Commission Directive 2008/126/EC of 19 December 2008 amending Directive 2006/87/EC of the European Parliament and of the Council laying down technical requirements for inland waterway vessels
Modified by
- Commission Directive 2009/56/ECof 12 June 2009correcting Directive 2008/126/EC amending Directive 2006/87/EC of the European Parliament and of the Council laying down technical requirements for inland waterway vessels, as regards its date of transposition(Text with EEA relevance), 309L0056, June 13, 2009
Limit values for the time t | ||||||
---|---|---|---|---|---|---|
δ = 20° | δ = 45° | 1,2 ≤ h/T ≤ 1,4 | 1,4 < h/T < 2 | h/T > 2 | ||
1 | All motor vessels; single-in-line convoys ≤ 110 × 11,45 | 20°/min | 28°/min | 150 s | 110 s | 110 s |
2 | Single-in-line convoys up to 193 × 11,45 or two-abreast convoys up to 110 × 22,90 | 12°/min | 18°/min | 180 s | 130 s | 110 s |
3 | Two-abreast convoys ≤ 193 × 22,90 | 8°/min | 12°/min | 180 s | 130 s | 110 s |
4 | Two-abreast convoys up to 270 × 22,90 or three-abreast convoys up to 193 × 34,35 | 6°/min | 8°/min |
one to starboard with a rudder angle δ = 20° one to port with a rudder angle δ = 20° one to starboard with a rudder angle δ = 45° one to port with a rudder angle δ = 45°.
(a) for manually controlled steering systems, a single turn of the wheel shall correspond to a rudder angle of at least 3°; (b) for powered steering systems, when the rudder is at maximum immersion, it shall be possible to achieve an average angular velocity of 4°/s over the rudder’s entire turning range.
----------------------
Type of craft: … | Test area: … |
or convoy: … | Relevant water level [m]: … |
L × B [m × m]: … | Depth of water h [m]: … |
T | h/T: … |
Comments | |||||
---|---|---|---|---|---|
δ = 20° STAR | δ = 20° PORT | δ = 45° STAR | δ = 45° PORT | ||
δ | δ | δ | δ | ||
r | r | ||||
t | |||||
t | |||||
t | |||||
t | |||||
Limit value t | Limit value t |
(a) the keel clearance set out in point 2.1 shall be complied with; (b) the measuring, recording, registration and evaluation of test data shall be carried out.
(a) In flowing water (current velocity of 1,5 m/s), stopping in relation to the water shall be demonstrated over a maximum distance measured in relation to the ground of: 550 m for vessels and convoys of: length L > 110 m or width B > 11,45 m,
or 480 m for vessels and convoys of: length L ≤ 110 m and width B ≤ 11,45 m.
The stopping manoeuvre is completed on coming to a stop in relation to the ground. (b) In standing water (current velocity of less than 0,2 m/s), stopping in relation to the water shall be demonstrated over a maximum distance, measured in relation to the ground of: 350 m for vessels and convoys of: length L > 110 m or width B > 11,45 m,
or 305 m for vessels and convoys of: length L ≤ 110 m and width B ≤ 11,45 m.
In standing water, a test shall also be performed to demonstrate that a speed of not less than 6,5 km/h can be reached when going astern.
