where does CPR equipment fit in?
A pocket CPR mask with one-way valve earns space in every tier; it's small, light, and the failure mode of trying to do mouth-to-mouth without it is significant. AEDs (automated external defibrillators) are vehicle-and-up. The household AED is a real consideration for homes with elevated cardiac risk (older household members, known coronary disease). The cost has come down; the survival benefit for witnessed out-of-hospital cardiac arrest is substantial when an AED is on scene within minutes.
How does the MED-TAC product line map to these tiers?
MED-TAC International builds and supplies all four tiers. Pocket-carry B-CON Kits (Tier 1), full IFAKs (Tier 2), vehicle and household trauma kits (Tier 3), and MCI kits scaled for schools, places of worship, workplaces, and large events (Tier 4). All components are sourced from manufacturer or authorized master distributor channels, with CoTCCC recommendation status verified where applicable. Custom builds for specific operational profiles are available; contact marco@tactical-medicine.com for procurement and quote pricing.
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