---
titulo: Boiling water
descripcion: Boil water to kill pathogens, with time adjusted for altitude, safe cooling and storage, and fuel consumption.
nivel: 1
estado: borrador
requisitos: []
relacionados: []
fuentes:
  - "CDC. «How to Make Water Safe in an Emergency». Water, Sanitation, and Hygiene (WASH)-related Emergencies and Outbreaks. cdc.gov/water-emergency/about/index.html"
  - "OMS/UNICEF Joint Monitoring Programme. «Boil Water», Technical Brief sobre opciones de tratamiento doméstico del agua. iris.who.int"
  - "OMS. Guidelines for Drinking-water Quality, 4.ª ed., 2011 (tratamiento doméstico del agua, cap. sobre gestión de riesgos)"
  - "Ciochetti, D.A. y Metcalf, R.H. (1984). «Pasteurization of Naturally Contaminated Water with Solar Energy». Applied and Environmental Microbiology, 47(2), 223-228"
  - "Solar Cookers International / Engineering for Change. «Water Pasteurization Indicator (WAPI)» (Fred Barrett y Dale Andreatta)"
  - "Colwell, R.R. et al. (2003). «Reduction of Cholera in Bangladeshi Villages by Simple Filtration». PNAS, 100(3), 1051-1055"
  - "CDC / SSWM. Recomendaciones de almacenamiento seguro: contenedores de boca estrecha, con tapa y grifo"
  - "Engineering ToolBox. «Water - Boiling Points vs. Altitude». engineeringtoolbox.com"
  - "FAO. «Wood Energy - Basic Knowledge» y «Wood Fuels Handbook» (poder calorífico de leña y carbón vegetal). fao.org"
  - "Aprovecho Research Center y estudios de campo comparando fuego de tres piedras frente a estufas rocket (eficiencia térmica) — cifras (verificar) por variar mucho entre estudios"
idioma: en
traduccion: automatica
---
# Boiling water

## Summary

Boiling water destroys practically all the bacteria, viruses and protozoa (including their cysts and
oocysts) that cause disease, using only fire and a container. It is the most reliable biological
purification method and the easiest to verify by eye (just seeing it at a rolling boil) when there is
no chlorine, certified filters or laboratory available. Expected, measurable result: starting from water
with no visible turbidity, a batch of up to ~10 L becomes microbiologically safe in 15-35 minutes
(lighting the fire, heating and boiling), plus 30-60 minutes of cooling before it is comfortable to
drink, at a cost of between 1.5 and 2.2 kg of dry firewood (or 0.4-0.6 kg of charcoal) per 10 L over an
open fire. Boiling does **not** remove chemical products, heavy metals or turbidity, and boiled water is
not protected against later recontamination: safety depends as much on how the water is boiled as on how
it is cooled and stored.

## Prerequisites

- **Knowledge:** none is essential to carry out the procedure as described here. It helps to have
  already decided how the water is collected (the clearest source available) and, if the goal is to
  reduce fuel use, to compare with solar disinfection (SODIS) and with filtration, articles planned for
  this same folder.
- **Materials:**
  - Water to be treated, as clear as possible: 2-3 L per person per day just for drinking (more in heat
    or with physical work).
  - Fuel: dry firewood (moisture <20 %, it snaps with a crack instead of bending), or charcoal, or any
    other sustained heat source (gas, electric stove, embers).
  - A tightly woven cotton cloth (a sari-type cloth folded 4-8 times works; see “How it works”) to
    pre-filter the water if it is turbid.
  - A clean, narrow-mouthed container with a lid and, if possible, a tap, kept exclusively for drinking
    water, for later storage.
  - A thick cloth or oven mitt to handle the hot container.
- **Tools:**
  - An open-air fire or a hearth (N0: three stones and firewood are enough).
  - A container that can be set directly over the flames and withstand repeated boiling without
    cracking or releasing toxic substances. **This is where this article's technological level is
    decided:** it is set at `nivel: 1` because the main procedure (container placed directly over the
    fire) requires fired ceramic (N1 minimum) or metal (N2); a purely N0 container — raw hide,
    bark, waterproofed basketry, wood — burns, warps or loses its seal if brought near direct fire. A
    genuine N0 route does exist, slower and with greater losses: heating stones red-hot in the bonfire
    and dropping them into water held in a container that resists water but not direct fire
    (“hot-rock boiling”). Because it is less efficient and carries a greater risk of burns, it is
    documented as a lower-resource variant (see “Variants”), not as the main procedure.
  - A thermometer and/or a WAPI indicator are optional (needed only for the lower-temperature
    pasteurization variant, see “Variants”).
- **Time and people:** one person is enough. Per batch of up to 10 L: 5-10 min to prepare the fire,
  10-20 min to bring the water to a boil (depending on fire strength and volume), 1-3 min of sustained
  boiling, and 30-60 min of cooling before it is comfortable to drink (it can be drunk warm before that,
  already safe, if there is urgency).