Inspection Body: | … | Type of vessel or convoy: | … | Test area: | … | |
L × B [m]: | … | Water level gauge reading | [m]: | … | ||
Date: | … | T at test [m]: | … | Water depth | [m]: | … |
Name: | … | Load at Test [t]: | … | Gradient | [m/km]: | … |
Test run No: | … | % of maximum deadweight | … | V | [km/h]: | … |
Power of propulsion engines P | … | [m/s]: | … | |||
Propulsion system according to Annex 2, table 2: | … | Max. displacement | [m | … |
Observations | ||||||
---|---|---|---|---|---|---|
Phase I ("Full ahead" reversed to "full astern"): S I and Phase II (End of reversal until vessel stops in relation to the water): S II
with the following coefficients | |||
---|---|---|---|
4.1. | |||
4.2. | |||
4.3. | |||
4.4. | |||
4.5. | |||
4.6. | |||
4.7. |
Speed in relation to the ground at the start of reversal | (m/s) | |
Reversal time | (s) | |
Speed in relation to the water at the end of reversal | (m/s) | |
Displacement | (m | |
Bollard pull in reverse | (kN) | |
Power of propulsion engine | (kW) | |
Average resistance during phase II, to be determined using the diagram for determining R | (kN) | |
Gradient resistance | (kN) | |
Gradient in m/km (if missing to be taken as 0,16) | (m/km) | |
Average current velocity | (m/s) | |
Acceleration due to gravity (9,81) | (m/s | |
Density of water, ρ fresh water = | (kg/m | |
Maximum draught (of vessel or convoy) | (m) | |
Water depth | (m) | |
Width | (m) | |
Length | (m) |
(a) Motor vessels and single file convoys (b) Two-abreast convoys (c) Three-abreast convoys
a | b | c | Units | |
---|---|---|---|---|
k | 0,95 | 0,95 | 0,95 | — |
k | 0,115 | 0,120 | 0,125 | |
k | 1,20 | 1,15 | 1,10 | — |
k | 0,48 | 0,48 | 0,48 | — |
k | 0,90 | 0,85 | 0,80 | — |
k | 0,58 | 0,55 | 0,52 | — |
Propulsion system | f | Units |
---|---|---|
Modern nozzles with rounded rear edge | 0,118 | kN/kW |
Old nozzles with sharp rear edge | 0,112 | kN/kW |
Propellers without nozzle | 0,096 | kN/kW |
Rudder propellers with nozzles (generally sharp rear edge) | 0,157 | kN/kW |
Rudder propellers without nozzles | 0,113 | kN/kW |
L [m] | B [m] | T | Dwt | D | P | |
---|---|---|---|---|---|---|
Motor vessel | 110 | 11,4 | 3,5 | |||
Lighter | 76,5 | 11,4 | 3,7 | — | ||
Convoy | 110 | 22,8 | 3,7 |
Current velocity: | = | 1,4 | ≈ | 5,1 | |
Speed of vessel (in relation to the water): | = | 3,5 | ≈ | 12,5 | |
Speed of vessel (in relation to the ground): | = | 4,9 | ≈ | 17,6 | |
Reversal time (measured) (point | = | 16 | |||
Stopping distance in relation to the water (point | = | 340 | |||
Load condition (possibly estimated): | = | ≈ | 0,8 | ||
Actual draught of convoy: | = | 2,96 | ≈ | 0,8 |
Measured value according to Appendix 1 (see point 2)s = 340measured m to be calculated: s as the sum ofactual s I actual (according to formula 4.1 of Appendix 2 with v L )actual and s II actual (according to formulae 4.2, 4.3, 4.4, 4.5 and 4.6 of Appendix 2 with actual speeds v )II , vactual STR , Dactual actual s as the sum ofreference s I reference (according to formula 4.1 of Appendix 2 with v L )reference and s II reference (according to formulae 4.2 to 4.6 of Appendix 2 with the reference speeds according to 2.1 of the Administrative instruction and given that the load condition is greater than 70 % of the maximum load (≈ 80 %): D andreference = Dactual T )reference = Tactual to be checked: S =standard S ·measured ≤ 550S reference S actual m
