6 W Cool White LED Bulb, E27 Base, 220 Vac
SKU 8220-LAL1G1AEAN 8219671039529Item type: AssembledLight bulbs
Description
Bulb lamp with omnidirectional emission featuring 3 cold white LEDs. Comparable to a traditional 26 W incandescent bulb but, with only 6 W of power consumption and over 30,000 hours of life, it is much more convenient in terms of consumption and durability. Dimensions: Ø60 mm x height 105 mm (including the E27 base).
Technical Specifications
Candela, Lumens, and Lux: What to Look At?
When we want to compare the characteristics of two lamps, we often struggle because we don’t know how to compare the data provided: some indicate candela, others lumens. Let’s try to clarify. All light sources, and therefore also bulbs, are characterized by a luminous intensity (I), expressed in candela (cd) or millicandela (mcd, equal to one thousandth of a candela); in the International System of Units, the candela is the intensity of a source of infinitesimal dimensions that does not absorb the light it generates (black body) having a surface of 1/6 x 10-5 m² and placed at the solidification temperature of platinum, measured in a direction perpendicular to the surface itself and in an environment at a pressure of 101,325 pascals. When we talk about candela, we therefore mean the luminous intensity, which is the light emitted by the lamp itself. Another parameter that indicates how much light a source generates is the luminous flux (Φ), expressed in lumens (lm). These two quantities are related by the fact that the luminous flux is the density reached by the luminous intensity in a solid angle; precisely, one lumen is the luminous flux produced by a source with an intensity of one candela in a solid angle of 1 steradian. The steradian is the solid angle of 360/6.28° (the ratio between the circumference and the radius of a circle) in all directions, i.e., 57.32 degrees. Thus, the luminous flux (lumens) is given by the product: Φ = I x α where α is the light emission or irradiation angle, expressed in steradians, which is assumed to be equal in all directions (it is assumed that the lamp emits a cone of light). Therefore, to compare two bulbs knowing the candela of one and the lumens of the other, the light emission angle must be known. Once this is known in sexagesimal degrees, α in steradians is obtained by dividing it by 57.32; for example, a lamp with an emission angle of 45° has an angle of 0.785 steradians. Let’s compare, for example, a lamp of 10,000 mcd that emits over an angle of 45 degrees and one of which we know has a luminous flux of 10 lumens; since 45° equals 0.785 steradians, the first determines a luminous flux of: Φ = 10 cd x 0.785 sr = 7.85 lm.
So the first is less effective than the second. With the same formulas, the quantities not indicated by manufacturers can be derived; for example, if we know a bulb generates 8 lumens and emits over an angle of 60° (1.047 steradians), we can derive the luminous intensity (I) in candela: I = Φ /α = 8/1.047 = 7.64 cd.
Now let’s compare a bulb with an intensity of 12 candela and another with a luminous flux of 11 lumens and an emission angle of 60° (1.047 sr); we determine the intensity in candela of the second bulb: I = Φ /α = 11/1.047 = 10.5 cd. This time the second bulb is less performant than the first. For LEDs, manufacturers define the luminous intensity and the irradiation or aperture angle, expressed in sexagesimal degrees. Since the lens of the diodes typically determines a conical light emission, it is easy to derive the luminous flux. For example, an LED emitting 2,000 mcd over an angle of 50° (0.872 sr) has a luminous flux of 1.744 lumens.
The Various Sources of Artificial Lighting
For white LEDs, the lifespan refers only to the diodes; it becomes shorter for LED lamps because the average life of the control circuit must be taken into account. As for the efficiency, it is that typical of the lamp or LED alone: losses in the power supply circuits, which affect neon lamps, vapor lamps, and LEDs, are not considered.

The table below illustrates the efficiency of individual bulbs and the real one, derived by considering the power loss in the devices needed to turn them on. As can be seen, the highest actual efficiency is achieved by LEDs and low-pressure sodium vapor lamps. For the correct interpretation of the data, consider that: the source efficiency (lm/W) is the efficiency of the lamp itself – the efficiency of the electrical source (%) defines the losses in the power supply – the efficiency of the radiating body (%) considers the losses of the optical system used to direct the light beam, a system that yields between 30 and 50% in common bulbs (which radiate in almost all directions) versus 95% for LEDs, which have a highly directional beam already at the emission point – the total efficiency (lm/W) is obtained by multiplying the efficiency by the efficiency of the electrical source by the efficiency of the radiating body. One can get an idea of the meaning of the numbers in the table by trying to calculate the electrical power consumed to obtain a certain luminous flux value, for example, 1,000 lumens: using a filament lamp, at least 133 watts are needed, which become 80 W for halogen; with neon and mercury vapor lamps, the required power drops to about 16.6 W and lowers to a minimum of 8.26 W with low-pressure sodium vapor lamps. About 8.3 W is the minimum power required using LED systems. Compared to a classic lamp, the energy saving is about 93%. This is why a decidedly …bright future is foreseen for LED lighting systems!

Technical details
| Dimensions | Ø60 mm x height 105 mm (including the E27 base) |
|---|---|
| Power supply | 230 Vac ~ 50 Hz |
| Base | E27 |
| Power consumption | 6 W |
| Average life | 30,000 hours |
| Color | cold white |
| Color temperature | 6400 K |
| Color rendering index (Ra) | > 75-80 |
| Luminous flux | 300 lumens |
| Beam angle | >120° |
| Number of LEDs | 3 |
| Dimmable | no |
| Weight | 100 g |