## How it works

### Why heat kills pathogens

Heat denatures the proteins and enzymes of microorganisms and damages their nucleic acids; above a
certain temperature, sustained for long enough, the pathogen stops being viable or infectious. Thermal
sensitivity varies by type of organism:

- **Bacteria in vegetative form** (*E. coli*, *Vibrio cholerae*, *Salmonella*, *Shigella*): inactivated
  in seconds from about 60 °C upward; at boiling temperature, destruction is practically instantaneous.
- **Enteric viruses** (rotavirus, norovirus, hepatitis A): somewhat more resistant than bacteria, but
  likewise inactivated in under 1 minute at boiling temperature.
- **Protozoan cysts and oocysts** (*Giardia*, *Cryptosporidium*): the most heat-resistant organisms of
  sanitary concern among those commonly transmitted by water. *Cryptosporidium* oocysts are inactivated
  in under 1 minute above 70 °C, and *Giardia* cysts almost instantly from that same temperature.
- **Bacterial spores** (e.g. *Bacillus*, *Clostridium*): boiling at 100 °C does **not** reliably destroy
  them; autoclave temperatures (~121 °C under pressure) or very long times are needed. In practice,
  however, they are not the usual cause of waterborne illness, which is why boiling remains the
  reference method for household use, with this honest caveat.

Taken together, a sustained rolling boil comfortably exceeds the temperature and time that any common
enteric pathogen needs to be inactivated.

### Boiling versus pasteurization

It is not necessary to reach 100 °C to kill pathogens: pasteurization uses lower temperatures
(60-72 °C) for longer to achieve the same effect with less fuel. The reference study (Ciochetti and
Metcalf, 1984) found that fecal coliforms in river water were inactivated from 60 °C upward, and that
keeping water above 65 °C leaves it, for at least one hour, above the pasteurization temperature of milk
(62.8 °C), considered sufficient to inactivate the enteric pathogens of concern. Boiling (100 °C, 1-3
min) is simpler to verify without a thermometer — just seeing it bubble is enough — and gives a wider
safety margin against variations in altitude, turbidity or uneven heat distribution in the container;
that is why WHO/UNICEF and the CDC recommend it as the default method. Lower-temperature pasteurization
(the WAPI variant, see “Variants”) is preferable when fuel is the scarcest resource.

### Altitude adjustment

Water boils when its vapor pressure equals atmospheric pressure; at lower atmospheric pressure (higher
altitude), water boils at a lower temperature. This does not invalidate the method — even at high
altitude the boiling temperature stays well above the 70 °C that suffice for the pathogens mentioned
above — but it reduces the safety margin, which is why WHO/UNICEF and the CDC recommend extending the
boiling time above 2000 m (~6500 ft):

| Altitude (m) | Boiling point (°C) | Rolling-boil time |
|---|---|---|
| 0 (sea level) | 100.0 | 1 minute |
| 610 | 97.8 | 1 minute |
| 1219 | 95.7 | 1 minute |
| 1829 | 93.6 | 1 minute |
| ~1980 (6500 ft, WHO/CDC threshold) | ~93.0 | **3 minutes** from here on |
| 2438 | 91.6 | 3 minutes |
| 3048 | 89.6 | 3 minutes |
| 4572 | 84.7 | 3 minutes |