for s | k | = | 0,95 |
for s | k | = | 0,12 |
k | = | 1,15 | |
k | = | 0,48 | |
k | = | 0,85 | |
k | = | 0,55 |
(a) s with the values measured during the stopping manoeuvre (formula 4.1)I actual S =I actual k 1 ·v ·L actual t I actual S = 0,95 · 4,9 · 16 = 74,5 mI actual (b) Formula for s II actual S =II actual k ·v 2 ·II actual ·D ·actual g k 3 ·F +POR R –TmII actual R G k 4 +V STR actual V II actual (c) Calculation of R according to table 3 and formula 4.3 of Appendix 2TmII actual D actual 1/3 =5179 1/3 + 17,3m D actual 1/3 · = 17,3 ·B + 2 ·T actual 22,8 + 5,92 = 496,8m 2 according to table 3 v –L actual v = 4,9 – 1,4 = 3, 5STR actual m/s R =TmII actual ·R T v 2 k 7 ·k 6 ·v –L actual v STR actual 2 = 10,8 ·0,55 · 0,85 · 3,5 2 =28,8 kN (d) Calculation of resistance to gradient according to formula 4.4 R = 10G -6 ·0,16 · = 10D ·actual ρ ·g -6 ·0,16 · =5179 ·1000 · 9,818,13 kN (e) Calculation of v II according to formula 4.5actual v =II actual k 6 = 0,85 · 3,5 = 2,97v –L actual v STR actual m/s v II actual 2 = 8,85m/s 2 (f) Calculation of F according to formula 4.6 and table 2POR F = 0,118 ·POR 1500 =177 kN (g) Calculation of s using formula (b) and the results of (c), (d), (e) and (f)II actual s =II actual ·0,12 · 8,85 · 9,81 · 0,48 + 1,4 2,97 1,15 · 177 + 28,8 – 8,13 5179 s =II actual 228,9 m (h) Calculation of total distance according to formula 3.1 s = 74,51 + 228,9 =actual 303,4 m Note: The term (R —tmII R ), which is a function of D, with an actual value of 20,67 kN is obviously relatively small compared toG k ·3 F with an actual value of 203,55 kN, so for simplification purposes,POR s can be taken as proportional toII D , i.e.s = Constant ·II D .
(a) S =I reference k 1 ·v ·L reference t I S = 0,95 · 5,1 · 16 =I reference 77,50 m (b) S =II reference k 2 ·v 2 ·II reference D ·reference g ·k 3 ·F +POR R –TmII reference R G k 4 +v STR reference v II reference (c) calculation of R TmII reference as in point 4.2, since B, D andT are unchanged.v –L reference v = 3,6STR reference m/s R =TmII reference ·R T v 2 k 7 ·k 6 ·v –L reference v STR reference 2 = 10,8 ·0,55 · 0,85 · 3,6 2 =30,99 kN (d) Resistance due to gradient R as in point 4.2G (e) Calculation of v II reference v =II reference k 6 · = 0,85 · 3,6 = 3,06v –L reference v STR reference ,m/s v 2 = 9,36II reference m/s 2 (f) F as in point 4.2.POR (g) Calculation of s using formula (b) and the result from (c) to (f)II reference s =II reference 0,12 · 9,36 · 9,81 · 0,48 + 1,5 3,06 1,15 · 177 + 30,99 – 8,13 ·5179 = 0,0472 · 5179 =244,5 m Constant reference (h) Calculation of total distance s =reference s +I reference s = 77,5 + 244,5 =II reference 322 m
admission to downstream navigation is possible without problems for the actual load condition (0,8 · D ),max a higher load condition is possible and may be calculated according to point 5 below.