Rule of thumb: **1 minute of rolling boil below 2000 m; 3 minutes from 2000 m upward.**

### Why settle and filter before boiling

Heat does not remove turbidity or suspended matter, and sediment can shelter pathogens protected from
the heat inside it (larger particles take longer to reach the lethal temperature at their core), besides
wasting fuel by heating matter that is not water. Filtering through a tightly woven cotton cloth also
has a documented effect of its own: a field study in Bangladesh (Colwell et al., 2003) showed that a
sari-type cloth folded 4-8 times forms a filter with an effective mesh of about 20 microns, able to
retain the zooplankton and phytoplankton that *Vibrio cholerae* usually attaches to, and cut cholera
cases by 48 % in the villages where it was used. Settling and filtering before boiling is therefore a
step that reduces fuel use and adds an extra barrier, not a substitute for boiling.

### What boiling does NOT remove

- **Dissolved chemicals:** pesticides, solvents, nitrates, excess arsenic or fluoride are not destroyed
  or meaningfully evaporated by boiling; if the water is boiled for a long time, letting a significant
  fraction of it evaporate, the concentration of what does not evaporate (salts, heavy metals) can even
  rise slightly.
- **Heavy metals** (lead, mercury, cadmium, arsenic): not removed by boiling.
- **Turbidity, color, salty taste or mineral off-odor:** boiling does not clear the water or remove
  salty tastes; only settling, filtration or distillation act on this.
- Because of the above, if the water is suspected of contamination by fuel, solvent or industrial
  chemicals, **it must not be boiled for drinking**: another source must be found.

## Procedure

1. **Prepare the water.** If there is visible turbidity, let it settle undisturbed in a container for
   30-60 min and pour off only the clear water from the top without stirring up the sediment, or filter
   it through a tightly woven cotton cloth folded 4-8 times (sari-type, effective mesh of ~20 microns)
   tied over the mouth of another clean container. *Success criterion:* the water looks transparent
   (text is legible through a 10 cm layer of it) and leaves no visible sediment after 10 minutes at rest
   in a glass.
2. **Choose the container.** Fired ceramic without lead glaze, or metal, with a capacity of at least 1 L
   per person per serving, with no cracks or leaks, and that has never held fuel, paint or pesticides.
   *Success criterion:* after filling it with water and leaving it for 5 min, no drips appear and no
   rust stains rub off to the touch.
3. **Fill the container between 2/3 and 3/4 of its capacity**, leaving room for the boil without
   overflowing. *Success criterion:* a gap of at least 5 cm between the water surface and the rim.
4. **Cover** with a lid or a flat object that does not release substances (another pot, a clay plate)
   and place over the fire at maximum power. *Success criterion:* no continuous jet of steam is seen
   escaping from the sides before it starts to boil (covering it saves fuel, see “Calculations”).
5. **Heat until it reaches a rolling boil**: large bubbles rising continuously from the bottom that do
   not stop when stirred. *Success criterion:* visible bubbling across the whole surface (not just at
   the edge) for at least 10 consecutive seconds.
6. **Keep it at a rolling boil** for 1 minute if the site's altitude is below 2000 m; 3 minutes if it is
   at or above that. *Success criterion:* time it from the moment step 5's criterion is met; the boil
   does not stop at any point during the interval.
7. **Remove from the fire** with a thick cloth or tongs (the container and any metal handle are above
   90 °C) and uncover it while keeping face and hands away from the jet of steam. *Success criterion:*
   no one makes direct contact with the container or gets hit by the steam.
8. **Cool** it covered, out of children's reach, until it is comfortable to drink. *Success criterion:*
   the outside of the container is lukewarm (≤ 35-40 °C to the touch), not hot.
9. **Aerate to improve the taste (optional).** Pour the water back and forth between two clean
   containers 5-10 times from a height of ~30 cm. *Success criterion:* fine air bubbles appear and the
   water loses the “flat” taste typical of boiled water (caused by the loss of dissolved air during
   boiling).
10. **Store** it in the narrow-mouthed container, covered, with a tap if possible, without putting
    hands, cups or ladles into the water. *Success criterion:* the water is only served by pouring
    directly or through the tap, never by dipping a utensil in.

## Verification

- **Visual:** the water is transparent, with no sediment or film on the surface, and the only smell or
  taste that differs from the original is the “flat” taste typical of boiling (which aeration in step 9
  fixes).
- **Process-based, not product-based:** there is no simple field test that can confirm afterward that
  boiled water is free of pathogens; the guarantee comes from having met the time and temperature
  requirements (steps 5-6), not from a later check. If a thermometer is available, it can confirm that a
  rolling boil (not just hot water) was reached before timing starts.
- **Important:** unlike chlorination, boiling leaves no protective residual. Correctly boiled water can
  be contaminated again 5 minutes later if it is served with dirty hands or in a dirty container; the
  real verification that it is still safe to drink is that it has been handled following step 10 at
  every moment since it was boiled.

## Common mistakes

| Symptom | Likely cause | Solution |
|---------|----------------|----------|
| Someone who drinks “boiled” water still gets sick | Recontamination during cooling or storage (hands, ladle, dirty container) | Use a narrow-mouthed container with a lid/tap; serve without dipping utensils in; wash the container daily |
| The water tastes “flat” or unpleasant | Loss of dissolved air during boiling | Aerate it by pouring between two containers before drinking (step 9) |
| Much more fuel is used than expected | Uncovered container, fire exposed to wind, damp firewood | Cover the container; shield the fire from wind; use firewood with under 20 % moisture or an efficient stove |
| The water is still turbid after boiling | Water with sediment was boiled without settling or filtering it first | Settle and/or filter with cloth before boiling (step 1); boiling does not clear the water |
| Strange or metallic taste after using a certain container | Unsuitable container: plastic not rated for heat, lead-glazed ceramic, or a container that held fuel/pesticide | Use only fired ceramic without lead glaze, or metal kept exclusively for water (see “Safety”) |
| The boil does not give enough safety margin at high altitude | Time was not adjusted for altitude | Boil for 3 minutes instead of 1 above 2000 m (see altitude table) |

## Safety

- **Burns and scalds (the main hazard of this procedure):** steam at 100 °C causes deeper burns than
  liquid water at the same temperature, because it releases a large amount of extra heat as it
  condenses on the skin. Always use a thick cloth or oven mitt to move the container; uncover it while
  keeping face and hands away from the jet of steam; make sure the container sits stable over the fire
  and cannot tip over; keep children out of reach of the fire and the hot container at all times,
  including during cooling.
  - **What to do for a burn:** cool it immediately with lukewarm or cold (not iced) running water for
    10-20 minutes; do not apply ice directly, toothpaste or home remedies to the burn; do not pop
    blisters; cover with a clean, non-stick cloth. Seek medical attention if the burn is bigger than the
    palm of the hand of the person who suffered it, if it affects the face, hands, skin folds or
    genitals, or if extensive blisters appear.
- **Smoke poisoning:** if firewood or charcoal is used to boil in a closed or poorly ventilated space,
  there is a risk of carbon monoxide poisoning, which is odorless and can be fatal. Always boil
  outdoors, under a smoke outlet, or with assured cross-ventilation.
- **Valid containers:** fired ceramic without lead or cadmium glazes (some old or handcrafted glossy
  glazes contain them, and heat and acidity make them more likely to leach into the water), or metal
  (stainless steel, aluminum, iron) kept exclusively for food use.
- **Invalid containers:**
  - Plastic not certified for direct contact with heat: it can warp, burn or release compounds into the
    water.
  - Any container that has held fuel, solvent, paint or pesticide: boiling does not remove those
    chemical residues even if the water ends up free of pathogens.
  - Ceramic with lead or cadmium glaze.
  - Galvanized metal for repeated, prolonged boiling: the zinc coating can degrade with continued use
    and leach into the water in excess (verificar: the size of the risk depends on the condition of the
    coating and how many times it is reused).
- **Stones for the hot-rock boiling variant (see “Variants”):** never use river stones, porous stones,
  or ones that have been wet on the inside: steam trapped in their pores can make them explode
  violently when heated, throwing off fragments. Use dense, dry stones with no visible cracks, and
  always heat them well away from the face.
- **Reminder:** boiling does not protect against chemicals or heavy metals (see “What boiling does NOT
  remove” in “How it works”); if that kind of contamination is suspected, boiling alone is not enough.