L [m] | B [m] | T | Dwt | D | P | |
---|---|---|---|---|---|---|
Motor vessel | 110 | 11,4 | 3,5 | |||
Each lighter | 76,5 | 11,4 | 3,7 | — | ||
Convoy | 186,5 | 22,8 | 3,7 |
Current velocity: | = | 1,4 | ≈ | 5,1 | |
Speed of vessel (in relation to the water): | = | 3,5 | ≈ | 12,5 | |
Speed of vessel (in relation to the bank): | = | 4,9 | ≈ | 17,6 | |
Reversal time (measured) (point | = | 16 sec | |||
Stopping distance in relation to the water (point | = | 580 | |||
Load condition (possibly estimated): | = | ≈ | 0,8 | ||
Actual draught of convoy: | = | 2,96 m | ≈ | 0,8 |
Measured value: s = 340measured m calculations to be made: s actual as the sum ofs I actual (according to formula 4.1 of Appendix 2 with V )L actual and s II actual (according to formulae 4.2, 4.3, 4.4, 4.5 and 4.6 of Appendix 2 with real speeds v )L (see under 2 above) and Dactual actual s :reference sum s +I reference s II reference (according to formulae 4.1 to 4.6 of Appendix 2 with reference speeds and in conformity of Appendix 2, because the load condition > 70 % of maximum, where D =reference = Dactual and Treference T )actual to be verified: , otherwise calculate: s* = 550standard m by reduction of D actual to D*
for | k | = | 0,95 |
for | k | = | 0,12 |
k | = | 1,15 | |
k | = | 0,48 | |
k | = | 0,85 | |
k | = | 0,55 |
(a) s Using the values measured during the stopping manoeuvresI actual s =I actual k ·1 v ·L actual t I actual s = 0,95 · 4,8 · 16 =I actual 73 m (b) formula for s II actual s =II actual k 2 ·v 2 ·II actual ·D ·actual g k 3 ·F +POR R –TmII actual R G k 4 +v STR actual v II actual (c) Calculation of R according to table 3 and formula 4.3 of Appendix 2TmII actual D actual 1/3 =9568 1/3 = 21,2m D actual 1/3 · = 21,2 ·B + 2 ·T actual 22,8 – 5,92 = 609m 2 from table 3 v –L actual v = 4,8 – 1,4 = 3,4 m/sSTR actual R =TmII actual ·R T v 2 k 7 ·k 6 ·v –L actual v STR actual 2 = 14,0 ·0,55 · 0,85 · 3,4 2 =35,4 kN (d) Calculation of resistance due to gradient according to formula 4.4 of Appendix 2. R = 10G -6 · (0,16 ·D ·actual ρ ·g ) = 10-6 ·0,16 · =9568 ·1000 · 9,8115,02 kN (e) Calculation of v II according to formula 4.5 of Appendix 2actual v =II actual k 6 · =v ·L actual v STR actual 2,89 m/s v 2 =II actual 8,35 m/s 2 (f) Calculation of F acording to formula 4.6 and table 2POR F = 0,118 ·POR 1500 =177 kN (g) Calculation of s II using formula (b) and the result of (c), (d), (e) and (f)actual S =II actual ·0,12 · 8,35 · 9,81 0,48 + 1,4 2,89 1,15 · 177 + 35,4 – 15,02 9568 S =II actual 402 m (h) Calculation of the total distance according to formula 3.1 s = 73 + 402 =actual 475 m
(a) S =I reference k 1 ·v ·L reference t 1 S = 0,95 · 5,1 · 16 =I reference 77, 50 m (b) S =II reference k 2 ·v II reference 2 · ·D ·reference g k 3 ·F +POR R –TmII reference R G k 4 +v STR reference v II reference (c) Calculation of as under point 4.2 since B, D and T and unchanged v –L reference v = 3,6STR reference m/s R = 14,0 ·TmII reference 0,55 · 0,85 · 3,6 2 =39,6 kN (d) Resistance due to gradient as under point 4.2 (e) Calculation of , (f) as under point 4.2 (g) Calculation of using formula (b) and the result of (c) to (f) S =II reference ·0,12 · 9,36 · 9,81 · 0,48 + 1,5 3,06 1,15 · 177 + 39,6 – 15,02 9568 S =II reference 0,04684 · 9568 =448 m Constant reference (h) Calculation of the total distance S =reference S +I reference S = 77,5 + 448 =II reference 525,5 m
on board craft in accordance with ISO 2923:2003 air noise emitted from craft in accordance with EN ISO 2922:2000 Delete as appropriate.
Number | Manufacturer | Type | Year of construction | Power (kW) | Two-stroke/four-stroke | ||
---|---|---|---|---|---|---|---|
1 | |||||||
2 |
Number | Propulsion of | Manufacturer | Type | Year of construction | Power (kW) | Engine speed (min |
---|---|---|---|---|---|---|
1 | ||||||
2 | ||||||
3 | ||||||
4 | ||||||
5 |
Number | Measurement point | Doors | Windows | Observations | |||
---|---|---|---|---|---|---|---|
open | closed | open | closed | ||||
Number | Measurement point | Observations | |
---|---|---|---|
Anchor No | Competent authority | |
---|---|---|
30 % | Germany | |
30 % | Germany | |
35 % | Germany | |
40 % | Germany | |
50 % | Germany | |
50 % | France | |
25 % | France | |
45 % | France | |
45 % | France | |
40 % | France | |
35 % | France | |
50 % | Germany | |
40 % | Netherlands |
(a) an outline of the dimensions and mass of the special anchor, giving the main dimensions and type designation for each available anchor size; (b) a braking force diagram for the reference anchor A (in accordance with point 2.2) and the special anchor B to be authorised which has been prepared and assessed by an institution designated by the competent authority.
the line parallel to the y-axis at v = 0, the line parallel to the y-axis at v = 5 km/h, the line parallel to the x-axis at holding force F = 0, the braking force curve for reference anchor A, Model braking force diagram (Determining the surface areas AA and AB)
1. The automatic pressurised water sprinkler shall be ready for service at all times when there are persons on board. No additional action by crew members shall be required to trigger operation. 2. The system shall be permanently maintained at the necessary pressure. The pipes shall be filled with water up to the spray nozzles at all times. The system shall have a continuously working water supply. It shall not be possible for impurities harmful to operation to enter the system. Appropriate display instruments and test systems (e.g. pressure gauges, pressure-tank water level indicators, pump test piping) shall be installed for monitoring and checking the system. 3. The pump for the water supply to the spray nozzles shall be activated automatically by a pressure drop in the system. The pump shall be dimensioned so that it can continuously provide a sufficient water supply at the necessary pressure if all the spray nozzles necessary for covering the area of the largest room to be protected are activated simultaneously. The pump shall supply the automatic pressurised water sprinkler exclusively. In the event of pump failure, it shall be possible to provide the spray nozzles with a sufficient water supply from another on-board pump. 4. The system shall be divided into sections, each with no more than 50 spray nozzles. 5. The number and the layout of spray nozzles shall ensure effective distribution of water in the rooms to be protected. 6. Spray nozzles shall be triggered at a temperature between 68 °C and 79 °C. 7. The installation of components of automatic pressurised water sprinklers within the rooms to be protected shall be limited to the necessary minimum. No such system components shall be installed in main engine rooms. 8. Visual and acoustic indicators shall be provided in one or more suitable locations, at least one of which must be permanently manned, displaying activation of automatic pressurised water sprinklers for each section. 9. The energy supply of the installation of automatic pressurised water sprinklers shall be provided by two independent energy sources that shall not be installed in the same location. Each energy source shall be capable of supplying the entire system unassisted. 10. An installation plan of the automatic pressurised water sprinkler shall be presented to the inspection body for examination before installation of the system. The plan shall indicate the types and performance data of the machines and equipment used. An installation tested and certified by an approved classification society which complies at least with the above prescriptions can be authorised without further testing. 11. The presence of an automatic pressurised water sprinkler shall be entered in the Community Certificate under item 43.