## Variants

- **With fewer resources (N0, no ceramic or metal): hot-rock boiling.** Dense, dry, non-porous stones
  are heated red-hot in the fire for 20-30 min, and dropped in one at a time with green-wood tongs or a
  forked stick into the water, which is held in a container that withstands water but not direct fire
  (raw hide, sewn tree bark, a very tightly woven basket waterproofed with clay or resin, a hollowed-out
  log). Roughly 3-5 fist-sized stones (~0.5 kg each) are needed per liter of water to reach a boil,
  replacing stones as they cool (verificar: exact figure depends a great deal on the type of stone and
  the size of the fire). It is a technique with a documented history of use in cultures that had no
  fire-resistant containers. *What is lost:* energy efficiency (a lot of heat stays in the stones that
  never fully submerge), more time and labor, and a higher risk of burns from splashing and of porous
  stones exploding. *What is gained:* not depending on fired ceramic or metal.
- **With more resources (N2 upward):** a metal kettle with a tight-fitting lid and a heat-insulated
  handle; a gas or electric stove with power control, which reaches the boil sooner and without smoke;
  from N3 onward, an electric kettle with automatic shutoff at boiling (less supervision needed); at
  industrial scale (N3-N4), continuous-flow pasteurizers with a heat exchanger that recovers part of the
  heat from the already-treated water to preheat the incoming water, cutting fuel use per liter
  considerably.
- **Lower-temperature pasteurization variant with an indicator (WAPI):** instead of bringing the water
  to a boil, it is heated (over a fire, in a box-type solar cooker, or over embers) and held at 65 °C
  using a WAPI indicator — a polycarbonate tube with a wax plug calibrated to melt at that temperature,
  developed by Fred Barrett and Dale Andreatta for Solar Cookers International — or, without a WAPI,
  with a thermometer. The basis for this (Ciochetti and Metcalf, 1984) is that fecal coliforms are
  inactivated from 60 °C upward, and that keeping the water above 65 °C comfortably exceeds the
  pasteurization temperature of milk (62.8 °C), sufficient for the enteric pathogens of concern.
  *Advantage:* it saves a significant part of the fuel compared with boiling, since there is no need to
  reach 100 °C or sustain a boil. *Disadvantage:* it requires controlling the temperature more precisely
  than just “seeing it boil”; it does not destroy heat-resistant bacterial spores (of little relevance
  in drinking water); making a WAPI requires N3-N4-level materials and calibration, although an
  already-made WAPI can be reused thousands of times. Recommended when fuel is the scarcest resource and
  there is a reliable way to control temperature.
- **Scaling up to a village:** boiling in communal cauldrons of 20-200 L over a shared fire or in a
  community kitchen, in shifts. The larger the cauldron, the smaller its surface-to-volume ratio, which
  reduces relative heat losses and fuel use per liter compared with boiling in small batches. In
  exchange, the risk of recontamination rises (more people dipping ladles or containers into the same
  cauldron), and it becomes necessary to organize distribution into individual narrow-mouthed containers
  and to ensure a centralized fuel supply, which is usually the real bottleneck: WHO/UNICEF point to the
  high cost and fuel consumption as the main limitation of large-scale boiling compared with centralized
  chlorination, which works out far cheaper per liter. Where possible, reserve communal boiling for
  those without access to chlorine, and treat it as a transitional solution.