2. If applicable, insert terms as per Article 1.01. Other vessel types shall be entered with their commonly accepted designation. 15. This section shall only be completed for craft for which at least one of the properties 1.1 or 1.2 or 3 in item 14 is not deleted, otherwise the entire table shall be deleted. 15.1. In the column "formation figure" of the table the number(s) of the formations depicted shall be entered. Lines without entry shall be struck through. Further formations may be drawn under "Other formations" and shall be designated 18, 19, 20, etc. If it is not apparent from the property "fit to push" in the previous ship certificate which formations are authorised, the entry from the previous ship certificate may be transferred to item 52. "See item 52" shall be entered in line 1 of the table "Authorised formations". 15.2. Couplings Only the details of the coupling between the pushing craft and the pushed section of the convoy shall be entered. 17-20. Details according to the tonnage certificate items 17-19 to two decimal places and item 20 without decimal places. Length overall and breadth overall give the maximum dimensions of the craft, including all projecting fixed parts. Length L and Breadth B give the maximum hull dimensions (see also Article 1.01 Definitions). 21. Dead weight tonnage for cargo vessels in t according to the tonnage certificate for the maximum draught according to item 19. Displacement for all other craft in m 3 . If no tonnage certificate is available, calculate the displacement from the product of the block coefficient and length LWL , breadth BWL and mean draught at maximum immersion.23. Number of passenger berths available (including folding beds and similar). 24. Only watertight transverse bulkheads extending from one side of the vessel to the other shall be taken into consideration. 26. If applicable, the following terms shall be used: manually operated hatch covers, manually operated rolling hatch covers, manually operated sliding hatch covers, mechanically operated sliding hatch covers, mechanically operated hatch covers.
Other types of hatch covers shall be entered with their commonly accepted designation. Any holds which do not have a hatch cover shall be listed, e.g. under item 52. 28. Figure without decimal place. 30, 31 and 33. Every winch housing shall be counted as one winch, regardless of the number of anchors or towing cables connected to it. 34. Under "Other installations" systems which do not use rudder blades (e.g. rudder-propeller, cycloidal-propeller, bow-thruster systems) shall be entered. Enter also any electrical auxiliary engines for manual actuation. With bow-thruster systems, "remote-controlled" refers only to remote controls operated from the steering position in the wheelhouse. 35. Only the theoretical values according to Article 8.08(2) and (3), Article 15.01(1)(c), and Article 15.08(5) shall be entered, and then only for craft whose keels were laid down after 31 December 1984 .36. A sketch may be necessary for clarification. 37. Only the theoretical values without reduction according to Article 10.01(1)-(4) shall be entered. 38. Only the minimum lengths according to Article 10.01(10) and the minimum tensile strength according to Article 10.01(11) shall be entered. 39 and 40. Only the minimum lengths and minimum tensile strength values recalculated according to Article 10.02(2) shall be entered. 42. The inspection body may add items to the list of necessary equipment. These shall be justified as essential to ship safety for the respective vessel type or its operational area. Additions shall be entered under item 52. Left column, row 3 and 4: for passenger vessels the first mentioned item shall be crossed out and under the second mentioned item the length of the gangway as established by the inspection body shall be entered. For all other vessels the second mentioned item shall be crossed out completely respectively, if the inspection body has allowed a shorter length than what is foreseen by Article 10.02(2)(d), only the first half shall be crossed out and the length of the gangway entered. Left column, row 6: here the number of the prescribed first aid kits according to Article 10.02(2)(f) and Article 15.08(9) shall be entered. Left column, row 10: here the number of the prescribed fire proof receptacles according to Article 10.02(1)(d) to (f) shall be entered. 43. Portable fire extinguishers required by other safety regulations, e.g. the regulation for the carriage of dangerous substances on the Rhine (ADNR), are not included here. 44. Row 3: in Community Certificates to be extended before 1.1.2010 , or1.1.2025 where Chapter 24a is applicable, the item "according to EN 395:1998 or 396:1998" shall be crossed if no life vests according to this standard are onboard.Row 4: when Community Certificates are extended after 1.1.2015 , or1.1.2030 where Chapter 24a is applicable, or if a new dinghy is taken onboard, the item "with a set of oars, one mooring line and a baler" shall be crossed. The item "according to EN 1914:1997" shall be crossed if no dinghy according to this standard is onboard.46. As a general rule, continuous operation shall not be inserted if there is a lack of berths or if there are excessive noise levels. 50. The expert shall sign only if he has completed page 11 himself. 52. Here any additional restrictions, exemptions and explanations, or similar, applying to entries under individual items can be given.
1. The capacity of these tanks shall not exceed 1000 litres.2. It shall be possible to attach the tanks sufficiently firmly and to earth them. 3. The tanks shall be made from steel of a sufficient wall thickness and shall be installed in a drip tray. The latter shall be designed to prevent leaking fuel contaminating the waterways. The drip tray may be dispensed with if double-skin tanks with a leak protection or leakage warning system are used and which are filled only via an automatic delivery valve. The provisions of point 3 shall be deemed to be fulfilled if the construction of a tank has been certified and approved according to the regulations of a Member State.
(a) fire detection system, (b) fire indicator system, (c) control panel,
(a) heat detectors; (b) smoke detectors; (c) ion detectors; (d) flame detectors; (e) combination detectors (fire detectors combining two or more of the detectors listed in (a) to (d)).
(a) with or (b) without
Type of fire detector | Maximum floor surface area per fire detector | Maximum distance between fire detectors | Maximum distance of fire detectors from bulkheads |
---|---|---|---|
Heat | 37 m | 9 m | 4,5 m |
Smoke | 74 m | 11 m | 5,5 m |
(a) after installation; (b) regularly, but at least every two years.
metacentric height MG shall be not less than 0,50 m, there shall be a residual safety clearance of 100 mm, the speed to be taken into account shall be 7 km/h, the wind pressure shall be taken to be 0,01 t/m 2 .
(a) be kept permanently pressurised by an automatically adjusting compressor; or (b) when an alarm is triggered in the wheelhouse be pressurised by means of an auxiliary engine which can be started from the steering position. If the auxiliary engine has its own fuel tank, there shall — in accordance with Article 8.05(13) — be a warning device in the wheelhouse to indicate if the level of filling is not sufficient to ensure further safe operation.
(a) its contents shall be sufficient to ensure an operation period of the propulsion system of 24 hours, assuming a consumption of 0,25 litres per kW per hour; (b) the fuel supply pump for refilling the daily-supply tank shall be operated continuously; or (c) the fuel supply pump shall be fitted with: a switch that automatically switches on the fuel supply pump when the daily-supply tank reaches a certain low level, and a switch that automatically switches off the fuel supply pump when the daily-supply tank is full.
(a) direct visual contact is possible between the wheelhouse and the control positions for the winches and bollards on the fore section or the stern of the vessel and in addition the distance from the wheelhouse to these control positions is not more than 35 m; and (b) the accommodation is directly accessible from the wheelhouse.
(a) manually operated anchor winches (the maximum force required shall be deemed to be that when the anchors are hanging freely); (b) cranks for lifting hatches; (c) cranks on mast and funnel winches.
(a) warping and coupling winches; (b) cranks on cranes, unless intended for ship’s boats.
(a) the wheelhouse is arranged in accordance with European Standard EN 1864:2008; or (b) the wheelhouse is designed for radar navigation by one person; or (c) the wheelhouse meets the following requirements: (aa) the control units and monitoring instruments are in the forward field of vision and within an arc of not more than 180° (90° to starboard and 90° to port), including the floor and ceiling. They shall be clearly legible and visible from the normal position of the helmsman; (bb) the main control units such as the steering wheel or steering lever, the engine controls, the radio controls, and the controls for the acoustic signals and the warning and manoeuvring signals required under national or international navigational authority regulations, as appropriate, shall be arranged in such a way that the distance between the controls on the starboard side and those on the port side is not more than 3 m. The helmsman shall be able to operate the engines without letting go of the controls for the steering system and while still being able to operate the other controls such as the radio system, the controls for the acoustic signals and the warning and manoeuvring signals required under national or international navigational authority regulations, as appropriate; (cc) the warning and manoeuvring signals required under national or international navigational authority regulations, as appropriate, are operated electrically, pneumatically, hydraulically or mechanically. By way of derogation, it may be operated by means of a tension wire only if safe operation from the steering position is possible in this way.