## Calculations

### Theoretical energy to boil 10 L of water

Data: specific heat of water *c* = 4.186 kJ/(kg·°C); mass of water *m* = 10 kg (10 L); initial
temperature 20 °C, final 100 °C (at sea level); ΔT = 80 °C.

Minimum energy the water must receive (not counting losses or the time of sustained boiling):

```
Q = m × c × ΔT = 10 kg × 4.186 kJ/(kg·°C) × 80 °C = 3349 kJ ≈ 3.35 MJ
```

In practice, most of a fire's heat is lost to the air and surroundings rather than passing into the
water, so considerably more fuel is needed than this theoretical figure.

### With an open three-stone fire (real thermal efficiency 10-15 %, verificar)

```
Firewood energy needed = 3.35 MJ / 0.10 to 0.15 = 22.3 to 33.5 MJ
```

With air-dried firewood (calorific value ≈ 15 MJ/kg):

```
Firewood mass ≈ 22.3/15 to 33.5/15 = 1.5 to 2.2 kg per 10 L (≈ 150-220 g per liter)
```

### With an improved rocket-type stove (efficiency 25-40 %)

```
Firewood energy needed = 3.35/0.25 to 3.35/0.40 = 8.4 to 13.4 MJ
Firewood mass ≈ 0.56 to 0.9 kg per 10 L (≈ 56-90 g per liter)
```

That is, between 2 and 3 times less firewood than with an open fire, consistent with fuel savings on the
order of 40-60 % cited by field comparisons between three-stone fires and rocket stoves (verificar:
exact figure varies by study).

### With charcoal (28-30 MJ/kg) and a “jiko”-type stove (efficiency 20-30 %, verificar)

```
Energy needed = 3.35/0.20 to 3.35/0.30 = 11.2 to 16.75 MJ
Charcoal mass ≈ 0.37 to 0.6 kg per 10 L (≈ 37-60 g per liter)
```

### Effect of the lid

Covering the container reduces fuel use for boiling by 20-35 % compared with boiling uncovered (a
general estimate from cooking physics, not specific to water purification). Applied to the open
three-stone fire, this could bring consumption down to approximately 1-1.8 kg of firewood per 10 L.

**Honesty note:** all the fuel-mass figures in this section are order-of-magnitude estimates based on
published efficiencies for different fire/stove types; actual consumption depends heavily on the
moisture of the firewood, wind, fire size, the shape of the container and the experience of the person
tending it. They are marked as estimates, not as an exact, reproducible value.

## Sources

- CDC. «How to Make Water Safe in an Emergency». Water, Sanitation, and Hygiene (WASH)-related
  Emergencies and Outbreaks. https://www.cdc.gov/water-emergency/about/index.html
- OMS/UNICEF Joint Monitoring Programme. «Boil Water», Technical Brief sobre opciones de tratamiento
  doméstico del agua. https://iris.who.int
- OMS. *Guidelines for Drinking-water Quality*, 4.ª ed., 2011.
- Ciochetti, D.A. y Metcalf, R.H. (1984). «Pasteurization of Naturally Contaminated Water with Solar
  Energy». *Applied and Environmental Microbiology*, 47(2), 223-228.
- Solar Cookers International / Engineering for Change. «Water Pasteurization Indicator (WAPI)».
- Colwell, R.R. et al. (2003). «Reduction of Cholera in Bangladeshi Villages by Simple Filtration».
  *PNAS*, 100(3), 1051-1055.
- CDC / SSWM (Sustainable Sanitation and Water Management). Recomendaciones de almacenamiento seguro de
  agua doméstica: contenedores de boca estrecha, con tapa y grifo.
- Engineering ToolBox. «Water - Boiling Points vs. Altitude». https://www.engineeringtoolbox.com
- FAO. «Wood Energy - Basic Knowledge» y *Wood Fuels Handbook* (poder calorífico de leña y carbón
  vegetal). https://www.fao.org
- Comparativas de eficiencia térmica de cocinas (fuego de tres piedras frente a estufas rocket),
  Aprovecho Research Center y estudios de campo asociados — rangos marcados `(verificar)` por variar
  sensiblemente entre estudios.