(a) do not have hydraulically or electrically operated coupling winches; or (b) whose hydraulically or electrically operated coupling winches do not meet the requirements of point 3.3 of this Administrative instruction,
(a) the device shall provide the tensioning force required for the coupling only by mechanical means; (b) the controls for the device shall be located on the device itself. By way of derogation, remote control is permitted provided that: the person operating the device has an unobstructed direct view of the device from the control position, there is a device at the control position to prevent unintentional operation, the device has an emergency stop;
(c) the device shall have a braking device which acts immediately if the controls are released or the motive force fails; (d) it shall be possible for the coupling cable to be released manually if the motive force fails.
(a) a multi-propeller drive and at least two independent propulsion systems with similar power output; (b) at least one cycloidal propeller; (c) at least one rudder propeller; or (d) at least one 360° water-jet propulsion system.
1. the active parts of electrically powered systems shall have a minimum luminance of 10 cd/m 2 ;2. the point sources of miniature incandescent lamps shall provide not less than 150 mcd mean spherical intensity with a spacing of not more than 0,1 m between lamps; 3. the point sources of light-emitting-diode systems shall have a minimum peak intensity of 35 mcd. The angle of half-intensity cone shall be appropriate to the likely track directions of approach and viewing. Spacing between lamps shall be no more than 0,3 m; and 4. for electroluminescent systems, these shall function for 30 minutes from the instant when the main power supply to which it was required to be connected by Section 7.1 fails.
Directive 2003/24/EC of the European Parliament and of the Council of 14 April 2003 amending Council Directive 98/18/EC on safety rules and standards for passenger ships, andthe guide for the adaptation of inland waterway passenger vessels to people with disabilities in accordance with Resolution No 25 of the United Nations Economic Commission for Europe.
a place where life-saving equipment is stowed or issued in an emergency, seats, a suitably-adapted toilet (No 10 of these guidelines), and connecting corridors.
(a) 10 % lower explosion limit (LEL) of a propane-air mixture; and (b) 30 ppm CO (carbon monoxide).
(a) local ventilation systems; (b) structural arrangements (design of walls, partitions etc.) facilitating or complicating the accumulation of gases; and (c) prevention of adverse effects due to mechanical damage, water or heat damage.
(a) name and address of the manufacturer; (b) legal marking; (c) designation of series and type; (d) if possible, serial number; (e) if required, any advice indispensable for safe use; and (f) for each sensor the indication of the calibration gas.
(a) complete instructions, drawings and diagrams concerning the safe and proper operation as well as the installation, starting-up and maintenance of the gas warning equipment; (b) operating instructions containing at least: (aa) measures to be taken in the case of an alarm or error indication; (bb) safety measures in the case of non-availability (e.g. calibration, inspection, interruption); and (cc) persons responsible for installation and maintenance;
(c) instructions for calibration before the starting-up, and for routine calibration, including time intervals to be followed; (d) supply voltage; (e) type and meaning of the alarms and displays (e.g. special status); (f) information concerning the detection of operating difficulties and the removal of faults; (g) type and scope of the replacement of components with limited lifespan; and (h) type, scope and time interval of the inspections.
(a) the cables are run in such a manner as to avoid being rendered unserviceable by heating of the bulkheads and decks that may be caused by a fire in an adjacent space; (b) where the cables supply equipment located within high fire risk areas, the cable runs within such areas must avoid routes which pass over or near the top of diesel engines and oil-fired equipment, or near to hot surfaces e.g. diesel engine exhaust systems. Where there is no alternative route, cables must be protected from heat and fire damage. Such fire protection could be in the form of a steel plate or trunk; (c) the cables and associated equipment supplied from the emergency source of power should, as far as practicable, be kept within the safe area; (d) cable systems are arranged so that fire in any area bounded by Type A partitions as shown in Article 15.11, Section 2 will not interfere with services essential for safety in any other such area. This requirement will be met if main and emergency cables do not pass through the same area. If they pass through the same area, the requirement will be met if: (aa) they are separated as wide as is practicable; or (bb) the emergency cable is of the fire resistant type.
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